US20190264222A1 - Methods and Compositions for Weed Control Using EPSPS Polynucleotides - Google Patents
Methods and Compositions for Weed Control Using EPSPS Polynucleotides Download PDFInfo
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N37/00—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids
- A01N37/36—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids containing at least one carboxylic group or a thio analogue, or a derivative thereof, and a singly bound oxygen or sulfur atom attached to the same carbon skeleton, this oxygen or sulfur atom not being a member of a carboxylic group or of a thio analogue, or of a derivative thereof, e.g. hydroxy-carboxylic acids
- A01N37/38—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids containing at least one carboxylic group or a thio analogue, or a derivative thereof, and a singly bound oxygen or sulfur atom attached to the same carbon skeleton, this oxygen or sulfur atom not being a member of a carboxylic group or of a thio analogue, or of a derivative thereof, e.g. hydroxy-carboxylic acids having at least one oxygen or sulfur atom attached to an aromatic ring system
- A01N37/40—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids containing at least one carboxylic group or a thio analogue, or a derivative thereof, and a singly bound oxygen or sulfur atom attached to the same carbon skeleton, this oxygen or sulfur atom not being a member of a carboxylic group or of a thio analogue, or of a derivative thereof, e.g. hydroxy-carboxylic acids having at least one oxygen or sulfur atom attached to an aromatic ring system having at least one carboxylic group or a thio analogue, or a derivative thereof, and one oxygen or sulfur atom attached to the same aromatic ring system
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01H—NEW PLANTS OR NON-TRANSGENIC PROCESSES FOR OBTAINING THEM; PLANT REPRODUCTION BY TISSUE CULTURE TECHNIQUES
- A01H3/00—Processes for modifying phenotypes, e.g. symbiosis with bacteria
- A01H3/04—Processes for modifying phenotypes, e.g. symbiosis with bacteria by treatment with chemicals
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N57/00—Biocides, pest repellants or attractants, or plant growth regulators containing organic phosphorus compounds
- A01N57/18—Biocides, pest repellants or attractants, or plant growth regulators containing organic phosphorus compounds having phosphorus-to-carbon bonds
- A01N57/20—Biocides, pest repellants or attractants, or plant growth regulators containing organic phosphorus compounds having phosphorus-to-carbon bonds containing acyclic or cycloaliphatic radicals
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8216—Methods for controlling, regulating or enhancing expression of transgenes in plant cells
- C12N15/8218—Antisense, co-suppression, viral induced gene silencing [VIGS], post-transcriptional induced gene silencing [PTGS]
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
- C12N15/8271—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance
- C12N15/8274—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance for herbicide resistance
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
- C12N15/8271—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance
- C12N15/8274—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance for herbicide resistance
- C12N15/8275—Glyphosate
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- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
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- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
- C12N15/8287—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for fertility modification, e.g. apomixis
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A40/00—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
- Y02A40/10—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
- Y02A40/146—Genetically Modified [GMO] plants, e.g. transgenic plants
Definitions
- the embodiments relate generally to the field of weed management. More specifically, embodiments relate compositions and methods for controlling weed species utalizing polynucleotide molecules. Further provided are compositions containing polynucleotide molecules and methods of utilizing such compositions for altering the physiology of plants and modulating the effect of herbicide treatment.
- Weeds are plants that are unwanted in a particular environment.
- weeds are plants that compete with cultivated plants.
- Weeds can also serve as hosts for crop diseases and insect pests.
- weeds can cause decreases in crop yield, reduced crop quality, increased irrigation costs, increased harvesting costs, reduced land value, injury to livestock, and crop damage from insects and diseases harbored by the weeds.
- weeds cause these effects are: 1) competing with crop plants for water, nutrients, sunlight and other essentials for growth and development, 2) production of toxic or irritant chemicals that cause human or animal health problems, 3) production of immense quantities of seed or vegetative reproductive parts or both that contaminate agricultural products and perpetuate the weed species in agricultural lands, and 4) production on agricultural and nonagricultural lands of vast amounts of vegetation requiring disposal. Weeds cost farmers billions of dollars annually in crop losses and weed control expenses.
- Chemical herbicides are often used to control the growth and spread of weeds. Chemical herbicides are active at one or more target sites within a plant where they interrupt normal plant functions.
- the herbicide N-phosphonomethyl glycine also known as glyphosate
- targets EPSPS (5-enolpyruvylshikimate-3-phosphate synthase)
- the enzyme that catalyzes the conversion of shikimate-3-phosphate into 5-enolpyruvyl-shikimate-3-phosphate which is an intermediate in the biochemical pathway for creating three essential aromatic amino acids (tyrosine, phenylalanine, and tryptophan).
- Herbicide resistance is the ability of a plant to survive and reproduce following exposure to a dose of herbicide that would normally be lethal. In weeds, herbicide resistance may occur naturally as the result of random and infrequent mutations. Where chemical herbicide application provides selection pressure, herbicide resistant plants survive to reproduce without competition from herbicide-susceptible plants. This selective pressure can lead to the appearance of increasing numbers of herbicide resistant weeds in a weed population. Herbicide tolerant weeds have been observed for nearly all herbicides in use.
- HRAC Herbicide Resistance Action Committee
- NAHRAC North American Herbicide Resistance Action Committee
- WSSA Weed Science Society of America
- the present embodiments relate to compositions and methods useful for sensitizing weeds to herbicides targeting 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) for the purpose of enhancing control of weeds and for the management of herbicide resistant weeds.
- EPSPS 5-enolpyruvylshikimate-3-phosphate synthase
- bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NOs: 3, 5, or 9-66, or a fragment thereof.
- the bioactive trigger polynucleotide may be a single-stranded DNA, a single-stranded RNA, a double-stranded RNA, a double-stranded DNA, or a double-stranded DNA/RNA hybrid.
- the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5.
- the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting of SEQ ID NO: 36, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 57, SEQ ID NO: 58, SEQ ID NO: 59, SEQ ID NO: 65, SEQ ID NO: 66, or a fragment thereof.
- the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
- the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
- the bioactive trigger polynucleotide comprises SEQ ID NOs: 5 and 6.
- plant cell comprising a bioactive trigger polynucleotide as described herein.
- plant comprising a bioactive trigger polynucleotide as described herein.
- compositions comprising one or more bioactive trigger polynucleotides and a transfer agent, wherein one or more bioactive trigger polynucleotides comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof.
- the one or more bioactive trigger polynucleotides may each, independently, be selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids.
- the composition comprises one or more bioactive trigger polynucleotides comprising a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting of SEQ ID NO: 36, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 57, SEQ ID NO: 58, SEQ ID NO: 59, SEQ ID NO: 65, SEQ ID NO: 66, or a fragment thereof.
- the composition comprises one or more bioactive trigger polynucleotides comprising a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3 or SEQ ID NO: 5, or a fragment thereof.
- the composition comprises one or more bioactive double-stranded RNA trigger polynucleotides comprising SEQ ID NOs: 3 and 4, or fragments thereof. In some embodiments, the composition comprises one or more bioactive double-stranded RNA trigger polynucleotides comprising SEQ ID NOs: 5 and 6, or fragments thereof. In some embodiments, the composition comprises a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide.
- the composition comprises a bioactive trigger polynucleotides that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence.
- the composition can include various components.
- the composition can include one or more of bioactive trigger polynucleotides, transfer agents, and non-polynucleotide herbicides.
- the transfer agent is selected from the group consisting of a surfactant, such as an organosilicone surfactant, a cationic liposomal reagent and a plant hormone, such as Brassinosteroid.
- organosilicone surfactants include, but are not limited to, BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, and BREAK-THRU® S 233.
- the composition comprises an organosilicone surfactant and ammonium sulfate. In some embodiments, the composition comprises DOTAP. In some embodiments, the composition comprises a cationic lipid. In some embodiments, the composition comprises nucleic acid lipid particles. In some embodiments, the composition comprises an EPSPS-inhibitor herbicide, such as glyphosate. In some embodiments, the composition comprises a non-EPSPS-inhibitor herbicide, such as dicamba or 2,4-D.
- a method of plant control comprising applying a bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence, to an external surface of a plant, plant part or seed, wherein the plant is not mechanically permiabilized and the bioactive trigger polynucleotide is incorporated into the interior of a plant cell.
- plants that may be controlled by such methods include, but are not limited to, Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis , and Xanthium strumarium .
- the EPSPS gene sequence is selected from SEQ ID NOs: 1 or 2, or a fragment thereof. In some embodiments, the EPSPS gene sequence is selected from SEQ ID NOs: 9-66. In some embodiments, the EPSPS gene sequence is selected from SEQ ID NO 36, SEQ ID NO 42, SEQ ID NO 43, SEQ ID NO 44, SEQ ID NO 57, SEQ ID NO 58, SEQ ID NO 59, SEQ ID NO 65, and SEQ ID NO 66. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof.
- the bioactive trigger polynucleotide is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids.
- the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5, or a fragment thereof.
- the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 3 and 4, or fragments thereof.
- the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 5 and 6, or fragments thereof.
- a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide is applied to the plant.
- a bioactive trigger polynucleotide that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence is applied to the plant.
- the method may further comprise applying one or more of a transfer agent, an EPSPS-inhibitor herbicide and other non-polynucleotide herbicides.
- transfer agents include, but are not limited to, surfactants, such as organosilicone surfactants, cationic lipid reagents, and plant hormones, such as Brassinosteroid.
- the composition further comprises a non-polynucleotide herbicide.
- the non-polynucleotide herbicide is glyphosate.
- the non-polynucleotide herbicide is applied separately from the bioactive trigger polynucleotide. In some embodiments, the non-polynucleotide herbicide is applied concurrently with the bioactive trigger polynucleotide.
- a method of controlling growth, development or reproductive ability of a plant by topically treating the plant with a composition comprising a bioactive trigger polynucleotide and a transfer agent, wherein the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof, whereby the growth, development or reproductive ability of the plant is reduced.
- the bioactive trigger polynucleotide is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids.
- the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting of SEQ ID NO 36, SEQ ID NO 42, SEQ ID NO 43, SEQ ID NO 44, SEQ ID NO 57, SEQ ID NO 58, SEQ ID NO 59, SEQ ID NO 65, SEQ ID NO 66, or a fragment thereof.
- the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 3 and 4, or fragments thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 5 and 6, or fragments thereof. In some embodiments of the method, the plant is treated with a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide.
- the plant is treated with a bioactive trigger polynucleotide that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence.
- the method may further comprise treating the plant with one or more of a transfer agent, an EPSPS-inhibitor herbicide and other non-polynucleotide herbicides.
- transfer agents include, but are not limited to, surfactants, such as organosilicone surfactants, cationic lipid reagents, and plant hormones, such as Brassinosteroid.
- the plant is treated with a non-polynucleotide herbicide.
- the non-polynucleotide herbicide is glyphosate.
- the non-polynucleotide herbicide is applied separately from the bioactive trigger polynucleotide.
- the non-polynucleotide herbicide is applied concurrently with the bioactive trigger polynucleotide.
- a method of sensitizing a weed to an EPSPS-inhibitor herbicide comprising treating the weed with a bioactive trigger polynucleotide that is essentially identical or essentially complementary to a nucleotide sequence selected from the group consisting of SEQ ID NO:3, 5, and 9-66, or a fragment thereof, whereby the weed is more sensitive to an EPSPS-inhibitor herbicide relative to a weed not treated with the bioactive trigger polynucleotide.
- the bioactive trigger polynucleotide is essentially identical or essentially complementary to a nucleotide sequence selected from the group consisting of SEQ ID NO 36, SEQ ID NO 42, SEQ ID NO 43, SEQ ID NO 44, SEQ ID NO 57, SEQ ID NO 58, SEQ ID NO 59, SEQ ID NO 65, SEQ ID NO 66, or a fragment thereof.
- the method further comprises treating the plant with an EPSPS-inhibitor herbicide.
- the weed is resistant to one or more of glyphosate, dicamba and sulfonylurea.
- the weed is selected from the group consisting of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis , and Xanthium strumarium .
- the weed is growing in a field of herbicide-resistant crop plants.
- the bioactive trigger polynucleotide may be single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, or a double-stranded DNA/RNA hybrid.
- the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
- the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
- the bioactive trigger polynucleotide is provide with a transfer agent.
- the transfer agent is an organosilicone surfactant.
- the organosilicone surfactant may be BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, BREAK-THRU® S 233, or any combination thereof.
- the transfer agent is a cationic liposomal reagent, for example, N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium methyl-sulfate (DOTAP).
- DOTAP N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium methyl-sulfate
- the transfer agent is a plant hormone, for example, Brassinosteroid.
- the method further comprises treating the weed with an auxin-like herbicide, such as dicamba or 2,4-D.
- Several embodiments relate to a method of controlling one or more plants of the following species: Amaranthus, Ambrosia, Lolium, Digitaria, Euphorbia, Kochia, Sorghum, Conyza, Chloris, Echinochola, Eleusine, Poa, Plantago, Avena, Chenopodium, Setaria, Abutilon, Ipomoea, Sesbania, Cassia, Sida, Brachiaria and Solanum by applying a bioactive trigger molecule as described herein.
- Several embodiments relate to a method of controlling one or more of Alopecurus myosuroides, Avena sterilis, Avena sterilis ludoviciana, Brachiaria plantaginea, Bromus diandrus, Bromus rigidus, Cynosurus echinatus, Digitaria ciliaris, Digitaria ischaemum, Digitaria sanguinalis, Echinochloa oryzicola, Echinochloa phyllopogon, Eriochloa punctata, Hordeum glaucum, Hordeum leporinum, Ischaemum rugosum, Leptochloa chinensis, Lolium persicum, Phalaris minor, Phalaris paradoxa, Rottboellia exalta, Setaria faberi, Setaria viridis var, robusta - alba schreiber, Setaria viridis var, robusta - purpurea, Snowdenia polystachea, S
- FIG. 1 shows glyphosate-tolerant Palmer plants treated with trigger polynucleotides for SEQ ID NOs: 7 and 8 and glyphosate (panel A), treated with trigger polynucleotides for SEQ ID NOs: 3 and 4 and glyphosate (panel B), or treated with trigger polynucleotides for SEQ ID NOs: 5 and 6 and glyphosate (panel C).
- FIG. 2 shows a graph of % EPSPS mRNA reduction vs. control in Palmer protoplasts in response to 6 ug of SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 trigger.
- FIG. 3 shows glyphosate-tolerant Waterhemp plants treated with SEQ ID NOs: 7 and 8 trigger polynucleotides and glyphosate (panel A), treated with trigger polynucleotides for SEQ ID NOs: 3 and 4 and glyphosate (panel B), or treated with trigger polynucleotides for SEQ ID NOs: 5 and 6 and glyphosate (panel C).
- FIG. 4 shows the fresh weight (in grams) of plants treated with trigger polynucleotides for SEQ ID NOs: 3, 5, 7 and SEQ ID NOs: 36-64 and glyphosate.
- EPSPS 5-enolpyruvylshikimate-3-phosphate synthase
- the methods and compositions disclosed herein provide for increased sensitivity to an EPSPS-inhibitor herbicide.
- the methods and compositions disclosed herein provide for regulation, repression or delay of EPSPS gene expression in glyphosate-resistant weed biotypes. Aspects of the methods and compositions disclosed herein can be applied to manage various weeds in agronomic and other cultivated environments.
- the term “about” indicates that a value includes the inherent variation or error for the device or method being employed to determine the value, or the variation that exists among the studied organism.
- DNA refers to a polymer of deoxyribonucleotide bases of genomic or synthetic origin.
- DNA may be wholly or partially single-stranded (ssDNA) or wholly or partially double-stranded (dsDNA).
- ssDNA single-stranded
- dsDNA wholly or partially double-stranded
- a DNA molecule may comprise single-stranded and double-stranded regions.
- RNA refers to a polymer of ribonucleotide bases of cellular or synthetic origin.
- RNA may be wholly or partially single-stranded (ssRNA) or wholly or partially double-stranded (dsRNA).
- dsRNA wholly or partially double-stranded
- a RNA molecule may comprise single-stranded and double-stranded regions.
- sequence refers to the nucleotide sequence of a DNA molecule, an RNA molecule or a portion thereof. Unless otherwise stated, nucleotide sequences in the text of this specification are given, when read from left to right, in the 5′ to 3′ direction. It is understood that any Sequence Identification Number (SEQ ID NO) disclosed in the instant application can refer to either a DNA sequence or a RNA sequence, depending on the context where that SEQ ID NO is mentioned, even if that SEQ ID NO is expressed only in a DNA sequence format or a RNA sequence format. Further, disclosure of a nucleic acid sequence discloses the sequence of its reverse complement, as one necessarily defines the other, as is known by one of ordinary skill in the art.
- polynucleotide refers to any polymer of mononucleotides that are linked by internucleotide bonds. Polynucleotides may be composed of naturally-occurring ribonucleotides, naturally-occurring deoxyribonucleotides, analogs of naturally-occurring nucleotides (e.g., enantiomeric forms of naturally-occurring nucleotides), or any combination thereof. Where a polynucleotide is single-stranded, its length can be described in terms of the number of nucleotides. Where a polynucleotide is double-stranded, its length can be described in terms of the number of base pairs.
- non-transcribable polynucleotide refers to a polynucleotide that does not comprise a complete polymerase II transcription unit.
- Trigger refers to a bioactive polynucleotide molecule that is substantially homologous or complementary to a polynucleotide sequence of a target gene or an RNA expressed from the target gene or a fragment thereof and functions to suppress the expression of the target gene or produce a knock-down phenotype. Trigger polynucleotides are generally described in relation to their “target sequence.” Trigger polynucleotides may be single-stranded DNA (ssDNA), single-stranded RNA (ssRNA), double-stranded RNA (dsRNA), double-stranded DNA (dsDNA), or double-stranded DNA/RNA hybrids.
- ssDNA single-stranded DNA
- ssRNA single-stranded RNA
- dsRNA double-stranded RNA
- dsDNA double-stranded DNA
- Trigger polynucleotides may comprise naturally-occurring nucleotides, modified nucleotides, nucleotide analogues or any combination thereof.
- a trigger polynucleotide may be incorporated within a larger polynucleotide, for example in a pri-miRNA molecule.
- a trigger polynucleotide may be processed into a small interfering RNA (siRNA).
- target sequence refers to a nucleotide sequence that occurs in a gene or gene product against which a trigger polynucleotide is directed.
- gene means a locatable region of genomic sequence, corresponding to a unit of inheritance, which includes regulatory regions, such as promoters, enhancers, 5′ untranslated regions, intron regions, 3′ untranslated regions, transcribed regions, and other functional sequence regions that may exist as native genes or transgenes in a plant genome.
- the term target sequence can refer to the full-length nucleotide sequence of the gene or gene product targeted for suppression or the nucleotide sequence of a portion of the gene or gene product targeted for suppression. Disclosure of a target sequence necessarily discloses the sequence of its corresponding trigger polynucleotide, as one necessarily defines the other, as is known by one of ordinary skill in the art.
- RNA expression refers to the process of converting genetic information encoded in genomic DNA into RNA (e.g., mRNA, rRNA, tRNA, or snRNA) through transcription of the gene via the enzymatic action of an RNA polymerase, and into protein, through translation of mRNA. Gene expression can be regulated at many stages in the process.
- RNA e.g., mRNA, rRNA, tRNA, or snRNA
- Gene expression can be regulated at many stages in the process.
- the phrases “inhibition of gene expression” or “gene suppression” or “silencing a target gene” and similar terms and phrases refer to the absence or observable reduction in the level of protein and/or mRNA product from the target gene.
- the consequences of inhibition, suppression, or silencing can be confirmed by examination of the outward properties of a cell or organism or by biochemical techniques.
- sequence identity As used herein, the term “sequence identity”, “sequence similarity” or “homology” is used to describe the degree of similarity between two or more nucleotide sequences.
- the percentage of “sequence identity” between two sequences is determined by comparing two optimally aligned sequences over a comparison window, such that the portion of the sequence in the comparison window may comprise additions or deletions (gaps) as compared to the reference sequence (which does not comprise additions or deletions) for optimal alignment of the two sequences.
- the percentage is calculated by determining the number of positions at which the identical nucleic acid base or amino acid residue occurs in both sequences to yield the number of matched positions, dividing the number of matched positions by the total number of positions in the window of comparison, and multiplying the result by 100 to yield the percentage of sequence identity.
- a sequence that is identical at every position in comparison to a reference sequence is said to be identical to the reference sequence and vice-versa.
- An alignment of two or more sequences may be performed using any suitable computer program. For example, a widely used and accepted computer program for performing sequence alignments is CLUSTALW v1.6 (Thompson, et al. Nucl. Acids Res., 22: 4673-4680, 1994).
- solution refers to homogeneous mixtures and non-homogeneous mixtures such as suspensions, colloids, micelles, and emulsions.
- weed refers to any plant that is not valued where it is growing. Weeds usually exhibit vigorous growth and tend to overgrow or choke out more desirable plants. Weeds include volunteer plants, which grow on their own, rather than being planted by a farmer or gardener. For example, corn plants growing in a soybean field.
- Weedy plants include, but are not limited to, important invasive and noxious weeds and herbicide resistant biotypes in crop production, such as: Amaranthus species, e.g., A. albus, A. blitoides, A. hybridus, A. palmeri, A. powellii, A. retroflexus, A. spinosus, A. tuberculatus , and A. viridis; Ambrosia species, e.g., A. trifida , and A. artemisifolia; Lolium species, e.g., L. multiflorum, L. rigidium , and L. perenne; Digitaria species, e.g., D.
- Euphorbia species e.g., E. heterophylla
- Kochia species e.g., K. scoparia
- Sorghum species e.g., S. halepense
- Conyza species e.g., C. bonariensis, C. canadensis , and C. sumatrensis
- Clitoris species e.g., C. truncate
- Echinochola species e.g., E. colona and E. crus - galli
- Eleusine species e.g., E. indica
- Poa species e.g., P. annua
- Plantago species e.g., P.
- lanceolata Avena species, e.g., A. fatua; Chenopodium species, e.g., C. album; Setaria species, e.g., S. viridis; Abutilon theophrasti; Ipomoea species; Sesbania species; Cassia species; Sida species; Brachiaria species and Solanum species.
- Additional weedy plant species found in cultivated areas include Alopecurus myosuroides, Avena sterilis, Avena sterilis ludoviciana, Brachiaria plantaginea, Bromus diandrus, Bromus rigidus, Cynosurus echinatus, Digitaria ciliaris, Digitaria ischaemum, Digitaria sanguinalis, Echinochloa oryzicola, Echinochloa phyllopogon, Eriochloa punctata, Hordeum glaucum, Hordeum leporinum, Ischaemum rugosum, Leptochloa chinensis, Lolium persicum, Phalaris minor, Phalaris paradoxa, Rottboellia exalta, Setaria faberi, Setaria viridis var, robusta - alba schreiber, Setaria viridis var, robusta - purpurea, Snowdenia polystachea, Sorghum sud
- Herbicide refers to molecules that affect plant growth, development and/or reproductive ability. Herbicides may be polynucleotide or non-polynucleotide. Glyphosate is an example of a non-polynucleotide herbicide that inhibits EPSPS.
- Glyphosate (N-phosphonomethylglycine) herbicide inhibits the shikimic acid pathway, which leads to the biosynthesis of aromatic compounds including amino acids, plant hormones and vitamins. Specifically, glyphosate curbs the conversion of phosphoenolpyruvic acid (PEP) and 3-phosphoshikimic acid to 5-enolpyruvyl-3-phosphoshikimic acid by inhibiting the enzyme 5-enolpyruvylshikimate-3-phosphate synthase (referred to herein as EPSP synthase or EPSPS).
- PEP phosphoenolpyruvic acid
- EPSPS 5-enolpyruvylshikimate-3-phosphate synthase
- glyphosate should be considered to include any herbicidally effective form of N-phosphonomethylglycine (including any salt thereof) and other forms which result in the production of the glyphosate anion in planta.
- Glyphosate is commercially available in numerous formulations. Examples of these formulations of glyphosate include, without limitation, those sold by Monsanto Company (St.
- ROUNDUP® As ROUNDUP®, ROUNDUP® ULTRA, ROUNDUP® ULTRAMAX, ROUNDUP® CT, ROUNDUP® EXTRA, ROUNDUP® BIACTIVE, ROUNDUP® BIOFORCE, RODEO®, POLARIS®, SPARK® and ACCORD® herbicides, all of which contain glyphosate as its isopropylammonium salt; ROUNDUP® WEATHERMAX, which contains glyphosate as its potassium salt; ROUNDUP® DRY and RIVAL® herbicides, which contain glyphosate as its ammonium salt; ROUNDUP® GEOFORCE, which contains glyphosate as its sodium salt.
- TOUCHDOWN® herbicide Syngenta, Greensboro, N.C.
- glyphosate Trimethylsulfonium salt
- Various other salts of glyphosate are available for example, dimethylamine salt, isopropylamine salt, trimesium salt, potassium salt, monoammonium salt, and diammonium salt.
- Commerical formulations and application rates thereof are often defined in terms of acid equivalent pounds per acre (a.e. lb/ac).
- compositions comprising a bioactive trigger polynucleotide targeting an EPSPS gene.
- Such compositions and methods of their use are useful for modulating the expression of endogenous EPSPS genes or transgenic EPSPS genes (for example, CP4 EPSPS, U.S. Pat. No. RE39,247 and 2mEPSPS, U.S. Pat. No. 6,040,497) in a plant cell.
- a targeted EPSPS gene includes coding (protein-coding or translatable) sequence, non-coding (non-translatable) sequence, or both coding and non-coding sequence.
- a plant treated with a bioactive EPSPS trigger polynucleotide is more sensitive to an EPSPS-inhibitor herbicide relative to a plant that has not been treated with a bioactive EPSPS trigger polynucleotide. It is contemplated that in some embodiments the composition may contain multiple bioactive trigger polynucleotides. Where multiple bioactive trigger polynucleotides are used, the bioactive trigger polynucleotides can target multiple consecutive segments of a target gene, multiple non-consecutive segments of a target gene, multiple alleles of a target gene, or multiple different target genes from one or more species.
- the composition may comprise two or more bioactive EPSPS trigger polynucleotides that are capable of binding to different EPSPS target sequences.
- the different EPSPS target sequences may be from different plant species.
- the different EPSPS target sequences may be from different different regions of an EPSPS gene.
- the EPSPS target sequences may be selected from the group consisting of SEQ ID NOs: 9-66.
- compositions comprising one or more bioactive trigger polynucleotides targeting an EPSPS gene and one or more bioactive trigger polynucleotides that modulate the expression of a gene other than EPSPS.
- compositions can include one or more bioactive trigger polynucleotides targeting essential genes.
- Essential genes are genes in a plant that provide key enzymes or other proteins that are essential to the growth, survival, development or reproduction of the plant (Meinke, et al., Trends Plant Sci. 2008:13(9):483-91).
- essential genes include, but are not limited to, genes encoding biosynthetic enzymes, metabolizing enzymes, receptors, signal transduction proteins, structural proteins, transcription factors, transport proteins and regulatory RNAs, such as, microRNAs.
- the suppression of an essential gene enhances the effect of a herbicide that affects the function of a gene product different than the suppressed essential gene.
- Bioactive trigger polynucleotides used in the various embodiments may comprise single-stranded RNA, double-stranded RNA, single-stranded DNA, double-stranded DNA, RNA/DNA hybrids, chemically modified polynucleotides or any mixture thereof.
- the bioactive trigger polynucleotide may comprise a combination of ribonucleotides and deoxyribonucleotides, for example, synthetic polynucleotides consisting mainly of ribonucleotides but with one or more terminal deoxyribonucleotides or synthetic polynucleotides consisting mainly of deoxyribonucleotides but with one or more terminal dideoxyribonucleotides.
- the bioactive trigger polynucleotide includes non-canonical nucleotides such as inosine, thiouridine, or pseudouridine. In some embodiments, the bioactive trigger polynucleotide includes chemically modified nucleotides.
- the naturally occurring phosphodiester backbone of a bioactive trigger polynucleotide can be partially or completely modified with phosphorothioate, phosphorodithioate, or methylphosphonate internucleotide linkage modifications, modified nucleoside bases or modified sugars can be used in the synthesis of bioactive trigger polynucleotides, and trigger polynucleotides can be labeled with a fluorescent moiety (for example, fluorescein or rhodamine) or other label (for example, biotin).
- a fluorescent moiety for example, fluorescein or rhodamine
- biotin for example, biotin
- Examples of chemically modified oligonucleotides or polynucleotides are well known in the art; see, for example, US Patent Publication 20110171287, US Patent Publication 20110171176, and US Patent Publication 20110152353, US Patent Publication, 20110152346, US Patent Publication 20110160082, herein incorporated in its entirety by reference hereto.
- bioactive trigger polynucleotides that modulate an endogenous EPSPS gene in a plant.
- the bioactive EPSPS trigger polynucleotides comprise a nucleotide sequence that is essentially identical or essentially complementary to at least 10 contiguous nucleotides of an endogenous EPSPS gene of a plant, or an RNA transcribed therefrom.
- the bioactive EPSPS trigger polynucleotides comprise a nucleotide sequence that is essentially identical or essentially complementary to 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70 or more contiguous nucleotides of an endogenous EPSPS gene of a plant, or an RNA transcribed therefrom.
- the endogenous EPSPS gene is an Abutilon theophrasti, Amaranthus graecizans, Amaranthus hybrid, Amaranthus lividus, Amaranthus palmeri, Amaranthus rudis, Amaranthus thunbergii, Amaranthus viridis, Ambrosia trifida, Chenopodium album, Convolvulus arvensis, Conyza Canadensis, Digitaria sanguinalis, Echinochloa colona, Echinochloa crus - galli, Euphorbia heterophylla, Ipomoea hederacea, Lolium multiflorum, Senna obtusifolia, Sorghum halepense , or Xanthium strumarium gene.
- the sequence of the endogenous EPSPS gene is selected from SEQ ID NOs: 1 and 2.
- bioactive trigger polynucleotide or at least one strand of a double-stranded polynucleotide or portion thereof, or a portion of a single strand polynucleotide hybridizes under physiological conditions to the endogenous gene, an RNA transcribed therefrom, or a fragment thereof, to effect regulation or suppression of the endogenous gene.
- a bioactive trigger polynucleotide has 100 percent sequence identity or at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence identity when compared to a sequence of 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60 or more contiguous nucleotides in the target gene or RNA transcribed from the target gene.
- a bioactive trigger polynucleotide has 100 percent sequence complementarity or at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence complementarity when compared to a sequence of 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60 or more contiguous nucleotides in the target gene or RNA transcribed from the target gene.
- a bioactive trigger polynucleotide has 100 percent sequence identity with or complementarity to one allele or one family member of a given target gene (coding or non-coding sequence of a gene). In some embodiments, a bioactive trigger polynucleotide has at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence identity with or complementarity to multiple alleles or family members of a given target gene. In some embodiments, a bioactive trigger polynucleotide has 100 percent sequence identity with or complementarity to multiple alleles or family members of a given target gene.
- Embodiments include bioactive trigger polynucleotides having a length of 40-60 nucleotides (40-mers, 41-mers, 42-mers, 43-mers, 44-mers, 45-mers, 46-mers, 47-mers, 48-mers, 49-mers, 50-mers, 51-mers, 52-mers, 53-mers, 54-mers, 55-mers, 56-mers, 57-mers, 58-mers, 59-mers, or 60-mers).
- bioactive EPSPS trigger polynucleotide that comprises a nucleotide sequence that is substantially homologous or substantially complementary to one or more of SEQ ID NOs: 9-66 and suppresses, represses or otherwise delays the expression of a targeted EPSPS gene in one or more plant species.
- the bioactive EPSPS trigger polynucleotide comprises a nucleotide sequence that is identical or complementary to one or more of SEQ ID NOs: 9-66.
- the bioactive EPSPS trigger polynucleotide comprises a sequence selected from SEQ ID NOs: 3-6.
- Bioactive trigger polynucleotides can be single- or double-stranded RNA or single- or double-stranded DNA or double-stranded DNA/RNA hybrids or modified analogues thereof.
- the trigger polynucleotides are selected from the group consisting of (a) a single-stranded RNA molecule (ssRNA), (b) a ssRNA molecule that self-hybridizes to form a double-stranded RNA molecule, (c) a double-stranded RNA molecule (dsRNA), (d) a single-stranded DNA molecule (ssDNA), (e) a ssDNA molecule that self-hybridizes to form a double-stranded DNA molecule, and (f) a single-stranded DNA molecule including a modified Pol III gene that is transcribed to an RNA molecule, (g) a double-stranded DNA molecule (dsDNA), (h) a double-
- double-stranded trigger polynucleotides may be blunt-ended or may comprise a 3′ or 5′ overhang of one, two, three, four, five, or more nucleotides on one or both sides of the double-stranded region.
- the overhang has identity or complementarity to the target gene.
- the overhang does not have identity or complementarity to the target gene.
- the overhang may comprise one, two, three, four, or more nucleotides such as 2′-deoxy (21H) nucleotides.
- the overhang may comprise deoxythymidine (dT) nucleotides.
- Double-stranded bioactive trigger polynucleotides may be formed by intramolecular hybridization or intermolecular hybridization.
- the bioactive trigger polynucleotide may comprise single-stranded DNA or single-stranded RNA that self-hybridizes to form a hairpin structure having an at least partially double-stranded structure including at least one segment that will hybridize to an RNA transcribed from the gene targeted for suppression.
- the bioactive trigger polynucleotide may be contained in a longer polynucleotide sequence, for example a in a pri-miRNA. Other configurations of the bioactive trigger polynucleotides are known in the field and are contemplated herein.
- bioactive trigger polynucleotides can be can be expressed in host cells from a vector, chemically synthesized using known methods, or they can be transcribed in vitro by conventional enzymatic synthetic methods using, for example, the bacteriophage T7, T3 or SP6 RNA polymerases.
- Commercial preparation of oligonucleotides often provides two deoxyribonucleotides on the 3′ end of the sense strand.
- Polynucleotide molecules can be synthesized from commercially available kits, for example, kits from Applied Biosystems/Ambion (Austin, Tex.) have DNA ligated on the 5′ end in a microbial expression cassette that includes a bacterial T7 polymerase promoter that makes RNA strands that can be assembled into a dsRNA and kits provided by vaious manufacturers that include T7 RiboMax Express (Promega, Madison, Wis.), AmpliScribe T7-Flash (Epicentre, Madison, Wis.), and TranscriptAid T7 High Yield (Fermentas, Glen Burnie, Md.).
- dsRNA molecules can be produced from microbial expression cassettes in bacterial cells (Ongvarrasopone et al. ScienceAsia 33:35-39; Yin, Appl. Microbiol. Biotechnol 84:323-333, 2009; Liu et al., BMC Biotechnology 10:85, 2010) that have regulated or deficient RNase III enzyme activity or the use of various viral vectors to produce sufficient quantities of dsRNA.
- EPSPS gene fragments are inserted into the microbial expression cassettes in a position in which the fragments are expressed to produce ssRNA or dsRNA useful in the methods described herein to regulate expression on a target EPSPS gene.
- Several embodiments relate to expression constructs encoding bioactive trigger polynucleotides as described herein.
- the trigger polynucleotides may optionally be purified.
- polynucleotides can be purified from a mixture by extraction with a solvent or resin, precipitation, electrophoresis, chromatography, or a combination thereof.
- trigger polynucleotides may be used with no, or a minimum of, purification to avoid losses due to sample processing.
- the trigger polynucleotides may be dried for storage or dissolved in an aqueous solution. The solution may contain buffers or salts to promote annealing, and/or stabilization of the duplex strands.
- Bioactive trigger polynucleotides may be provided to a plant at any dose effective to modulate the expression of the target gene or produce a knock-down phenotype. While there is no upper limit on the concentrations and dosages of bioactive trigger polynucleotides used in the compositions and methods disclosed herein, several embodiments relate to a minimum effective concentration or dosage of bioactive trigger polynucleotide.
- concentration of bioactive trigger polynucleotide provided to a plant can be adjusted in consideration of the volume of spray or treatment applied to plant leaves or other plant part surfaces, such as flower petals, stems, tubers, fruit, anthers, pollen, or seed.
- a treatment for herbaceous plants comprises providing bioactive trigger polynucleotides at about 1 nanomole (nmol) per plant. In some embodiments, a treatment for herbaceous plants comprises providing from about 0.05 to 1 nmol of bioactive trigger polynucleotide per plant. Several embodiments for herbaceous plants include ranges of about 0.05 to about 100 nmol, or about 0.1 to about 20 nmol, or about 1 nmol to about 10 nmol of bioactive trigger polynucleotides per plant.
- a treatment for herbaceous plants comprises providing 0.5, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5, 10, 10.5, 11, 11.5, 12, 12.5, 13, 13.5, 14, 14.5, 15, 15.5, 16, 16.5, 17, 17.5, 18, 18.5, 19, 19.5, or 20 nmol of bioactive trigger polynucleotides per plant.
- the factor 1 ⁇ when applied to oligonucleotide molecules is arbitrarily used to denote a treatment of 0.8 nmol of bioactive trigger polynucleotide molecule per plant; 10 ⁇ , 8 nmol of bioactive trigger polynucleotide molecule per plant; and 100 ⁇ , 80 nmol of bioactive trigger polynucleotide molecule per plant.
- the amount of bioactive trigger polynucleotide provided can vary based upon the size of the treated plant. For example, for very large plants, trees, or vines a correspondingly larger amount of bioactive trigger polynucleotide may be used; while for smaller plants, a correspondingly smaller amount of bioactive trigger polynucleotide may be used. In some embodiments where long dsRNA molecules, which are processed into multiple oligonucleotides, are used, the effective concentration or dosage of bioactive trigger polynucleotide may be lower.
- bioactive trigger polynucleotides are incorporated into a plant cell following topical application of the bioactive trigger polynucleotides to a surface of the plant, for example, by spraying the plant with the bioactive trigger polynucleotides.
- bioactive trigger polynucleotides are applied without wounding plant tissue and cells, such as, by mechanical-type wounding or particle bombardment.
- bioactive trigger polynucleotides are incorporated into a plant cell without infection with viral vector.
- compositions comprising an effective amount of a bioactive trigger polynucleotide, alone or in combination with other components, for example, one or more non-polynucleotide herbicide molecules, and/or one or more transfer agents.
- one or more bioactive trigger polynucleotides are provided in the same composition as a transfer agent.
- the bioactive trigger polynucleotides and the transfer agent are separately applied.
- one or more bioactive trigger polynucleotides and one or more non-polynucleotide herbicide molecules are provided in the same composition.
- one or more bioactive trigger polynucleotides and one or more non-polynucleotide herbicide molecules are provided in separately applied compositions.
- the transfer agent and non-polynucleotide herbicide are provided in the same composition.
- a composition comprising one or more bioactive trigger polynucleotides, one or more transfer agents and one or more non-polynucleotide herbicides.
- one or more of the bioactive trigger polynucleotide, the non-polynucleotide herbicide and the transfer agent is provided in a liquid composition.
- Non-polynucleotide herbicides may be applied concomitantly with a bioactive trigger polynucleotide or the bioactive trigger polynucleotide and the non-polynucleotide herbicide may be applied at different times.
- a composition comprising a bioactive trigger polynucleotide is provided to a plant prior to providing a composition comprising a non-polynucleotide herbicide.
- a composition comprising a bioactive trigger polynucleotide is provided to a plant subsequent to providing a non-polynucleotide herbicide.
- bioactive trigger polynucleotides may be applied concomitantly with a transfer agent. In other embodiments, the bioactive trigger polynucleotides and the transfer agent are applied at different times. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant prior to providing a composition comprising a transfer agent. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant subsequent to providing a transfer agent.
- compositions and methods that provide multi-species weed control.
- Numerous non-polynucleotide herbicides are known and can be added, either alone or in combination with one or more non-polynucleotide herbicides having similar or different modes of action (herein referred to as co-herbicides), to a composition comprising a bioactive EPSPS trigger polynucleotide or can be used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds.
- members of the herbicide families include, but are not limited to: amide herbicides, aromatic acid herbicides, arsenical herbicides, benzothiazole herbicides, benzoylcyclohexanedione herbicides, benzofuranyl alkylsulfonate herbicides, carbamate herbicides, cyclohexene oxime herbicides, cyclopropylisoxazole herbicides, dicarboximide herbicides, dinitroaniline herbicides, dinitrophenol herbicides, diphenyl ether herbicides, dithiocarbamate herbicides, halogenated aliphatic herbicides, imidazolinone herbicides, inorganic herbicides, nitrile herbicides, organophosphorus herbicides, oxadiazolone herbicides, oxazole herbicides, phenoxy herbicides, phenylenediamine herbicides, pyrazole herbicides, pyrida
- herbicides of the families include but are not limited to acetochlor, acifluorfen, acifluorfen-sodium, aclonifen, acrolein, alachlor, alloxydim, allyl alcohol, ametryn, amicarbazone, amidosulfuron, aminopyralid, amitrole, ammonium sulfamate, anilofos, asulam, atraton, atrazine, azimsulfuron, BCPC, beflubutamid, benazolin, benfluralin, benfuresate, bensulfuron, bensulfuron-methyl, bensulide, bentazone, benzfendizone, benzobicyclon, benzofenap, bifenox, bilanafos, bispyribac, bispyribac-sodium, borax, bromacil, bromobutide, bromoxynil, butachlor, butafenacil, but
- herbicidal compounds of unspecified modes of action as described in CN101279950A, CN101279951A, DE10000600A1, DE10116399A1, DE102004054666A1, DE102005014638A1, DE102005014906A1, DE102007012168A1, DE102010042866A1, DE10204951A1, DE10234875A1, DE10234876A1, DE10256353A1, DE10256354A1, DE10256367A1, EP1157991A2, EP1238586A1, EP2147919A1, EP2160098A2, JP03968012B2, JP2001253874A, JP2002080454A, JP2002138075A, JP2002145707A, JP2002220389A, JP2003064059A, JP2003096059A, JP2004051628A, JP2004107228A, JP2005008583A, JP2005239675A, JP2005314407
- two or more non-polynucleotide herbicides with similar modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds.
- compositions and methods that utilize alternative modes of action are used for difficult to control weed species.
- two or more non-polynucleotide herbicides with different modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds.
- one or more non-polynucleotide herbicides with similar or different modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide and a bioactive trigger polynucleotide targeting a herbicide target gene other than EPSPS to control weeds.
- a bioactive EPSPS trigger polynucleotide is used in conjunction with an EPSPS-inhibitor herbicide and an herbicide having a different mode of action.
- a bioactive EPSPS trigger polynucleotide is used in conjunction with an EPSPS-inhibitor herbicide, a herbicide having a different mode of action and a bioactive trigger polynucleotide targeting a herbicide target gene other than EPSPS.
- compositions and methods that enhance the activity of non-polynucleotide herbicides.
- the rates of use of the non-polynucleotide herbicides can be reduced in compositions comprising bioactive EPSPS trigger polynucleotides. For example, reductions in use rate of 10-25 percent, 26-50 percent, 51-75 percent or more can be achieved.
- a bioactive EPSPS trigger polynucleotide can reduce the amount of an EPSPS-inhibitor herbicide used to effectively kill weeds by at least 10, 15, 20, 25, 30, 35, 40, 50, 55, 60, 65, 70, 75, or 80 percent.
- a bioactive EPSPS trigger polynucleotide is utilized in conjunction with one or more auxin-like herbicides to control weeds.
- auxin-like herbicides include benzoic acid herbicide, phenoxy carboxylic acid herbicide, pyridine carboxylic acid herbicide, quinoline carboxylic acid herbicide, pyrimidine carboxylic acid herbicide, and benazolin-ethyl herbicide.
- Auxin-like herbicides also include phenoxy carboxylic acid compounds, pyridine carboxylic acid compounds, quinoline carboxylic acid compounds, and benazolin-ethyl compounds.
- phenoxy carboxylic acid compounds include, but are not limited to 2,4-dichlorophenoxyacetic acid, (4-chloro-2-methylphenoxy) acetic acid, diclorprop (2,4-DP), mecoprop (MCPP), and clomeprop.
- pyridine herbicides include, but are not limited to clopryalid, picloram, fluroxypyr, aminocyclopyrachlor and triclopyr. These auxin-like herbicides are useful in a tank mix, concomitantly, or pre or post treatment with the compositions.
- Auxin-like herbicides include commercially available formulations, for example, including but not limited to, 2,4-D, 2,4-DB (BUTYRAC® 200, Albaugh, LLC, Ankeny, Iowa; Bakker), MCPA (RHONOX®, RHOMENE®, Nufarm US, Morrisville, N.C.), mecoprop, dichlorprop, 2,4,5-T, triclopyr (GARLON®, Dow AgroSciences, Indianapolis, Ind.), chloramben, dicamba (BANVEL®, BASF Corporation, Ludwigshafen, Germany; CLARITY®, BASF Corporation, Ludwigshafen, Germany; ORACLE®, Gharda Chemicals Limited, Newtown, Pa.; STERLING BLUE®, Winfield Solutions, LLC, St.
- a bioactive EPSPS trigger polynucleotide is utilized in conjunction with one or more benzoic acid herbicides to control weeds.
- Benzoic acid herbicides are effective herbicides for both pre-emergence and post-emergence weed management.
- the benzoic acid herbicide group includes dicamba (3,6-dichloro-o-anisic acid), chloramben (3-amino-2,5-dichlorobenzoic acid), and TBA (2,3,6-trichlorobenzoic acid).
- Dicamba is one of the many auxin-like herbicides that is a low-cost, environmentally friendly herbicide that has been used as a pre-emergence and post-emergence herbicide to effectively control annual and perennial broadleaf weeds and several grassy weeds in corn, sorghum, small grains, pasture, hay, rangeland, sugarcane, asparagus, turf, and grass seed crops ( Crop Protection Chemicals Reference , pp. 1803-1821, Chemical & Pharmaceutical Press, Inc., New York, N.Y., 11th ed., 1995). Dicamba refers to 3,6-dichloro-o-anisic acid or 3,6-dichloro-2-methoxy benzoic acid and its acids and salts.
- Its salts include isopropylamine, diglycoamine, dimethylamine, potassium and sodium.
- Examples of commercial formulations of dicamba include BANVELTM (as DMA salt, BASF, Research Triangle Park, N.C.), CLARITY® (DGA salt, BASF Corporation, Ludwigshafen, Germany), VEL-58-CS-11TM (BASF) and VANQUISHTM (DGA salt, BASF Corporation, Ludwigshafen, Germany).
- Dicamba is a useful herbicide as a tank mix, concomitantly, or pre or post treatment with the compositions.
- a method comprising providing a bioactive trigger polynucleotide to a herbicide-tolerant plant.
- the herbicide-tolerant plant comprises a transgene that confers herbicide tolerance.
- Herbicides for which transgenes for plant tolerance have been demonstrated include, but are not limited to: auxin-like herbicides, glyphosate, glufosinate, sulfonylureas, imidazolinones, bromoxynil, delapon, dicamba, cyclohezanedione, protoporphyrionogen oxidase inhibitors, and 4-hydroxyphenyl-pyruvate-dioxygenase inhibitors.
- transgenes and their polynucleotide molecules that encode proteins involved in herbicide tolerance are known in the art.
- transgenes and their polynucleotide molecules that encode proteins involved in herbicide tolerance include, but are not limited to: 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS), for example, as more fully described in U.S. Pat. Nos.
- EPSPS 5-enolpyruvylshikimate-3-phosphate synthase
- herbicide-tolerance traits include those conferred by polynucleotides encoding an exogenous phosphinothricin acetyltransferase, such as described in U.S. Pat. Nos. 5,969,213; 5,489,520; 5,550,318; 5,874,265; 5,919,675; 5,561,236; 5,648,477; 5,646,024; 6,177,616; and 5,879,903. Plants containing an exogenous phosphinothricin acetyltransferase can exhibit improved tolerance to glufosinate herbicides, which inhibit the enzyme glutamine synthase.
- herbicide-tolerance polynucleotides include those conferred by polynucleotides conferring altered protoporphyrinogen oxidase (protox) activity, as described in U.S. Pat. Nos. 6,288,306 B1; 6,282,837 B1; and 5,767,373; and International Publication WO2001/12825. Plants containing such polynucleotides can exhibit improved tolerance to any of a variety of herbicides which target the protox enzyme (also referred to as protox inhibitors). Polynucleotides encoding a glyphosate oxidoreductase and a glyphosate-N-acetyl transferase (GOX described in U.S.
- Transgenic crops with one or more herbicide tolerances may need specialized methods of management to control weeds.
- Several embodiments enable the targeting of a transgene for herbicide tolerance to permit the treated plants to become sensitive to the herbicide.
- an EPSPS DNA contained in a transgenic crop event can be a target for bioactive trigger polynucleotides in order to render the transgenic crop sensitive to application of the corresponding glyphosate containing herbicide.
- transgenic events include but are not limited to DAS-44406-6, MON883302, MON87427, FG72, HCEM485, H7-1, ASR368, J101, J163, DP-098140, GHB614, 356043, MON89788, MON88913, RT200, NK603, GTSB77, GA21, MON1445, and 40-3-2 and US patent publications: 20110126310, 20090137395, herein incorporated in their entirety by reference hereto.
- a “transfer agent” is an agent that, when combined with a polynucleotide in a composition that is topically applied to a target plant surface, enables the polynucleotide to enter a plant cell.
- a transfer agent is an agent that conditions the surface of plant tissue, e.g., leaves, stems, roots, flowers, or fruits, to permeation by bioactive trigger polynucleotides into plant cells.
- methods include one or more applications of a bioactive trigger polynucleotide composition and one or more applications of a transfer agent for conditioning of a plant to permeation by bioactive trigger polynucleotides.
- the transfer of bioactive trigger polynucleotides into plant cells can be facilitated by the prior or contemporaneous application of a polynucleotide-transferring agent to the plant tissue.
- the transferring agent is applied subsequent to the application of the polynucleotide composition.
- the transfer agent enables bioactive trigger polynucleotides to pass through cuticle wax barriers, stomata and/or cell wall or membrane barriers into plant cells.
- Suitable transfer agents to facilitate transfer of the bioactive trigger polynucleotide into a plant cell include agents that increase permeability of the exterior of the plant or that increase permeability of plant cells to oligonucleotides or polynucleotides.
- agents to facilitate transfer of the bioactive trigger polynucleotide into a plant cell include a chemical agent, or a physical agent, or combinations thereof.
- Chemical agents for conditioning or transfer include (a) surfactants, (b) organic solvents or an aqueous solution or aqueous mixtures of organic solvents, (c) oxidizing agents, (d) acids, (e) bases, (f) oils, (g) enzymes, or combinations thereof.
- Embodiments of a method of providing a bioactive polynucleotide trigger to plant cells can optionally include an incubation step, a neutralization step (e.g., to neutralize an acid, base, or oxidizing agent, or to inactivate an enzyme), a rinsing step, or combinations thereof.
- a neutralization step e.g., to neutralize an acid, base, or oxidizing agent, or to inactivate an enzyme
- agents or treatments for conditioning of a plant to permeation by bioactive trigger polynucleotides include emulsions, reverse emulsions, liposomes, and other micellar-like compositions.
- Embodiments of agents or treatments for conditioning of a plant to permeation by bioactive trigger polynucleotides include counter-ions or other molecules that are known to associate with nucleic acid molecules, e.g., inorganic ammonium ions, alkyl ammonium ions, lithium ions, polyamines such as spermine, spermidine, or putrescine, and other cations.
- nucleic acid molecules e.g., inorganic ammonium ions, alkyl ammonium ions, lithium ions, polyamines such as spermine, spermidine, or putrescine, and other cations.
- Organic solvents useful in conditioning a plant to permeation by bioactive trigger polynucleotides include DMSO, DMF, pyridine, N-pyrrolidine, hexamethylphosphoramide, acetonitrile, dioxane, polypropylene glycol, other solvents miscible with water or that will dissolve phosphonucleotides in non-aqueous systems (such as is used in synthetic reactions).
- Naturally derived or synthetic oils with or without surfactants or emulsifiers can be used, e.g., plant-sourced oils, crop oils (such as those listed in the 9 th Compendium of Herbicide Adjuvants, publicly available on the worldwide web (internet) at herbicide.adjuvants.com) can be used, e.g., paraffinic oils, polyol fatty acid esters, or oils with short-chain molecules modified with amides or polyamines such as polyethyleneimine or N-pyrrolidine.
- the transfer agent is an organosilicone preparation.
- an organosilicone preparation that is commercially available as SILWET® L-77 surfactant having CAS Number 27306-78-1 and EPA Number: CAL.REG.NO. 5905-50073-AA, and currently available from Momentive Performance Materials, Albany, N.Y. can be used to prepare a bioactive trigger polynucleotide composition.
- SILWET® L-77 organosilicone preparation is used as a pre-spray treatment of plant leaves or other plant surfaces
- concentrations in the range of about 0.015 to about 2 percent by weight (wt percent) e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) are efficacious in preparing a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells from a topical application on the surface.
- any commercially available organosilicone preparation is used or provided.
- one or more of the following commercially available organosilicone preparations can be used as transfer agents in a bioactive trigger polynucleotide composition or applied as a pre-spray treatment to prepare a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells: BREAK-THRU® S 321, BREAK-THRU® S 200 Cat#67674-67-3, BREAK-THRU® OE 441 Cat#68937-55-3, BREAK-THRU® S 278 Cat #27306-78-1, BREAK-THRU® S 243, BREAK-THRU® S 233 Cat#134180-76-0, available from manufacturer Evonik Goldschmidt (Germany), SILWET® HS 429, SILWET® HS 312, SILWET® HS 508, SILWET® HS 604 (Momentive Performance Materials, Albany, N.Y.
- concentrations in the range of about 0.015 to about 2 percent by weight (wt percent) e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) are efficacious in preparing a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells from a topical application on the surface.
- wt percent percent by weight
- a composition that comprises a bioactive trigger polynucleotide molecule and an organosilicone preparation in the range of about 0.015 to about 2 percent by weight (wt percent) e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) is used or provided.
- wt percent percent by weight
- Organosilicone preparations used in the methods and compositions provided herein can comprise one or more effective organosilicone compounds.
- the phrase “effective organosilicone compound” is used to describe any organosilicone compound that is found in an organosilicone preparation that promotes internalization of a bioactive trigger polynucleotide into a plant cell.
- an effective organosilicone compound can enable a bioactive trigger polynucleotide to enter a plant cell in a manner permitting bioactive trigger polynucleotide mediated suppression of target gene expression in the plant cell.
- effective organosilicone compounds include, but are not limited to, compounds that can comprise: i) a trisiloxane head group that is covalently linked to, ii) an alkyl linker including, but not limited to, an n-propyl linker, that is covalently linked to, iii) a poly glycol chain, that is covalently linked to, iv) a terminal group.
- Trisiloxane head groups of such effective organosilicone compounds include, but are not limited to, heptamethyltrisiloxane.
- Alkyl linkers can include, but are not limited to, an n-propyl linker.
- Poly glycol chains include, but are not limited to, polyethylene glycol or polypropylene glycol.
- Poly glycol chains can comprise a mixture that provides an average chain length “n” of about “7.5”. In certain embodiments, the average chain length “n” can vary from about 5 to about 14.
- Terminal groups can include, but are not limited to, alkyl groups such as a methyl group.
- Effective organosilicone compounds are believed to include, but are not limited to, trisiloxane ethoxylate surfactants or polyalkylene oxide modified heptamethyl trisiloxane.
- an organosilicone preparation that comprises an organosilicone compound comprising a trisiloxane head group is used in the methods and compositions provided herein. In certain embodiments, an organosilicone preparation that comprises an organosilicone compound comprising a heptamethyltrisiloxane head group is used in the methods and compositions provided herein. In certain embodiments, an organosilicone composition that comprises Compound I is used in the methods and compositions provided herein. In certain embodiments, an organosilicone composition that comprises Compound I is used in the methods and compositions provided herein.
- a composition that comprises a bioactive trigger polynucleotide molecule and one or more effective organosilicone compound in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) is used or provided.
- wt percent percent by weight
- the transfer agent is a plant hormone.
- plant hormones include abscisic acid, auxin, cytokinin, gibberellin, jasmonate, ethylene, salicyclic acid, nitric oxide, a strigolactone.
- the transfer agent is the plant hormone, Brassinosteroid.
- the liposome will have a solid core comprised of bioactive trigger molecules; such liposomes encapsulating bioactive trigger molecules and having a solid core are termed “lipid nanoparticles” herein.
- the bioactive trigger molecules are not encapsulated by a liposome.
- the bioactive trigger molecules can be complexed on the outer surface of the.
- the bioactive trigger molecules is accessible to the aqueous medium.
- the cationic lipids can be used in combination with other lipid components such as cholesterol and PEG-lipids to form lipid nanoparticles with bioactive trigger molecules.
- expression of an EPSPS gene in a plant is modulated by (a) conditioning of a plant to permeation by bioactive trigger polynucleotides and (b) treatment of the plant with the bioactive trigger polynucleotides, wherein the bioactive trigger polynucleotides include at least one segment of 18 or more contiguous nucleotides cloned from or otherwise identified from the target EPSPS gene in either anti-sense or sense orientation, whereby the bioactive trigger polynucleotide molecules permeate the interior of the plant and induce modulation of the target gene.
- the conditioning and polynucleotide application can be performed separately or in a single step.
- the conditioning can precede or can follow the bioactive trigger polynucleotide application within minutes, hours, or days.
- more than one conditioning step or more than one application of bioactive trigger polynucleotide molecules can be performed on the same plant.
- ligands can be tethered to a bioactive trigger polynucleotide, for example a dsRNA, ssRNA, dsDNA or ssDNA trigger polynucleotide.
- a bioactive trigger polynucleotide for example a dsRNA, ssRNA, dsDNA or ssDNA trigger polynucleotide.
- Ligands in general can include modifiers, e.g., for enhancing uptake; diagnostic compounds or reporter groups e.g., for monitoring distribution; cross-linking agents; nuclease-resistance conferring moieties; and natural or unusual nucleobases.
- lipids e.g., cholesterol, a bile acid, or a fatty acid (e.g., lithocholic-oleyl, lauroyl, docosnyl, stearoyl, palmitoyl, myristoyl oleoyl, linoleoyl), steroids (e.g., uvaol, hecigenin, diosgenin), terpenes (e.g., triterpenes, e.g., sarsasapogenin, Friedelin, epifriedelanol derivatized lithocholic acid), vitamins (e.g., folic acid, vitamin A, biotin, pyridoxal), carbohydrates, proteins, protein binding agents, integrin targeting molecules, polycationics, peptides, polyamines, and peptide mimics.
- lipids e.g., cholesterol, a bile acid, or a fatty acid
- steroids e.g.
- the ligand may also be a recombinant or synthetic molecule, such as a synthetic polymer, e.g., polyethylene glycol (PEG), PEG-40K, PEG-20K and PEG-5K.
- a synthetic polymer e.g., polyethylene glycol (PEG), PEG-40K, PEG-20K and PEG-5K.
- Other examples of ligands include lipophilic molecules, e.g., cholesterol, cholic acid, adamantane acetic acid, 1-pyrene butyric acid, dihydrotestosterone, glycerol (e.g., esters and ethers thereof, e.g., C 10 , C 11 , C 12 , C 13 , C 14 , C 15 , C 16 , C 17 , C 18 , C 19 , or C 20 alkyl; e.g., lauroyl, docosnyl, stearoyl, oleoyl, lin
- conjugating a ligand to a bioactive trigger polynucleotide enhances its cellular absorption.
- a lipophilic moiety is conjugated to a bioactive trigger polynucleotide, for example dsRNA.
- Lipophilic compounds that may be conjugated to a bioactive trigger polynucleotide include, but are not limited to, 1-pyrene butyric acid, 1,3-bis-O-(hexadecyl)glycerol, and menthol.
- a ligand for receptor-mediated endocytosis is folic acid. Folic acid enters the cell by folate-receptor-radiated endocytosis.
- Bioactive trigger polynucleotides bearing folic acid would be efficiently transported into the cell via the folate-receptor-mediated endocytosis.
- Other ligands that have been conjugated to polynucleotides include polyethylene glycols, carbohydrate clusters, cross-linking agents, porphyrin conjugates, delivery peptides and lipids such as cholesterol.
- conjugation of a cationic ligand to polynucleotides results in improved resistance to nucleases.
- Representative examples of cationic ligands are propylammonium and dimethylpropylammonium.
- antisense polynucleotides were reported to retain their high binding affinity to mRNA when the cationic ligand was dispersed, throughout the oligonucleotide. See M. Manoharan Antisense & Nucleic Acid Drug Development 2002, 12, 103 and references therein.
- bioactive trigger nucleotides to the interior of a plant cell can be accomplished by a variety of methods including, without limitation, (1) loading liposomes with a trigger polynucleotide provided herein and (2) complexing a trigger polynucleotide with lipids or liposomes to form nucleic acid-lipid or nucleic acid-liposome complexes.
- the liposome can be composed of cationic and neutral lipids commonly used to transfect cells in vitro. Cationic lipids can complex (e.g., charge-associate) with negatively charged, nucleic acids to form liposomes.
- cationic liposomes examples include, without limitation, LIPOFECTIN® (Invitrogen/Life Technologies, Carlsbad, Calif.; a 1:1 (w/w) liposome formulation of the cationic lipid N-[1-(2,3-dioleyloxy)propyl]-n,n,n-trimethylammonium chloride (DOTMA)), LIPOFECTAMINE® (Invitrogen/Life Technologies, Carlsbad, Calif.; a cationic liposome formulation with a neutral co-lipid), LIPOFECTACE® (Invitrogen/Life Technologies, Carlsbad, Calif.; a 1:2.5 (w/w) formulation of dimethyldioctadecylammonium bromide and dioleoylphosphatidylethanolamine), and DOTAP.
- LIPOFECTIN® Invitrogen/Life Technologies, Carlsbad, Calif.
- DOTMA 1-(2,3-dioleyloxy)propyl]-n,n,n
- Liposome compositions can be formed, for example, from phosphatidylcholine, dimyristoyl phosphatidylcholine, dipalmitoyl phosphatidylcholine, dimyristoyl phosphatidyl glycerol, dioleoyl phosphatidylethanolamine or liposomes comprising dihydrosphingomyelin (DHSM).
- DHSM dihydrosphingomyelin
- lipophilic agents are commercially available, including LIPOFECTIN® (Invitrogen/Life Technologies, Carlsbad, Calif.) and EFFECTENETM (Qiagen, Valencia, Calif.; a non-liposomal lipid formulation in conjunction with a DNA-condensing enhancer).
- systemic delivery methods can be optimized using commercially available cationic lipids such as DDAB or DOTAP, each of which can be mixed with a neutral lipid such as DOPE or cholesterol.
- liposomes such as those described by Templeton et al. (Nature Biotechnology, 15:647-652 (1997)) can be used.
- polycations such as polyethyleneimine can be used to achieve delivery in vivo and ex vivo (Boletta et al., J. Am Soc. Nephrol. 7:1728 (1996)). Additional information regarding the use of liposomes to deliver nucleic acids can be found in U.S. Pat. No. 6,271,359, PCT Publication WO 96/40964 and Morrissey, D. et al. 2005. Nat Biotechnol. 23(8):1002-7.
- the bioactive trigger polynucleotide compositions may also be used as mixtures with various agricultural chemicals and/or insecticides, miticides and fungicides, pesticidal and biopesticidal agents.
- examples include but are not limited to azinphos-methyl, acephate, isoxathion, isofenphos, ethion, etrimfos, oxydemeton-methyl, oxydeprofos, quinalphos, chlorpyrifos, chlorpyrifos-methyl, chlorfenvinphos, cyanophos, dioxabenzofos, dichlorvos, disulfoton, dimethylvinphos, dimethoate, sulprofos, diazinon, thiometon, tetrachlorvinphos, temephos, tebupirimfos, terbufos, naled, vamidothion, pyraclofos, pyri
- an agronomic field in need of weed control is treated by application of an agricultural chemical composition directly to the surface of the growing plants, such as by a spray.
- an agricultural chemical composition directly to the surface of the growing plants, such as by a spray.
- a composition comprising a bioactive trigger polynucleotide and one or more of a transfer agent and a non-polynucleotide herbicide is applied to control weeds in a field of crop plants by spraying the field with the composition.
- the composition can be provided as a tank mix with one or more herbicidal chemicals and additional pesticidal chemicals to control pests and diseases of the crop plants in need of pest and disease control.
- a sequential treatment of components for example, the bioactive trigger polynucleotide-containing composition followed by the herbicide
- a simultaneous treatment or mixing of one or more of the components of the composition from separate containers is contemplated.
- Treatment of the field can occur as often as needed to provide weed control and the components of the composition can be adjusted to target specific weed species or weed families through utilization of specific bioactive trigger polynucleotides or bioactive trigger polynucleotide-containing compositions capable of selectively targeting the specific species or plant family to be controlled.
- the composition can be applied at effective use rates according to the time of application to the field, for example, preplant, at planting, post planting, and post harvest.
- Glyphosate can be applied to a field at rates of 11-44 ounces/acre up to 7.2875 pounds/acre.
- the bioactive trigger polynucleotides of the composition can be applied at rates of 1 to 30 grams per acre depending on the number of bioactive trigger polynucleotide molecules needed for the scope of weeds in the field.
- Crop plants in which weed control may be needed include but are not limited to corn, soybean, cotton, canola, sugar beet, alfalfa, sugarcane, rice, and wheat; vegetable plants including, but not limited to, tomato, sweet pepper, hot pepper, melon, watermelon, cucumber, eggplant, cauliflower, broccoli, lettuce, spinach, onion, peas, carrots, sweet corn, Chinese cabbage, leek, fennel, pumpkin, squash or gourd, radish, Brussels sprouts, tomatillo, garden beans, dry beans, or okra; culinary plants including, but not limited to, basil, parsley, coffee, or tea; or fruit plants including but not limited to apple, pear, cherry, peach, plum, apricot, banana, plantain, table grape, wine grape, citrus, avocado, mango, or berry; a tree grown for ornamental or commercial use, including, but not limited to, a fruit or nut tree; ornamental plant (e.g., an ornamental flowering plant or shrub or turf grass).
- the methods and compositions provided herein can also be applied to plants that are not grown from seed, including fruit trees and plants that include, but are not limited to, avocados, tomatoes, eggplant, cucumber, melons, watermelons, and grapes as well as various ornamental plants.
- methods and compositions provided herein can also be applied to plants produced by a cutting, cloning, or grafting process.
- EPSPS 5-enolpyruvylshikimate-3-phosphate synthase
- dsRNA molecules were designed using Palmer amaranth EPSPS cDNA sequence (SEQ ID NO: 1) to comprise an anti-sense strand that is complementary to positions 398-447 (, SEQ ID NO: 4) or positions 1189-1241 (, SEQ ID NO: 6) of Amaranthus palmeri EPSPS cDNA.
- the Palmer amaranth EPSPS sequences targeted by the bioactive dsRNA triggers are indicated by the lowercase nucleotides.
- the two bioactive dsRNA trigger molecules are further capable of hybridizing with mRNA transcribed from the Amaranthus rudis (waterhemp) EPSPS gene (SEQ ID NO: 2).
- SEQ ID NO: 4 complements Amaranthus rudis EPSPS at positions 398-427, 429-433, and 435-447 as indicated by the lowercase nucleotides, with two mismatches at positions 428 and 434 (underlined).
- SEQ ID NO: 6 complements Amaranthus rudis EPSPS at positions 1189-1202, and 1204-1241 as indicated by the lowercase nucleotides, with one mismatch at position 1203 (underlined).
- EPSPS target and trigger sequences SEQ ID NOs: 1-8 SEQ ID NO: Description Sequence 1 EPSPS cDNA ATGGCTCAAGCTACTACCATCAACAATGGTGTCCATACTGGTCAAT Amaranthus TGCACCATACTTTACCCAAAACCCAGTTACCCAAATCTTCAAAAAC palmeri TCTTAATTTTGGATCAAACTTGAGAATTTCTCCAAAGTTCATGTCTT TAACCAATAAAAGAGTTGGTGGGCAATCATCAATTGTTCCCAAGA TTCAAGCTTCTGTTGCTGCTGCAGCTGAGAAACCTTCATCTGTCCC AGAAATTGTGTTACAACCCATCAAAGAGATCTCTGGTACTGTTCAA TTGCCTGGGTCAAAGTCTTTATCCAATCGAATCCTTCTTTTAGCTGC TTTGTCTGAGGGCACAACAGTGGTCGACAACTTGCTGTATAGTGAT GATATTCTTTATATGTTGGACGCTCAgaactcttggtttaaaagtggaggat
- EPSPS gene A number of plant species contain an EPSPS gene.
- a gene encoding an EPSPS polynucleotide molecule occurs naturally in the genome of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis , and Xanthium strumarium .
- the nucleotide sequences of SEQ ID NO 3 and SEQ ID NO 5 were compared to the EPSPS gene sequences of various plant species and target sequences having at least 85% identity or complementarity to SEQ ID NOs 3-6 were identified.
- EPSPS target sequences identified as having at least 85% identity or complementarity to SEQ ID NOs 3-6 are shown in Table 2 (mismatches are underlined).
- Bioactive trigger polynucleotides comprising a nucleotide sequence having at least 85% identity or complementarity to SEQ ID NOs: 9-35 are contemplated for down regulating EPSPS expression and controlling herbicide resistant weeds.
- Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the triggers were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to the desired concentration.
- the trigger formulations were then topically applied to the leaves of glyphosate-resistant Amaranthus palmeri plants (“R-22”). Control plants were either untreated or treated with the 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer solution.
- WEATHERMAX® brand glyphosate herbicide (RU Wmax, Monsanto, St Louis, Mo.) was applied to the plants at 1.5 lb/ac.
- 11 days after treatment (DAT) with EPSPS trigger polynucleotides the percent growth reduction of the dsRNA treated plants was assessed relative to untreated control plants by visual score.
- DAT the fresh weight of the dsRNA treated and control plants were determined. Four replications were performed per treatment.
- the mid-sized polynucleotide trigger molecules corresponding to SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6, showed similar activity to the trigger sequence corresponding to SEQ ID NOs: 7 and 8 in sensitizing glyphosate-resistant Amaranthus palmeri plants to glyphosate. See also FIG. 1 .
- dsRNA triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the triggers were each formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a concentration of 8 nmol.
- the trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp.
- Control plants were either untreated or treated with a solution of 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer.
- WEATHERMAX® brand glyphosate herbicide was applied to the plants at 1.5 lb/ac.
- Four replications were performed per treatment. The fresh weight of the plants was determined 14 DAT with EPSPS trigger polynucleotides and the fresh weight % compared to control plants (treated with WEATHERMAX® brand glyphosate herbicide alone) was calculated. See Table 4.
- the trigger polynucleotides comprising SEQ ID NO 3/4 or SEQ ID NO 5/6 showed similar activity to trigger polynucleotides comprising SEQ ID NO 7/8 in sensitizing glyphosate-resistant Waterhemp plants to glyphosate.
- dsRNA Trigger Molecules Comprising SEQ ID NO 3/4 and SEQ ID NO 5/6 Reduce EPSPS mRNA in Palmer Protoplasts
- dsRNA trigger molecules corresponding to SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 were assessed in Amaranthus palmeri protoplasts.
- a 6 ug dose of each dsRNA trigger (SEQ ID NO 3/4 or SEQ ID NO 5/6) was added to Amaranthus palmeri protoplasts.
- the dsRNA triggers comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 reduced EPSPS mRNA levels by 69% and 84%, respectively.
- Bioactive EPSPS Trigger Molecules Increase Susceptibility of Glyphosate-Resistant Waterhemp to Glyphosate
- SEQ ID NOs 3 and 4 or SEQ ID NOs 5 and 6 were assessed in glyphosate-resistant Waterhemp (WH13) in relation to a 24-mer trigger comprising SEQ ID NOs 7 and 8, which was known to sensitize glyphosate-resistant Waterhemp to glyphosate.
- Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the bioactive trigger polynucleotides were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a concentration of 2 nmol, 4 nmol, 8 nmol or 16 nmol.
- the trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp plants (“WH13”). Control plants were either untreated or treated with the 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer solution.
- FIG. 3 shows the plants at 14 days after treatment.
- the mid-sized bioactive trigger polynucleotide molecules comprising SEQ ID NOs: 5 and 6 or SEQ ID NOs: 3 and 4, sensitize glyphosate-resistant Waterhemp plants to glyphosate.
- a composition comprising at least one bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical and/or essentially complementary to SEQ ID NOs: 3-35 or a fragment thereof and a transfer agent that mobilizes the bioactive trigger polynucleotide into a plant cell is applied to a field of growing plants at an effective concentration.
- an effective concentration of a bioactive trigger polynucleotide can have a use rate of about 1 to 30 grams or more per acre depending on the size of the bioactive trigger polynucleotide and the number of bioactive trigger polynucleotides in the composition.
- the bioactive trigger polynucleotide of the composition may be a dsRNA, ssDNA or dsDNA or a combination thereof.
- An effective concentration of bioactive trigger polynucleotides modulate the expression of an EPSPS gene in one or more target weed plant species to promote sensitivity of the target weed plant species to glyphosate.
- a glyphosate-containing herbicide is applied to control weeds in the field.
- the composition optionally comprises a bioactive trigger polynucleotide that modulates the expression of an essential gene and optionally a herbicide that has a different mode of action relative to glyphosate.
- the composition may include one or more additional herbicides as needed to provide effective multi-species weed control.
- a composition comprising 1 or 2 or 3 or 4 or more of bioactive trigger polynucleotide that are essentially identical or essentially complementary to SEQ ID NOs: 3-35 or a fragment thereof would enable broad activity of the composition against the multiple weed species that occur in a field environment.
- the EPSPS cDNA of SEQ ID NO: 1 was tiled across the entire length of the cDNA to identify target sequences for bioactive trigger polynucleotides covering as shown in Table 5.
- the target nucleotide sequence were chosen to be approximately 47-62 bp in length.
- Bioactive trigger polynucleotides comprising a nucleotide sequence having at least 85% identity or complementarity to SEQ ID NOs: 36-66 were tested for the ability to sensitize glyphosate-resistant Waterhemp to glyphosate.
- Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences corresponding to SEQ ID NOs: 36-62 were produced and the bioactive trigger polynucleotides were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a final concentration of 8 nmol.
- the trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp plants (“WH13”). Control plants were either untreated or treated with the formulation 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate “buffer” solution.
- dsRNA comprising SEQ ID NOs: 7 and 8 (24-mer EPSPS trigger) was applied as a control.
- WEATHERMAX® brand glyphosate herbicide (RU Wmax, Monsanto, St Louis, Mo.) was applied to the plants at 1.5 lb/ac.
- FIG. 4 shows the fresh weight (g) of the plants at 14 days after treatment.
- bioactive trigger polynucleotide molecules sensitize glyphosate-resistant Waterhemp plants to glyphosate, in particular, in addition to bioactive trigger polynucleotides comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6, it was observed that bioactive trigger polynucleotides corresponding to SEQ ID NOs: 36, 42, 43, 44, 57, 58 and 59 had good efficacy.
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Abstract
Provided are novel polynucleotide compositions for enhancing the herbicidal activity of glyphosate. Specifically provided are methods and compositions for modulating 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) in plant species. The present compositions and methods are useful in controlling glyphosate resistant weeds.
Description
- This application is a continuation of U.S. patent application Ser. No. 15/111,729, filed on Jul. 14, 2017, which is a 371 National Stage Application of PCT/US2015/011408, filed on Jan. 14, 2015, which claims the benefit of U.S. Provisional Application No. 61/927,682, filed on Jan. 15, 2014, which are incorporated by reference herein in their entireties.
- A computer readable form of a sequence listing is filed with this application by electronic submission and is incorporated into this application by reference in its entirety. The sequence listing is contained in the file named P34158US02 SEQ.txt, which is 16,959 bytes in size (measured in operating system MS windows) and was created on May 10, 2019.
- The embodiments relate generally to the field of weed management. More specifically, embodiments relate compositions and methods for controlling weed species utalizing polynucleotide molecules. Further provided are compositions containing polynucleotide molecules and methods of utilizing such compositions for altering the physiology of plants and modulating the effect of herbicide treatment.
- Weeds are plants that are unwanted in a particular environment. For example, in an agronomic environment, weeds are plants that compete with cultivated plants. Weeds can also serve as hosts for crop diseases and insect pests. In agricultural production environments, weeds can cause decreases in crop yield, reduced crop quality, increased irrigation costs, increased harvesting costs, reduced land value, injury to livestock, and crop damage from insects and diseases harbored by the weeds. The principal means by which weeds cause these effects are: 1) competing with crop plants for water, nutrients, sunlight and other essentials for growth and development, 2) production of toxic or irritant chemicals that cause human or animal health problems, 3) production of immense quantities of seed or vegetative reproductive parts or both that contaminate agricultural products and perpetuate the weed species in agricultural lands, and 4) production on agricultural and nonagricultural lands of vast amounts of vegetation requiring disposal. Weeds cost farmers billions of dollars annually in crop losses and weed control expenses.
- Chemical herbicides are often used to control the growth and spread of weeds. Chemical herbicides are active at one or more target sites within a plant where they interrupt normal plant functions. For example, the herbicide N-phosphonomethyl glycine, also known as glyphosate, targets EPSPS (5-enolpyruvylshikimate-3-phosphate synthase), the enzyme that catalyzes the conversion of shikimate-3-phosphate into 5-enolpyruvyl-shikimate-3-phosphate, which is an intermediate in the biochemical pathway for creating three essential aromatic amino acids (tyrosine, phenylalanine, and tryptophan).
- One limitation on the use of chemical herbicides to control weeds is the emergence of herbicide-resistant weeds. Herbicide resistance is the ability of a plant to survive and reproduce following exposure to a dose of herbicide that would normally be lethal. In weeds, herbicide resistance may occur naturally as the result of random and infrequent mutations. Where chemical herbicide application provides selection pressure, herbicide resistant plants survive to reproduce without competition from herbicide-susceptible plants. This selective pressure can lead to the appearance of increasing numbers of herbicide resistant weeds in a weed population. Herbicide tolerant weeds have been observed for nearly all herbicides in use. There are over 365 weed biotypes currently identified as being herbicide resistant to one or more herbicides by the Herbicide Resistance Action Committee (HRAC), the North American Herbicide Resistance Action Committee (NAHRAC), and the Weed Science Society of America (WSSA). There is a need to effectively manage these herbicide resistant weeds and to provide new compositions and techniques for weed management.
- The present embodiments relate to compositions and methods useful for sensitizing weeds to herbicides targeting 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) for the purpose of enhancing control of weeds and for the management of herbicide resistant weeds.
- Several embodiments relate to a bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NOs: 3, 5, or 9-66, or a fragment thereof. The bioactive trigger polynucleotide may be a single-stranded DNA, a single-stranded RNA, a double-stranded RNA, a double-stranded DNA, or a double-stranded DNA/RNA hybrid. In several embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to
SEQ ID NO 3 orSEQ ID NO 5. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting of SEQ ID NO: 36, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 57, SEQ ID NO: 58, SEQ ID NO: 59, SEQ ID NO: 65, SEQ ID NO: 66, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6. Several embodiments relate to plant cell comprising a bioactive trigger polynucleotide as described herein. Several embodiments relate to plant comprising a bioactive trigger polynucleotide as described herein. - Several embodiments relate to a composition comprising one or more bioactive trigger polynucleotides and a transfer agent, wherein one or more bioactive trigger polynucleotides comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof. The one or more bioactive trigger polynucleotides may each, independently, be selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids. In some embodiments, the composition comprises one or more bioactive trigger polynucleotides comprising a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting of SEQ ID NO: 36, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 57, SEQ ID NO: 58, SEQ ID NO: 59, SEQ ID NO: 65, SEQ ID NO: 66, or a fragment thereof. In some embodiments, the composition comprises one or more bioactive trigger polynucleotides comprising a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3 or SEQ ID NO: 5, or a fragment thereof. In some embodiments, the composition comprises one or more bioactive double-stranded RNA trigger polynucleotides comprising SEQ ID NOs: 3 and 4, or fragments thereof. In some embodiments, the composition comprises one or more bioactive double-stranded RNA trigger polynucleotides comprising SEQ ID NOs: 5 and 6, or fragments thereof. In some embodiments, the composition comprises a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide. In some embodiments, the composition comprises a bioactive trigger polynucleotides that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence. The composition can include various components. For example, the composition can include one or more of bioactive trigger polynucleotides, transfer agents, and non-polynucleotide herbicides. In some embodiments, the transfer agent is selected from the group consisting of a surfactant, such as an organosilicone surfactant, a cationic liposomal reagent and a plant hormone, such as Brassinosteroid. Examples of organosilicone surfactants include, but are not limited to, BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, and BREAK-THRU® S 233. In some embodiments, the composition comprises an organosilicone surfactant and ammonium sulfate. In some embodiments, the composition comprises DOTAP. In some embodiments, the composition comprises a cationic lipid. In some embodiments, the composition comprises nucleic acid lipid particles. In some embodiments, the composition comprises an EPSPS-inhibitor herbicide, such as glyphosate. In some embodiments, the composition comprises a non-EPSPS-inhibitor herbicide, such as dicamba or 2,4-D.
- Several embodiments relate to a method of plant control, comprising applying a bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence, to an external surface of a plant, plant part or seed, wherein the plant is not mechanically permiabilized and the bioactive trigger polynucleotide is incorporated into the interior of a plant cell. Examples of plants that may be controlled by such methods include, but are not limited to, Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis, and Xanthium strumarium. In some embodiments, the EPSPS gene sequence is selected from SEQ ID NOs: 1 or 2, or a fragment thereof. In some embodiments, the EPSPS gene sequence is selected from SEQ ID NOs: 9-66. In some embodiments, the EPSPS gene sequence is selected from
SEQ ID NO 36,SEQ ID NO 42,SEQ ID NO 43,SEQ ID NO 44,SEQ ID NO 57,SEQ ID NO 58,SEQ ID NO 59, SEQ ID NO 65, and SEQ ID NO 66. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary toSEQ ID NO 3 orSEQ ID NO 5, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 3 and 4, or fragments thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 5 and 6, or fragments thereof. In some embodiments of the method, a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide is applied to the plant. In some embodiments, a bioactive trigger polynucleotide that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence is applied to the plant. The method may further comprise applying one or more of a transfer agent, an EPSPS-inhibitor herbicide and other non-polynucleotide herbicides. Examples of transfer agents include, but are not limited to, surfactants, such as organosilicone surfactants, cationic lipid reagents, and plant hormones, such as Brassinosteroid. In some embodiments, the composition further comprises a non-polynucleotide herbicide. In some embodiments, the non-polynucleotide herbicide is glyphosate. In some embodiments, the non-polynucleotide herbicide is applied separately from the bioactive trigger polynucleotide. In some embodiments, the non-polynucleotide herbicide is applied concurrently with the bioactive trigger polynucleotide. - Several embodiments relate to a method of controlling growth, development or reproductive ability of a plant by topically treating the plant with a composition comprising a bioactive trigger polynucleotide and a transfer agent, wherein the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof, whereby the growth, development or reproductive ability of the plant is reduced. In some embodiments, the bioactive trigger polynucleotide is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to
SEQ ID NO 3 orSEQ ID NO 5, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to a sequence selected from the group consisting ofSEQ ID NO 36,SEQ ID NO 42,SEQ ID NO 43,SEQ ID NO 44,SEQ ID NO 57,SEQ ID NO 58,SEQ ID NO 59, SEQ ID NO 65, SEQ ID NO 66, or a fragment thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 3 and 4, or fragments thereof. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA comprising SEQ ID NOs: 5 and 6, or fragments thereof. In some embodiments of the method, the plant is treated with a first bioactive trigger polynucleotide and one or more additional bioactive trigger polynucleotides that comprise a different nucleotide sequence than the first bioactive trigger polynucleotide. In some embodiments, the plant is treated with a bioactive trigger polynucleotide that comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66 and a bioactive trigger molecule that is not essentially identical or essentially complementary to an EPSPS gene sequence, or to the RNA transcript of the EPSPS gene sequence. The method may further comprise treating the plant with one or more of a transfer agent, an EPSPS-inhibitor herbicide and other non-polynucleotide herbicides. Examples of transfer agents include, but are not limited to, surfactants, such as organosilicone surfactants, cationic lipid reagents, and plant hormones, such as Brassinosteroid. In some embodiments, the plant is treated with a non-polynucleotide herbicide. In some embodiments, the non-polynucleotide herbicide is glyphosate. In some embodiments, the non-polynucleotide herbicide is applied separately from the bioactive trigger polynucleotide. In some embodiments, the non-polynucleotide herbicide is applied concurrently with the bioactive trigger polynucleotide. - Several embodiments relate to a method of sensitizing a weed to an EPSPS-inhibitor herbicide, comprising treating the weed with a bioactive trigger polynucleotide that is essentially identical or essentially complementary to a nucleotide sequence selected from the group consisting of SEQ ID NO:3, 5, and 9-66, or a fragment thereof, whereby the weed is more sensitive to an EPSPS-inhibitor herbicide relative to a weed not treated with the bioactive trigger polynucleotide. In some embodiments, the bioactive trigger polynucleotide is essentially identical or essentially complementary to a nucleotide sequence selected from the group consisting of
SEQ ID NO 36,SEQ ID NO 42,SEQ ID NO 43,SEQ ID NO 44,SEQ ID NO 57,SEQ ID NO 58,SEQ ID NO 59, SEQ ID NO 65, SEQ ID NO 66, or a fragment thereof. In some embodiments, the method further comprises treating the plant with an EPSPS-inhibitor herbicide. In some embodiments, the weed is resistant to one or more of glyphosate, dicamba and sulfonylurea. In some embodiments, the weed is selected from the group consisting of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis, and Xanthium strumarium. In some embodiments, the weed is growing in a field of herbicide-resistant crop plants. The bioactive trigger polynucleotide may be single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, or a double-stranded DNA/RNA hybrid. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4. In some embodiments, the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6. In several embodiments, the bioactive trigger polynucleotide is provide with a transfer agent. In some embodiments, the transfer agent is an organosilicone surfactant. For example, the organosilicone surfactant may be BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, BREAK-THRU® S 233, or any combination thereof. In some embodiments, the transfer agent is a cationic liposomal reagent, for example, N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium methyl-sulfate (DOTAP). In some embodiments, the transfer agent is a plant hormone, for example, Brassinosteroid. In some embodiments, the method further comprises treating the weed with an auxin-like herbicide, such as dicamba or 2,4-D. - Several embodiments relate to a method of controlling one or more plants of the following species: Amaranthus, Ambrosia, Lolium, Digitaria, Euphorbia, Kochia, Sorghum, Conyza, Chloris, Echinochola, Eleusine, Poa, Plantago, Avena, Chenopodium, Setaria, Abutilon, Ipomoea, Sesbania, Cassia, Sida, Brachiaria and Solanum by applying a bioactive trigger molecule as described herein.
- Several embodiments relate to a method of controlling one or more of Alopecurus myosuroides, Avena sterilis, Avena sterilis ludoviciana, Brachiaria plantaginea, Bromus diandrus, Bromus rigidus, Cynosurus echinatus, Digitaria ciliaris, Digitaria ischaemum, Digitaria sanguinalis, Echinochloa oryzicola, Echinochloa phyllopogon, Eriochloa punctata, Hordeum glaucum, Hordeum leporinum, Ischaemum rugosum, Leptochloa chinensis, Lolium persicum, Phalaris minor, Phalaris paradoxa, Rottboellia exalta, Setaria faberi, Setaria viridis var, robusta-alba schreiber, Setaria viridis var, robusta-purpurea, Snowdenia polystachea, Sorghum sudanese, Alisma plantago-aquatica, Amaranthus lividus, Amaranthus quitensis, Ammania auriculata, Ammania coccinea, Anthemis cotula, Apera spica-venti, Bacopa rotundifolia, Bidens pilosa, Bidens subalternans, Brassica tournefortii, Bromus tectorum, Camelina microcarpa, Chrysanthemum coronarium, Cuscuta campestris, Cyperus difformis, Damasonium minus, Descurainia sophia, Diplotaxis tenuifolia, Echium plantagineum, Elatine triandra var, pedicellate, Euphorbia heterophylla, Fallopia convolvulus, Fimbristylis miliacea, Galeopsis tetrahit, Galium spurium, Helianthus annuus, Iva xanthifolia, Ixophorus unisetus, Ipomoea indica, Ipomoea purpurea, Ipomoea sepiaria, Ipomoea aquatic, Ipomoea triloba, Lactuca serriola, Limnocharis flava, Limnophila erecta, Limnophila sessiliflora, Lindernia dubia, Lindernia dubia var, major, Lindernia micrantha, Lindernia procumbens, Mesembryanthemum crystallinum, Monochoria korsakowii, Monochoria vaginalis, Neslia paniculata, Papaver rhoeas, Parthenium hysterophorus, Pentzia suffruticosa, Phalaris minor, Raphanus raphanistrum, Raphanus sativus, Rapistrum rugosum, Rotala indica var, uliginosa, Sagittaria guyanensis, Sagittaria montevidensis, Sagittaria pygmaea, Salsola iberica, Scirpus juncoides var, ohwianus, Scirpus mucronatus, Setaria lutescens, Sida spinosa, Sinapis arvensis, Sisymbrium orientale, Sisymbrium thellungii, Solanum ptycanthum, Sonchus aspen, Sonchus oleraceus, Sorghum bicolor, Stellaria media, Thlaspi arvense, Xanthium strumarium, Arctotheca calendula, Conyza sumatrensis, Crassocephalum crepidiodes, Cuphea carthagenenis, Epilobium adenocaulon, Erigeron philadelphicus, Landoltia punctata, Lepidium virginicum, Monochoria korsakowii, Solanum americanum, Solanum nigrum, Vulpia bromoides, Youngia japonica, Hydrilla verticillata, Carduus nutans, Carduus pycnocephalus, Centaurea solstitialis, Cirsium arvense, Commelina diffusa, Convolvulus arvensis, Daucus carota, Digitaria ischaemum, Echinochloa crus-pavonis, Fimbristylis miliacea, Galeopsis tetrahit, Galium spurium, Limnophila erecta, Matricaria perforate, Papaver rhoeas, Ranunculus acris, Soliva sessilis, Sphenoclea zeylanica, Stellaria media, Nassella trichotoma, Stipa neesiana, Agrostis stolonifera, Polygonum aviculare, Alopecurus japonicus, Beckmannia syzigachne, Bromus tectorum, Chloris inflate, Echinochloa erecta, Portulaca oleracea, and Senecio vulgaris by applying a bioactive trigger polynucleotide as described herein.
- The following drawings form part of the specification and are included to further demonstrate certain aspects of the disclosed embodiments:
-
FIG. 1 shows glyphosate-tolerant Palmer plants treated with trigger polynucleotides for SEQ ID NOs: 7 and 8 and glyphosate (panel A), treated with trigger polynucleotides for SEQ ID NOs: 3 and 4 and glyphosate (panel B), or treated with trigger polynucleotides for SEQ ID NOs: 5 and 6 and glyphosate (panel C). -
FIG. 2 shows a graph of % EPSPS mRNA reduction vs. control in Palmer protoplasts in response to 6 ug of SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 trigger. -
FIG. 3 shows glyphosate-tolerant Waterhemp plants treated with SEQ ID NOs: 7 and 8 trigger polynucleotides and glyphosate (panel A), treated with trigger polynucleotides for SEQ ID NOs: 3 and 4 and glyphosate (panel B), or treated with trigger polynucleotides for SEQ ID NOs: 5 and 6 and glyphosate (panel C). -
FIG. 4 shows the fresh weight (in grams) of plants treated with trigger polynucleotides for SEQ ID NOs: 3, 5, 7 and SEQ ID NOs: 36-64 and glyphosate. - Provided are methods and compositions containing a trigger polynucleotide that provide for regulation, repression or delay of 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) gene expression and enhanced control of weeds. In some embodiments, the methods and compositions disclosed herein provide for increased sensitivity to an EPSPS-inhibitor herbicide. In some embodiments, the methods and compositions disclosed herein provide for regulation, repression or delay of EPSPS gene expression in glyphosate-resistant weed biotypes. Aspects of the methods and compositions disclosed herein can be applied to manage various weeds in agronomic and other cultivated environments.
- The following terms are used throughout the present disclosure and the following definitions are provided to help guide those of ordinary skill in the art. Unless otherwise noted, terms are to be understood according to conventional usage by those of ordinary skill in the relevant art. Where a term is provided in the singular, the plural of that term is also contemplated unless otherwise noted.
- As used herein, “a” or “an” may mean one or more than one.
- As used herein, the term “about” indicates that a value includes the inherent variation or error for the device or method being employed to determine the value, or the variation that exists among the studied organism.
- As used herein, the terms “DNA”, “DNA molecule”, and “DNA polynucleotide molecule” refer to a polymer of deoxyribonucleotide bases of genomic or synthetic origin. DNA may be wholly or partially single-stranded (ssDNA) or wholly or partially double-stranded (dsDNA). In some embodiments, a DNA molecule may comprise single-stranded and double-stranded regions.
- As used herein, the terms “RNA”, “RNA molecule”, and “RNA polynucleotide molecule” refer to a polymer of ribonucleotide bases of cellular or synthetic origin. RNA may be wholly or partially single-stranded (ssRNA) or wholly or partially double-stranded (dsRNA). In some embodiments, a RNA molecule may comprise single-stranded and double-stranded regions.
- As used herein, the terms “sequence”, “nucleotide sequence” or “polynucleotide sequence” refer to the nucleotide sequence of a DNA molecule, an RNA molecule or a portion thereof. Unless otherwise stated, nucleotide sequences in the text of this specification are given, when read from left to right, in the 5′ to 3′ direction. It is understood that any Sequence Identification Number (SEQ ID NO) disclosed in the instant application can refer to either a DNA sequence or a RNA sequence, depending on the context where that SEQ ID NO is mentioned, even if that SEQ ID NO is expressed only in a DNA sequence format or a RNA sequence format. Further, disclosure of a nucleic acid sequence discloses the sequence of its reverse complement, as one necessarily defines the other, as is known by one of ordinary skill in the art.
- The term “polynucleotide” refers to any polymer of mononucleotides that are linked by internucleotide bonds. Polynucleotides may be composed of naturally-occurring ribonucleotides, naturally-occurring deoxyribonucleotides, analogs of naturally-occurring nucleotides (e.g., enantiomeric forms of naturally-occurring nucleotides), or any combination thereof. Where a polynucleotide is single-stranded, its length can be described in terms of the number of nucleotides. Where a polynucleotide is double-stranded, its length can be described in terms of the number of base pairs.
- As used herein, the term “non-transcribable polynucleotide” refers to a polynucleotide that does not comprise a complete polymerase II transcription unit.
- As used herein, the term “trigger” or “trigger polynucleotide” refers to a bioactive polynucleotide molecule that is substantially homologous or complementary to a polynucleotide sequence of a target gene or an RNA expressed from the target gene or a fragment thereof and functions to suppress the expression of the target gene or produce a knock-down phenotype. Trigger polynucleotides are generally described in relation to their “target sequence.” Trigger polynucleotides may be single-stranded DNA (ssDNA), single-stranded RNA (ssRNA), double-stranded RNA (dsRNA), double-stranded DNA (dsDNA), or double-stranded DNA/RNA hybrids. Trigger polynucleotides may comprise naturally-occurring nucleotides, modified nucleotides, nucleotide analogues or any combination thereof. In some embodiments, a trigger polynucleotide may be incorporated within a larger polynucleotide, for example in a pri-miRNA molecule. In some embodiments, a trigger polynucleotide may be processed into a small interfering RNA (siRNA).
- As used herein, the term “target sequence” refers to a nucleotide sequence that occurs in a gene or gene product against which a trigger polynucleotide is directed. In this context, the term “gene” means a locatable region of genomic sequence, corresponding to a unit of inheritance, which includes regulatory regions, such as promoters, enhancers, 5′ untranslated regions, intron regions, 3′ untranslated regions, transcribed regions, and other functional sequence regions that may exist as native genes or transgenes in a plant genome. Depending upon the circumstances, the term target sequence can refer to the full-length nucleotide sequence of the gene or gene product targeted for suppression or the nucleotide sequence of a portion of the gene or gene product targeted for suppression. Disclosure of a target sequence necessarily discloses the sequence of its corresponding trigger polynucleotide, as one necessarily defines the other, as is known by one of ordinary skill in the art.
- The term “gene expression” refers to the process of converting genetic information encoded in genomic DNA into RNA (e.g., mRNA, rRNA, tRNA, or snRNA) through transcription of the gene via the enzymatic action of an RNA polymerase, and into protein, through translation of mRNA. Gene expression can be regulated at many stages in the process.
- As used herein, the phrases “inhibition of gene expression” or “gene suppression” or “silencing a target gene” and similar terms and phrases refer to the absence or observable reduction in the level of protein and/or mRNA product from the target gene. The consequences of inhibition, suppression, or silencing can be confirmed by examination of the outward properties of a cell or organism or by biochemical techniques.
- As used herein, the term “sequence identity”, “sequence similarity” or “homology” is used to describe the degree of similarity between two or more nucleotide sequences. The percentage of “sequence identity” between two sequences is determined by comparing two optimally aligned sequences over a comparison window, such that the portion of the sequence in the comparison window may comprise additions or deletions (gaps) as compared to the reference sequence (which does not comprise additions or deletions) for optimal alignment of the two sequences. The percentage is calculated by determining the number of positions at which the identical nucleic acid base or amino acid residue occurs in both sequences to yield the number of matched positions, dividing the number of matched positions by the total number of positions in the window of comparison, and multiplying the result by 100 to yield the percentage of sequence identity. A sequence that is identical at every position in comparison to a reference sequence is said to be identical to the reference sequence and vice-versa. An alignment of two or more sequences may be performed using any suitable computer program. For example, a widely used and accepted computer program for performing sequence alignments is CLUSTALW v1.6 (Thompson, et al. Nucl. Acids Res., 22: 4673-4680, 1994).
- As used herein “solution” refers to homogeneous mixtures and non-homogeneous mixtures such as suspensions, colloids, micelles, and emulsions.
- As used herein, the term “weed” refers to any plant that is not valued where it is growing. Weeds usually exhibit vigorous growth and tend to overgrow or choke out more desirable plants. Weeds include volunteer plants, which grow on their own, rather than being planted by a farmer or gardener. For example, corn plants growing in a soybean field.
- Weedy plants include, but are not limited to, important invasive and noxious weeds and herbicide resistant biotypes in crop production, such as: Amaranthus species, e.g., A. albus, A. blitoides, A. hybridus, A. palmeri, A. powellii, A. retroflexus, A. spinosus, A. tuberculatus, and A. viridis; Ambrosia species, e.g., A. trifida, and A. artemisifolia; Lolium species, e.g., L. multiflorum, L. rigidium, and L. perenne; Digitaria species, e.g., D. insularis; Euphorbia species, e.g., E. heterophylla; Kochia species, e.g., K. scoparia; Sorghum species, e.g., S. halepense; Conyza species, e.g., C. bonariensis, C. canadensis, and C. sumatrensis; Clitoris species, e.g., C. truncate; Echinochola species, e.g., E. colona and E. crus-galli; Eleusine species, e.g., E. indica; Poa species, e.g., P. annua; Plantago species, e.g., P. lanceolata; Avena species, e.g., A. fatua; Chenopodium species, e.g., C. album; Setaria species, e.g., S. viridis; Abutilon theophrasti; Ipomoea species; Sesbania species; Cassia species; Sida species; Brachiaria species and Solanum species.
- Additional weedy plant species found in cultivated areas include Alopecurus myosuroides, Avena sterilis, Avena sterilis ludoviciana, Brachiaria plantaginea, Bromus diandrus, Bromus rigidus, Cynosurus echinatus, Digitaria ciliaris, Digitaria ischaemum, Digitaria sanguinalis, Echinochloa oryzicola, Echinochloa phyllopogon, Eriochloa punctata, Hordeum glaucum, Hordeum leporinum, Ischaemum rugosum, Leptochloa chinensis, Lolium persicum, Phalaris minor, Phalaris paradoxa, Rottboellia exalta, Setaria faberi, Setaria viridis var, robusta-alba schreiber, Setaria viridis var, robusta-purpurea, Snowdenia polystachea, Sorghum sudanese, Alisma plantago-aquatica, Amaranthus lividus, Amaranthus quitensis, Ammania auriculata, Ammania coccinea, Anthemis cotula, Apera spica-venti, Bacopa rotundifolia, Bidens pilosa, Bidens subalternans, Brassica tournefortii, Bromus tectorum, Camelina microcarpa, Chrysanthemum coronarium, Cuscuta campestris, Cyperus difformis, Damasonium minus, Descurainia sophia, Diplotaxis tenuifolia, Echium plantagineum, Elatine triandra var, pedicellate, Euphorbia heterophylla, Fallopia convolvulus, Fimbristylis miliacea, Galeopsis tetrahit, Galium spurium, Helianthus annuus, Iva xanthifolia, Ixophorus unisetus, Ipomoea indica, Ipomoea purpurea, Ipomoea sepiaria, Ipomoea aquatic, Ipomoea triloba, Lactuca serriola, Limnocharis flava, Limnophila erecta, Limnophila sessiliflora, Lindernia dubia, Lindernia dubia var, major, Lindernia micrantha, Lindernia procumbens, Mesembryanthemum crystallinum, Monochoria korsakowii, Monochoria vaginalis, Neslia paniculata, Papaver rhoeas, Parthenium hysterophorus, Pentzia suffruticosa, Phalaris minor, Raphanus raphanistrum, Raphanus sativus, Rapistrum rugosum, Rotala indica var, uliginosa, Sagittaria guyanensis, Sagittaria montevidensis, Sagittaria pygmaea, Salsola iberica, Scirpus juncoides var, ohwianus, Scirpus mucronatus, Setaria lutescens, Sida spinosa, Sinapis arvensis, Sisymbrium orientale, Sisymbrium thellungii, Solanum ptycanthum, Sonchus aspen, Sonchus oleraceus, Sorghum bicolor, Stellaria media, Thlaspi arvense, Xanthium strumarium, Arctotheca calendula, Conyza sumatrensis, Crassocephalum crepidiodes, Cuphea carthagenenis, Epilobium adenocaulon, Erigeron philadelphicus, Landoltia punctata, Lepidium virginicum, Monochoria korsakowii, Solanum americanum, Solanum nigrum, Vulpia bromoides, Youngia japonica, Hydrilla verticillata, Carduus nutans, Carduus pycnocephalus, Centaurea solstitialis, Cirsium arvense, Commelina diffusa, Convolvulus arvensis, Daucus carota, Digitaria ischaemum, Echinochloa crus-pavonis, Fimbristylis miliacea, Galeopsis tetrahit, Galium spurium, Limnophila erecta, Matricaria perforate, Papaver rhoeas, Ranunculus acris, Soliva sessilis, Sphenoclea zeylanica, Stellaria media, Nassella trichotoma, Stipa neesiana, Agrostis stolonifera, Polygonum aviculare, Alopecurus japonicus, Beckmannia syzigachne, Bromus tectorum, Chloris inflate, Echinochloa erecta, Portulaca oleracea, and Senecio vulgaris. The embodiments disclosed herein may be utilized to control any of these species.
- As used herein, the term “herbicide” refers to molecules that affect plant growth, development and/or reproductive ability. Herbicides may be polynucleotide or non-polynucleotide. Glyphosate is an example of a non-polynucleotide herbicide that inhibits EPSPS.
- “Glyphosate” (N-phosphonomethylglycine) herbicide inhibits the shikimic acid pathway, which leads to the biosynthesis of aromatic compounds including amino acids, plant hormones and vitamins. Specifically, glyphosate curbs the conversion of phosphoenolpyruvic acid (PEP) and 3-phosphoshikimic acid to 5-enolpyruvyl-3-phosphoshikimic acid by inhibiting the enzyme 5-enolpyruvylshikimate-3-phosphate synthase (referred to herein as EPSP synthase or EPSPS). The term “glyphosate” should be considered to include any herbicidally effective form of N-phosphonomethylglycine (including any salt thereof) and other forms which result in the production of the glyphosate anion in planta. Glyphosate is commercially available in numerous formulations. Examples of these formulations of glyphosate include, without limitation, those sold by Monsanto Company (St. Louis, Mo.) as ROUNDUP®, ROUNDUP® ULTRA, ROUNDUP® ULTRAMAX, ROUNDUP® CT, ROUNDUP® EXTRA, ROUNDUP® BIACTIVE, ROUNDUP® BIOFORCE, RODEO®, POLARIS®, SPARK® and ACCORD® herbicides, all of which contain glyphosate as its isopropylammonium salt; ROUNDUP® WEATHERMAX, which contains glyphosate as its potassium salt; ROUNDUP® DRY and RIVAL® herbicides, which contain glyphosate as its ammonium salt; ROUNDUP® GEOFORCE, which contains glyphosate as its sodium salt. Other examples include TOUCHDOWN® herbicide (Syngenta, Greensboro, N.C.), which contains glyphosate as its trimethylsulfonium salt. Various other salts of glyphosate are available for example, dimethylamine salt, isopropylamine salt, trimesium salt, potassium salt, monoammonium salt, and diammonium salt. Commerical formulations and application rates thereof are often defined in terms of acid equivalent pounds per acre (a.e. lb/ac).
- Several embodiments described herein relate to compositions comprising a bioactive trigger polynucleotide targeting an EPSPS gene. Such compositions and methods of their use are useful for modulating the expression of endogenous EPSPS genes or transgenic EPSPS genes (for example, CP4 EPSPS, U.S. Pat. No. RE39,247 and 2mEPSPS, U.S. Pat. No. 6,040,497) in a plant cell. In various embodiments, a targeted EPSPS gene includes coding (protein-coding or translatable) sequence, non-coding (non-translatable) sequence, or both coding and non-coding sequence. A plant treated with a bioactive EPSPS trigger polynucleotide is more sensitive to an EPSPS-inhibitor herbicide relative to a plant that has not been treated with a bioactive EPSPS trigger polynucleotide. It is contemplated that in some embodiments the composition may contain multiple bioactive trigger polynucleotides. Where multiple bioactive trigger polynucleotides are used, the bioactive trigger polynucleotides can target multiple consecutive segments of a target gene, multiple non-consecutive segments of a target gene, multiple alleles of a target gene, or multiple different target genes from one or more species. For example, in some embodiments the composition may comprise two or more bioactive EPSPS trigger polynucleotides that are capable of binding to different EPSPS target sequences. In some embodiments, the different EPSPS target sequences may be from different plant species. In some embodiments, the different EPSPS target sequences may be from different different regions of an EPSPS gene. In some embodiments, the EPSPS target sequences may be selected from the group consisting of SEQ ID NOs: 9-66.
- Several embodiments described herein relate to compositions comprising one or more bioactive trigger polynucleotides targeting an EPSPS gene and one or more bioactive trigger polynucleotides that modulate the expression of a gene other than EPSPS. In some embodiments, compositions can include one or more bioactive trigger polynucleotides targeting essential genes. Essential genes are genes in a plant that provide key enzymes or other proteins that are essential to the growth, survival, development or reproduction of the plant (Meinke, et al., Trends Plant Sci. 2008:13(9):483-91). Examples of essential genes include, but are not limited to, genes encoding biosynthetic enzymes, metabolizing enzymes, receptors, signal transduction proteins, structural proteins, transcription factors, transport proteins and regulatory RNAs, such as, microRNAs. In some embodiments, the suppression of an essential gene enhances the effect of a herbicide that affects the function of a gene product different than the suppressed essential gene.
- Bioactive trigger polynucleotides used in the various embodiments may comprise single-stranded RNA, double-stranded RNA, single-stranded DNA, double-stranded DNA, RNA/DNA hybrids, chemically modified polynucleotides or any mixture thereof. In some embodiments, the bioactive trigger polynucleotide may comprise a combination of ribonucleotides and deoxyribonucleotides, for example, synthetic polynucleotides consisting mainly of ribonucleotides but with one or more terminal deoxyribonucleotides or synthetic polynucleotides consisting mainly of deoxyribonucleotides but with one or more terminal dideoxyribonucleotides. In some embodiments, the bioactive trigger polynucleotide includes non-canonical nucleotides such as inosine, thiouridine, or pseudouridine. In some embodiments, the bioactive trigger polynucleotide includes chemically modified nucleotides. For example, the naturally occurring phosphodiester backbone of a bioactive trigger polynucleotide can be partially or completely modified with phosphorothioate, phosphorodithioate, or methylphosphonate internucleotide linkage modifications, modified nucleoside bases or modified sugars can be used in the synthesis of bioactive trigger polynucleotides, and trigger polynucleotides can be labeled with a fluorescent moiety (for example, fluorescein or rhodamine) or other label (for example, biotin). Examples of chemically modified oligonucleotides or polynucleotides are well known in the art; see, for example, US Patent Publication 20110171287, US Patent Publication 20110171176, and US Patent Publication 20110152353, US Patent Publication, 20110152346, US Patent Publication 20110160082, herein incorporated in its entirety by reference hereto.
- Several embodiments relate to bioactive trigger polynucleotides that modulate an endogenous EPSPS gene in a plant. In some embodiments, the bioactive EPSPS trigger polynucleotides comprise a nucleotide sequence that is essentially identical or essentially complementary to at least 10 contiguous nucleotides of an endogenous EPSPS gene of a plant, or an RNA transcribed therefrom. In some embodiments, the bioactive EPSPS trigger polynucleotides comprise a nucleotide sequence that is essentially identical or essentially complementary to 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70 or more contiguous nucleotides of an endogenous EPSPS gene of a plant, or an RNA transcribed therefrom. In some embodiments, the endogenous EPSPS gene is an Abutilon theophrasti, Amaranthus graecizans, Amaranthus hybrid, Amaranthus lividus, Amaranthus palmeri, Amaranthus rudis, Amaranthus thunbergii, Amaranthus viridis, Ambrosia trifida, Chenopodium album, Convolvulus arvensis, Conyza Canadensis, Digitaria sanguinalis, Echinochloa colona, Echinochloa crus-galli, Euphorbia heterophylla, Ipomoea hederacea, Lolium multiflorum, Senna obtusifolia, Sorghum halepense, or Xanthium strumarium gene. In some embodiments, the sequence of the endogenous EPSPS gene is selected from SEQ ID NOs: 1 and 2.
- By “essentially identical” or “essentially complementary” is meant that the bioactive trigger polynucleotide (or at least one strand of a double-stranded polynucleotide or portion thereof, or a portion of a single strand polynucleotide) hybridizes under physiological conditions to the endogenous gene, an RNA transcribed therefrom, or a fragment thereof, to effect regulation or suppression of the endogenous gene. For example, in some embodiments, a bioactive trigger polynucleotide has 100 percent sequence identity or at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence identity when compared to a sequence of 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60 or more contiguous nucleotides in the target gene or RNA transcribed from the target gene. In some embodiments, a bioactive trigger polynucleotide has 100 percent sequence complementarity or at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence complementarity when compared to a sequence of 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60 or more contiguous nucleotides in the target gene or RNA transcribed from the target gene. In some embodiments, a bioactive trigger polynucleotide has 100 percent sequence identity with or complementarity to one allele or one family member of a given target gene (coding or non-coding sequence of a gene). In some embodiments, a bioactive trigger polynucleotide has at least about 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99 percent sequence identity with or complementarity to multiple alleles or family members of a given target gene. In some embodiments, a bioactive trigger polynucleotide has 100 percent sequence identity with or complementarity to multiple alleles or family members of a given target gene.
- Embodiments include bioactive trigger polynucleotides having a length of 40-60 nucleotides (40-mers, 41-mers, 42-mers, 43-mers, 44-mers, 45-mers, 46-mers, 47-mers, 48-mers, 49-mers, 50-mers, 51-mers, 52-mers, 53-mers, 54-mers, 55-mers, 56-mers, 57-mers, 58-mers, 59-mers, or 60-mers). Several embodiments relate to a bioactive EPSPS trigger polynucleotide that comprises a nucleotide sequence that is substantially homologous or substantially complementary to one or more of SEQ ID NOs: 9-66 and suppresses, represses or otherwise delays the expression of a targeted EPSPS gene in one or more plant species. In some embodiments, the bioactive EPSPS trigger polynucleotide comprises a nucleotide sequence that is identical or complementary to one or more of SEQ ID NOs: 9-66. In some embodiments, the bioactive EPSPS trigger polynucleotide comprises a sequence selected from SEQ ID NOs: 3-6.
- Bioactive trigger polynucleotides can be single- or double-stranded RNA or single- or double-stranded DNA or double-stranded DNA/RNA hybrids or modified analogues thereof. In some embodiments, the trigger polynucleotides are selected from the group consisting of (a) a single-stranded RNA molecule (ssRNA), (b) a ssRNA molecule that self-hybridizes to form a double-stranded RNA molecule, (c) a double-stranded RNA molecule (dsRNA), (d) a single-stranded DNA molecule (ssDNA), (e) a ssDNA molecule that self-hybridizes to form a double-stranded DNA molecule, and (f) a single-stranded DNA molecule including a modified Pol III gene that is transcribed to an RNA molecule, (g) a double-stranded DNA molecule (dsDNA), (h) a double-stranded DNA molecule including a modified Pol III gene that is transcribed to an RNA molecule, (i) a double-stranded, hybridized RNA/DNA molecule, or combinations thereof. In some embodiments these polynucleotides include chemically modified nucleotides or non-canonical nucleotides.
- In some embodiments, double-stranded trigger polynucleotides may be blunt-ended or may comprise a 3′ or 5′ overhang of one, two, three, four, five, or more nucleotides on one or both sides of the double-stranded region. In some embodiments, the overhang has identity or complementarity to the target gene. In some embodiments, the overhang does not have identity or complementarity to the target gene. In some embodiments, the overhang may comprise one, two, three, four, or more nucleotides such as 2′-deoxy (21H) nucleotides. In some embodiments, the overhang may comprise deoxythymidine (dT) nucleotides.
- Double-stranded bioactive trigger polynucleotides may be formed by intramolecular hybridization or intermolecular hybridization. In some embodiments, the bioactive trigger polynucleotide may comprise single-stranded DNA or single-stranded RNA that self-hybridizes to form a hairpin structure having an at least partially double-stranded structure including at least one segment that will hybridize to an RNA transcribed from the gene targeted for suppression. In some embodiments, the bioactive trigger polynucleotide may be contained in a longer polynucleotide sequence, for example a in a pri-miRNA. Other configurations of the bioactive trigger polynucleotides are known in the field and are contemplated herein.
- Methods of making bioactive trigger polynucleotides are well known in the art. For example, bioactive trigger polynucleotides can be can be expressed in host cells from a vector, chemically synthesized using known methods, or they can be transcribed in vitro by conventional enzymatic synthetic methods using, for example, the bacteriophage T7, T3 or SP6 RNA polymerases. Commercial preparation of oligonucleotides often provides two deoxyribonucleotides on the 3′ end of the sense strand. Polynucleotide molecules can be synthesized from commercially available kits, for example, kits from Applied Biosystems/Ambion (Austin, Tex.) have DNA ligated on the 5′ end in a microbial expression cassette that includes a bacterial T7 polymerase promoter that makes RNA strands that can be assembled into a dsRNA and kits provided by vaious manufacturers that include T7 RiboMax Express (Promega, Madison, Wis.), AmpliScribe T7-Flash (Epicentre, Madison, Wis.), and TranscriptAid T7 High Yield (Fermentas, Glen Burnie, Md.). dsRNA molecules can be produced from microbial expression cassettes in bacterial cells (Ongvarrasopone et al. ScienceAsia 33:35-39; Yin, Appl. Microbiol. Biotechnol 84:323-333, 2009; Liu et al., BMC Biotechnology 10:85, 2010) that have regulated or deficient RNase III enzyme activity or the use of various viral vectors to produce sufficient quantities of dsRNA. EPSPS gene fragments are inserted into the microbial expression cassettes in a position in which the fragments are expressed to produce ssRNA or dsRNA useful in the methods described herein to regulate expression on a target EPSPS gene. Several embodiments relate to expression constructs encoding bioactive trigger polynucleotides as described herein.
- Following synthesis, the trigger polynucleotides may optionally be purified. For example, polynucleotides can be purified from a mixture by extraction with a solvent or resin, precipitation, electrophoresis, chromatography, or a combination thereof. Alternatively, trigger polynucleotides may be used with no, or a minimum of, purification to avoid losses due to sample processing. The trigger polynucleotides may be dried for storage or dissolved in an aqueous solution. The solution may contain buffers or salts to promote annealing, and/or stabilization of the duplex strands.
- Bioactive trigger polynucleotides may be provided to a plant at any dose effective to modulate the expression of the target gene or produce a knock-down phenotype. While there is no upper limit on the concentrations and dosages of bioactive trigger polynucleotides used in the compositions and methods disclosed herein, several embodiments relate to a minimum effective concentration or dosage of bioactive trigger polynucleotide. The concentration of bioactive trigger polynucleotide provided to a plant can be adjusted in consideration of the volume of spray or treatment applied to plant leaves or other plant part surfaces, such as flower petals, stems, tubers, fruit, anthers, pollen, or seed. In one embodiment, a treatment for herbaceous plants comprises providing bioactive trigger polynucleotides at about 1 nanomole (nmol) per plant. In some embodiments, a treatment for herbaceous plants comprises providing from about 0.05 to 1 nmol of bioactive trigger polynucleotide per plant. Several embodiments for herbaceous plants include ranges of about 0.05 to about 100 nmol, or about 0.1 to about 20 nmol, or about 1 nmol to about 10 nmol of bioactive trigger polynucleotides per plant. In some embodiments, a treatment for herbaceous plants comprises providing 0.5, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5, 10, 10.5, 11, 11.5, 12, 12.5, 13, 13.5, 14, 14.5, 15, 15.5, 16, 16.5, 17, 17.5, 18, 18.5, 19, 19.5, or 20 nmol of bioactive trigger polynucleotides per plant.
- To illustrate embodiments, the factor 1×, when applied to oligonucleotide molecules is arbitrarily used to denote a treatment of 0.8 nmol of bioactive trigger polynucleotide molecule per plant; 10×, 8 nmol of bioactive trigger polynucleotide molecule per plant; and 100×, 80 nmol of bioactive trigger polynucleotide molecule per plant. The amount of bioactive trigger polynucleotide provided can vary based upon the size of the treated plant. For example, for very large plants, trees, or vines a correspondingly larger amount of bioactive trigger polynucleotide may be used; while for smaller plants, a correspondingly smaller amount of bioactive trigger polynucleotide may be used. In some embodiments where long dsRNA molecules, which are processed into multiple oligonucleotides, are used, the effective concentration or dosage of bioactive trigger polynucleotide may be lower.
- In several embodiments, bioactive trigger polynucleotides are incorporated into a plant cell following topical application of the bioactive trigger polynucleotides to a surface of the plant, for example, by spraying the plant with the bioactive trigger polynucleotides. In some embodiments, bioactive trigger polynucleotides are applied without wounding plant tissue and cells, such as, by mechanical-type wounding or particle bombardment. In some embodiments, bioactive trigger polynucleotides are incorporated into a plant cell without infection with viral vector.
- Several embodiments relate to compositions comprising an effective amount of a bioactive trigger polynucleotide, alone or in combination with other components, for example, one or more non-polynucleotide herbicide molecules, and/or one or more transfer agents. In some embodiments, one or more bioactive trigger polynucleotides are provided in the same composition as a transfer agent. In other embodiments, the bioactive trigger polynucleotides and the transfer agent are separately applied. In some embodiments, one or more bioactive trigger polynucleotides and one or more non-polynucleotide herbicide molecules are provided in the same composition. In other embodiments, one or more bioactive trigger polynucleotides and one or more non-polynucleotide herbicide molecules are provided in separately applied compositions. In some embodiments, the transfer agent and non-polynucleotide herbicide are provided in the same composition. Several embodiments relate to a composition comprising one or more bioactive trigger polynucleotides, one or more transfer agents and one or more non-polynucleotide herbicides. In some embodiments, one or more of the bioactive trigger polynucleotide, the non-polynucleotide herbicide and the transfer agent is provided in a liquid composition.
- Non-polynucleotide herbicides may be applied concomitantly with a bioactive trigger polynucleotide or the bioactive trigger polynucleotide and the non-polynucleotide herbicide may be applied at different times. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant prior to providing a composition comprising a non-polynucleotide herbicide. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant subsequent to providing a non-polynucleotide herbicide. In some embodiments, bioactive trigger polynucleotides may be applied concomitantly with a transfer agent. In other embodiments, the bioactive trigger polynucleotides and the transfer agent are applied at different times. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant prior to providing a composition comprising a transfer agent. In some embodiments, a composition comprising a bioactive trigger polynucleotide is provided to a plant subsequent to providing a transfer agent.
- Several embodiments relate to compositions and methods that provide multi-species weed control. Numerous non-polynucleotide herbicides are known and can be added, either alone or in combination with one or more non-polynucleotide herbicides having similar or different modes of action (herein referred to as co-herbicides), to a composition comprising a bioactive EPSPS trigger polynucleotide or can be used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds. For example, members of the herbicide families include, but are not limited to: amide herbicides, aromatic acid herbicides, arsenical herbicides, benzothiazole herbicides, benzoylcyclohexanedione herbicides, benzofuranyl alkylsulfonate herbicides, carbamate herbicides, cyclohexene oxime herbicides, cyclopropylisoxazole herbicides, dicarboximide herbicides, dinitroaniline herbicides, dinitrophenol herbicides, diphenyl ether herbicides, dithiocarbamate herbicides, halogenated aliphatic herbicides, imidazolinone herbicides, inorganic herbicides, nitrile herbicides, organophosphorus herbicides, oxadiazolone herbicides, oxazole herbicides, phenoxy herbicides, phenylenediamine herbicides, pyrazole herbicides, pyridazine herbicides, pyridazinone herbicides, pyridine herbicides, pyrimidinediamine herbicides, pyrimidinyloxybenzylamine herbicides, quaternary ammonium herbicides, thiocarbamate herbicides, thiocarbonate herbicides, thiourea herbicides, triazine herbicides, triazinone herbicides, triazole herbicides, triazolone herbicides, triazolopyrimidine herbicides, uracil herbicides, and urea herbicides. Representative herbicides of the families include but are not limited to acetochlor, acifluorfen, acifluorfen-sodium, aclonifen, acrolein, alachlor, alloxydim, allyl alcohol, ametryn, amicarbazone, amidosulfuron, aminopyralid, amitrole, ammonium sulfamate, anilofos, asulam, atraton, atrazine, azimsulfuron, BCPC, beflubutamid, benazolin, benfluralin, benfuresate, bensulfuron, bensulfuron-methyl, bensulide, bentazone, benzfendizone, benzobicyclon, benzofenap, bifenox, bilanafos, bispyribac, bispyribac-sodium, borax, bromacil, bromobutide, bromoxynil, butachlor, butafenacil, butamifos, butralin, butroxydim, butylate, cacodylic acid, calcium chlorate, cafenstrole, carbetamide, carfentrazone, carfentrazone-ethyl, CDEA, CEPC, chlorflurenol, chlorflurenol-methyl, chloridazon, chlorimuron, chlorimuron-ethyl, chloroacetic acid, chlorotoluron, chlorpropham, chlorsulfuron, chlorthal, chlorthal-dimethyl, cinidon-ethyl, cinmethylin, cinosulfuron, cisanilide, clethodim, clodinafop, clodinafop-propargyl, clomazone, clomeprop, clopyralid, cloransulam, cloransulam-methyl, CMA, 4-CPB, CPMF, 4-CPP, CPPC, cresol, cumyluron, cyanamide, cyanazine, cycloate, cyclosulfamuron, cycloxydim, cyhalofop, cyhalofop-butyl, 2,4-D, 3,4-DA, daimuron, dalapon, dazomet, 2,4-DB, 3,4-DB, 2,4-DEB, desmedipham, dicamba, dichlobenil, ortho-dichlorobenzene, para-dichlorobenzene, dichlorprop, dichlorprop-P, diclofop, diclofop-methyl, diclosulam, difenzoquat, difenzoquat metilsulfate, diflufenican, diflufenzopyr, dimefuron, dimepiperate, dimethachlor, dimethametryn, dimethenamid, dimethenamid-P, dimethipin, dimethylarsinic acid, dinitramine, dinoterb, diphenamid, diquat, diquat dibromide, dithiopyr, diuron, DNOC, 3,4-DP, DSMA, EBEP, endothal, EPTC, esprocarb, ethalfluralin, ethametsulfuron, ethametsulfuron-methyl, ethofumesate, ethoxyfen, ethoxysulfuron, etobenzanid, fenoxaprop-P, fenoxaprop-P-ethyl, fentrazamide, ferrous sulfate, flamprop-M, flazasulfuron, florasulam, fluazifop, fluazifop-butyl, fluazifop-P, fluazifop-P-butyl, flucarbazone, flucarbazone-sodium, flucetosulfuron, fluchloralin, flufenacet, flufenpyr, flufenpyr-ethyl, flumetsulam, flumiclorac, flumiclorac-pentyl, flumioxazin, fluometuron, fluoroglycofen, fluoroglycofen-ethyl, flupropanate, flupyrsulfuron, flupyrsulfuron-methyl-sodium, flurenol, fluridone, fluorochloridone, fluoroxypyr, flurtamone, fluthiacet, fluthiacet-methyl, fomesafen, foramsulfuron, fosamine, glufosinate, glufosinate-ammonium, glyphosate, halosulfuron, halosulfuron-methyl, haloxyfop, haloxyfop-P, HC-252, hexazinone, imazamethabenz, imazamethabenz-methyl, imazamox, imazapic, imazapyr, imazaquin, imazethapyr, imazosulfuron, indanofan, iodomethane, iodosulfuron, iodosulfuron-methyl-sodium, ioxynil, isoproturon, isouron, isoxaben, isoxachlortole, isoxaflutole, karbutilate, lactofen, lenacil, linuron, MAA, MAMA, MCPA, MCPA-thioethyl, MCPB, mecoprop, mecoprop-P, mefenacet, mefluidide, mesosulfuron, mesosulfuron-methyl, mesotrione, metam, metamifop, metamitron, metazachlor, methabenzthiazuron, methylarsonic acid, methyldymron, methyl isothiocyanate, metobenzuron, metolachlor, S-metolachlor, metosulam, metoxuron, metribuzin, metsulfuron, metsulfuron-methyl, MK-66, molinate, monolinuron, MSMA, naproanilide, napropamide, naptalam, neburon, nicosulfuron, nonanoic acid, norflurazon, oleic acid (fatty acids), orbencarb, orthosulfamuron, oryzalin, oxadiargyl, oxadiazon, oxasulfuron, oxaziclomefone, oxyfluorfen, paraquat, paraquat dichloride, pebulate, pendimethalin, penoxsulam, pentachlorophenol, pentanochlor, pentoxazone, pethoxamid, petrolium oils, phenmedipham, phenmedipham-ethyl, picloram, picolinafen, pinoxaden, piperophos, potassium arsenite, potassium azide, pretilachlor, primisulfuron, primisulfuron-methyl, prodiamine, profluazol, profoxydim, prometon, prometryn, propachlor, propanil, propaquizafop, propazine, propham, propisochlor, propoxycarbazone, propoxycarbazone-sodium, propyzamide, prosulfocarb, prosulfuron, pyraclonil, pyraflufen, pyraflufen-ethyl, pyrazolynate, pyrazosulfuron, pyrazosulfuron-ethyl, pyrazoxyfen, pyribenzoxim, pyributicarb, pyridafol, pyridate, pyriftalid, pyriminobac, pyriminobac-methyl, pyrimisulfan, pyrithiobac, pyrithiobac-sodium, quinclorac, quinmerac, quinoclamine, quizalofop, quizalofop-P, rimsulfuron, sethoxydim, siduron, simazine, simetryn, SMA, sodium arsenite, sodium azide, sodium chlorate, sulcotrione, sulfentrazone, sulfometuron, sulfometuron-methyl, sulfosate, sulfosulfuron, sulfuric acid, tar oils, 2,3,6-TBA, TCA, TCA-sodium, tebuthiuron, tepraloxydim, terbacil, terbumeton, terbuthylazine, terbutryn, thenylchlor, thiazopyr, thifensulfuron, thifensulfuron-methyl, thiobencarb, tiocarbazil, topramezone, tralkoxydim, tri-allate, triasulfuron, triaziflam, tribenuron, tribenuron-methyl, tricamba, triclopyr, trietazine, trifloxysulfuron, trifloxysulfuron-sodium, trifluralin, triflusulfuron, triflusulfuron-methyl, trihydroxytriazine, tritosulfuron, [3-[2-chloro-4-fluoro-5-(-methyl-6-trifluoromethyl-2,4-dioxo-,2,3,4-t-etrahydropyrimidin-3-yl)phenoxy]-2-pyridyloxy]acetic acid ethyl ester (CAS RN 353292-3-6), 4-[(4,5-dihydro-3-methoxy-4-methyl-5-oxo)-H-,2,4-triazol-1-ylcarbonyl-sulfamoyl]-5-methylthiophene-3-carboxylic acid (BAY636), BAY747 (CAS RN 33504-84-2), topramezone (CAS RN 2063-68-8), 4-hydroxy-3-[[2-[(2-methoxyethoxy)methyl]-6-(trifluoro-methyl)-3-pyridi-nyl]carbonyl]-bicyclo[3.2.]oct-3-en-2-one (CAS RN 35200-68-5), and 4-hydroxy-3-[[2-(3-methoxypropyl)-6-(difluoromethyl)-3-pyridinyl]carbon-yl]-bicyclo[3.2.]oct-3-en-2-one. Additionally, including herbicidal compounds of unspecified modes of action as described in CN101279950A, CN101279951A, DE10000600A1, DE10116399A1, DE102004054666A1, DE102005014638A1, DE102005014906A1, DE102007012168A1, DE102010042866A1, DE10204951A1, DE10234875A1, DE10234876A1, DE10256353A1, DE10256354A1, DE10256367A1, EP1157991A2, EP1238586A1, EP2147919A1, EP2160098A2, JP03968012B2, JP2001253874A, JP2002080454A, JP2002138075A, JP2002145707A, JP2002220389A, JP2003064059A, JP2003096059A, JP2004051628A, JP2004107228A, JP2005008583A, JP2005239675A, JP2005314407A, JP2006232824A, JP2006282552A, JP2007153847A, JP2007161701A, JP2007182404A, JP2008074840A, JP2008074841A, JP2008133207A, JP2008133218A, JP2008169121A, JP2009067739A, JP2009114128A, JP2009126792A, JP2009137851A, US20060111241A1, US20090036311A1, US20090054240A1, US20090215628A1, US20100099561A1, US20100152443A1, US20110105329A1, US20110201501A1, WO2001055066A2, WO2001056975A1, WO2001056979A1, WO2001090071A2, WO2001090080A1, WO2002002540A1, WO2002028182A1, WO2002040473A1, WO2002044173A2, WO2003000679A2, WO2003006422A1, WO2003013247A1, WO2003016308A1, WO2003020704A1, WO2003022051A1, WO2003022831A1, WO2003022843A1, WO2003029243A2, WO2003037085A1, WO2003037878A1, WO2003045878A2, WO2003050087A2, WO2003051823A1, WO2003051824A1, WO2003051846A2, WO2003076409A1, WO2003087067A1, WO2003090539A1, WO2003091217A1, WO2003093269A2, WO2003104206A2, WO2004002947A1, WO2004002981A2, WO2004011429A1, WO2004029060A1, WO2004035545A2, WO2004035563A1, WO2004035564A1, WO2004037787A1, WO2004067518A1, WO2004067527A1, WO2004077950A1, WO2005000824A1, WO2005007627A1, WO2005040152A1, WO2005047233A1, WO2005047281A1, WO2005061443A2, WO2005061464A1, WO2005068434A1, WO2005070889A1, WO2005089551A1, WO2005095335A1, WO2006006569A1, WO2006024820A1, WO2006029828A1, WO2006029829A1, WO2006037945A1, WO2006050803A1, WO2006090792A1, WO2006123088A2, WO2006125687A1, WO2006125688A1, WO2007003294A1, WO2007026834A1, WO2007071900A1, WO2007077201A1, WO2007077247A1, WO2007096576A1, WO2007119434A1, WO2007134984A1, WO2008009908A1, WO2008029084A1, WO2008059948A1, WO2008071918A1, WO2008074991A1, WO2008084073A1, WO2008100426A2, WO2008102908A1, WO2008152072A2, WO2008152073A2, WO2009000757A1, WO2009005297A2, WO2009035150A2, WO2009063180A1, WO2009068170A2, WO2009068171A2, WO2009086041A1, WO2009090401A2, WO2009090402A2, WO2009115788A1, WO2009116558A1, WO2009152995A1, WO2009158258A1, WO2010012649A1, WO2010012649A1, WO2010026989A1, WO2010034153A1, WO2010049270A1, WO2010049369A1, WO2010049405A1, WO2010049414A1, WO2010063422A1, WO2010069802A1, WO2010078906A2, WO2010078912A1, WO2010104217A1, WO2010108611A1, WO2010112826A3, WO2010116122A3, WO2010119906A1, WO2010130970A1, WO2011003776A2, WO2011035874A1, WO2011065451A1, all of which are incorporated herein by reference. In some embodiments, two or more non-polynucleotide herbicides with similar modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds. In several embodiments, compositions and methods that utilize alternative modes of action are used for difficult to control weed species. In some embodiments, two or more non-polynucleotide herbicides with different modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide to control weeds. In some embodiments, one or more non-polynucleotide herbicides with similar or different modes of action are used in conjunction with a bioactive EPSPS trigger polynucleotide and a bioactive trigger polynucleotide targeting a herbicide target gene other than EPSPS to control weeds. In some embodiments, a bioactive EPSPS trigger polynucleotide is used in conjunction with an EPSPS-inhibitor herbicide and an herbicide having a different mode of action. In some embodiments, a bioactive EPSPS trigger polynucleotide is used in conjunction with an EPSPS-inhibitor herbicide, a herbicide having a different mode of action and a bioactive trigger polynucleotide targeting a herbicide target gene other than EPSPS.
- Several embodiments relate to compositions and methods that enhance the activity of non-polynucleotide herbicides. In some embodiments, the rates of use of the non-polynucleotide herbicides can be reduced in compositions comprising bioactive EPSPS trigger polynucleotides. For example, reductions in use rate of 10-25 percent, 26-50 percent, 51-75 percent or more can be achieved. In some embodiments, a bioactive EPSPS trigger polynucleotide can reduce the amount of an EPSPS-inhibitor herbicide used to effectively kill weeds by at least 10, 15, 20, 25, 30, 35, 40, 50, 55, 60, 65, 70, 75, or 80 percent.
- In some embodiments, a bioactive EPSPS trigger polynucleotide is utilized in conjunction with one or more auxin-like herbicides to control weeds. Auxin-like herbicides include benzoic acid herbicide, phenoxy carboxylic acid herbicide, pyridine carboxylic acid herbicide, quinoline carboxylic acid herbicide, pyrimidine carboxylic acid herbicide, and benazolin-ethyl herbicide. Auxin-like herbicides also include phenoxy carboxylic acid compounds, pyridine carboxylic acid compounds, quinoline carboxylic acid compounds, and benazolin-ethyl compounds. Examples of phenoxy carboxylic acid compounds include, but are not limited to 2,4-dichlorophenoxyacetic acid, (4-chloro-2-methylphenoxy) acetic acid, diclorprop (2,4-DP), mecoprop (MCPP), and clomeprop. Examples of pyridine herbicides include, but are not limited to clopryalid, picloram, fluroxypyr, aminocyclopyrachlor and triclopyr. These auxin-like herbicides are useful in a tank mix, concomitantly, or pre or post treatment with the compositions. Auxin-like herbicides include commercially available formulations, for example, including but not limited to, 2,4-D, 2,4-DB (BUTYRAC® 200, Albaugh, LLC, Ankeny, Iowa; Bakker), MCPA (RHONOX®, RHOMENE®, Nufarm US, Morrisville, N.C.), mecoprop, dichlorprop, 2,4,5-T, triclopyr (GARLON®, Dow AgroSciences, Indianapolis, Ind.), chloramben, dicamba (BANVEL®, BASF Corporation, Ludwigshafen, Germany; CLARITY®, BASF Corporation, Ludwigshafen, Germany; ORACLE®, Gharda Chemicals Limited, Newtown, Pa.; STERLING BLUE®, Winfield Solutions, LLC, St. Paul, Minn.), 2,3,6-TBA, tricamba, clopyralid (STINGER®, Dow AgroSciences, Indianapolis, Ind.), picloram (TORDON®, Dow AgroSciences, Indianapolis, Ind.), quinmerac, quinclorac, benazolin, fenac, IAA, NAA, orthonil and fluroxypyr (VISTA®, STARANE®, Dow AgroSciences, Indianapolis, Ind.), aminopyralid (MILESTONE®, Dow AgroSciences, Indianapolis, Ind.) and aminocyclopyrachlor (Dupont, Wilmington, Del.).
- In some embodiments, a bioactive EPSPS trigger polynucleotide is utilized in conjunction with one or more benzoic acid herbicides to control weeds. Benzoic acid herbicides are effective herbicides for both pre-emergence and post-emergence weed management. The benzoic acid herbicide group includes dicamba (3,6-dichloro-o-anisic acid), chloramben (3-amino-2,5-dichlorobenzoic acid), and TBA (2,3,6-trichlorobenzoic acid). Dicamba is one of the many auxin-like herbicides that is a low-cost, environmentally friendly herbicide that has been used as a pre-emergence and post-emergence herbicide to effectively control annual and perennial broadleaf weeds and several grassy weeds in corn, sorghum, small grains, pasture, hay, rangeland, sugarcane, asparagus, turf, and grass seed crops (Crop Protection Chemicals Reference, pp. 1803-1821, Chemical & Pharmaceutical Press, Inc., New York, N.Y., 11th ed., 1995). Dicamba refers to 3,6-dichloro-o-anisic acid or 3,6-dichloro-2-methoxy benzoic acid and its acids and salts. Its salts include isopropylamine, diglycoamine, dimethylamine, potassium and sodium. Examples of commercial formulations of dicamba include BANVEL™ (as DMA salt, BASF, Research Triangle Park, N.C.), CLARITY® (DGA salt, BASF Corporation, Ludwigshafen, Germany), VEL-58-CS-11™ (BASF) and VANQUISH™ (DGA salt, BASF Corporation, Ludwigshafen, Germany). Dicamba is a useful herbicide as a tank mix, concomitantly, or pre or post treatment with the compositions.
- Several embodiments relate to a method comprising providing a bioactive trigger polynucleotide to a herbicide-tolerant plant. In some embodiments, the herbicide-tolerant plant comprises a transgene that confers herbicide tolerance. Herbicides for which transgenes for plant tolerance have been demonstrated include, but are not limited to: auxin-like herbicides, glyphosate, glufosinate, sulfonylureas, imidazolinones, bromoxynil, delapon, dicamba, cyclohezanedione, protoporphyrionogen oxidase inhibitors, and 4-hydroxyphenyl-pyruvate-dioxygenase inhibitors. Transgenes and their polynucleotide molecules that encode proteins involved in herbicide tolerance are known in the art. For example, transgenes and their polynucleotide molecules that encode proteins involved in herbicide tolerance include, but are not limited to: 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS), for example, as more fully described in U.S. Pat. Nos. 7,807,791, 6,248,876 B1, 5,627,061, 5,804,425, 5,633,435, 5,145,783, 4,971,908, 5,312,910, 5,188,642, 4,940,835, 5,866,775, 6,225,114 B1, 6,130,366, 5,310,667, 4,535,060, 4,769,061, 5,633,448, 5,510,471, Re. 36,449; RE 37,287 E; and 5,491,288; tolerance to sulfonylurea and/or imidazolinone, for example, as described more fully in U.S. Pat. Nos. 5,605,011, 5,013,659, 5,141,870, 5,767,361, 5,731,180, 5,304,732, 4,761,373, 5,331,107, 5,928,937, 5,378,824, and International Publication WO96/33270; tolerance to hydroxyphenylpyruvatedioxygenases inhibiting herbicides in plants, for example, as described more fully in U.S. Pat. Nos. 6,245,968 B1, 6,268,549, 6,069,115, 7,312,379, 7,935,869, 7,304,209; aryloxyalkanoate dioxygenase polynucleotides, which confer tolerance to 2,4-D and other phenoxy auxin herbicides as well as to aryloxyphenoxypropionate herbicides as described, for example, in U.S. Pat. No. 7,838,733 and International Publication WO2005/107437; and dicamba-tolerance polynucleotides as described, for example, in Herman et al. (2005) J. Biol. Chem. 280: 24759-24767. Other examples of herbicide-tolerance traits include those conferred by polynucleotides encoding an exogenous phosphinothricin acetyltransferase, such as described in U.S. Pat. Nos. 5,969,213; 5,489,520; 5,550,318; 5,874,265; 5,919,675; 5,561,236; 5,648,477; 5,646,024; 6,177,616; and 5,879,903. Plants containing an exogenous phosphinothricin acetyltransferase can exhibit improved tolerance to glufosinate herbicides, which inhibit the enzyme glutamine synthase. Additionally, herbicide-tolerance polynucleotides include those conferred by polynucleotides conferring altered protoporphyrinogen oxidase (protox) activity, as described in U.S. Pat. Nos. 6,288,306 B1; 6,282,837 B1; and 5,767,373; and International Publication WO2001/12825. Plants containing such polynucleotides can exhibit improved tolerance to any of a variety of herbicides which target the protox enzyme (also referred to as protox inhibitors). Polynucleotides encoding a glyphosate oxidoreductase and a glyphosate-N-acetyl transferase (GOX described in U.S. Pat. No. 5,463,175 and GAT described in U.S. Patent publication 20030083480, dicamba monooxygenase U.S. Pat. Nos. 7,022,896 and 7,884,262, all of which are incorporated herein by reference); a polynucleotide molecule encoding bromoxynil nitrilase (Bxn described in U.S. Pat. No. 4,810,648 for Bromoxynil tolerance, which is incorporated herein by reference); a polynucleotide molecule encoding phytoene desaturase (crtI) described in Misawa et al, (1993) Plant J. 4:833-840 and Misawa et al, (1994) Plant J. 6:481-489 for norflurazon tolerance; a polynucleotide molecule encoding acetohydroxyacid synthase (AHAS, aka ALS) described in Sathasiivan et al. (1990) Nucl. Acids Res. 18:2188-2193 for tolerance to sulfonylurea herbicides; and the bar gene described in DeBlock, et al. (1987) EMBO J. 6:2513-2519 for glufosinate and bialaphos tolerance. The transgenic coding regions and regulatory elements of the herbicide tolerance genes are targets in which bioactive polynucleotide triggers and herbicides can be included in the composition and combinations thereof to provide for enhanced methods of weed control.
- Transgenic crops with one or more herbicide tolerances may need specialized methods of management to control weeds. Several embodiments enable the targeting of a transgene for herbicide tolerance to permit the treated plants to become sensitive to the herbicide. For example, an EPSPS DNA contained in a transgenic crop event can be a target for bioactive trigger polynucleotides in order to render the transgenic crop sensitive to application of the corresponding glyphosate containing herbicide. Such transgenic events are known in the art and include but are not limited to DAS-44406-6, MON883302, MON87427, FG72, HCEM485, H7-1, ASR368, J101, J163, DP-098140, GHB614, 356043, MON89788, MON88913, RT200, NK603, GTSB77, GA21, MON1445, and 40-3-2 and US patent publications: 20110126310, 20090137395, herein incorporated in their entirety by reference hereto.
- Several embodiments relate to the use of a bioactive EPSPS trigger polynucleotide in conjunction with one or more transfer agents. As used herein, a “transfer agent” is an agent that, when combined with a polynucleotide in a composition that is topically applied to a target plant surface, enables the polynucleotide to enter a plant cell. In some embodiments, a transfer agent is an agent that conditions the surface of plant tissue, e.g., leaves, stems, roots, flowers, or fruits, to permeation by bioactive trigger polynucleotides into plant cells. In certain aspects, methods include one or more applications of a bioactive trigger polynucleotide composition and one or more applications of a transfer agent for conditioning of a plant to permeation by bioactive trigger polynucleotides. The transfer of bioactive trigger polynucleotides into plant cells can be facilitated by the prior or contemporaneous application of a polynucleotide-transferring agent to the plant tissue. In some embodiments the transferring agent is applied subsequent to the application of the polynucleotide composition. Not wishing to be bound by a particular theory, the transfer agent enables bioactive trigger polynucleotides to pass through cuticle wax barriers, stomata and/or cell wall or membrane barriers into plant cells. Suitable transfer agents to facilitate transfer of the bioactive trigger polynucleotide into a plant cell include agents that increase permeability of the exterior of the plant or that increase permeability of plant cells to oligonucleotides or polynucleotides. Such agents to facilitate transfer of the bioactive trigger polynucleotide into a plant cell include a chemical agent, or a physical agent, or combinations thereof. Chemical agents for conditioning or transfer include (a) surfactants, (b) organic solvents or an aqueous solution or aqueous mixtures of organic solvents, (c) oxidizing agents, (d) acids, (e) bases, (f) oils, (g) enzymes, or combinations thereof. Embodiments of a method of providing a bioactive polynucleotide trigger to plant cells can optionally include an incubation step, a neutralization step (e.g., to neutralize an acid, base, or oxidizing agent, or to inactivate an enzyme), a rinsing step, or combinations thereof. Embodiments of agents or treatments for conditioning of a plant to permeation by bioactive trigger polynucleotides include emulsions, reverse emulsions, liposomes, and other micellar-like compositions. Embodiments of agents or treatments for conditioning of a plant to permeation by bioactive trigger polynucleotides include counter-ions or other molecules that are known to associate with nucleic acid molecules, e.g., inorganic ammonium ions, alkyl ammonium ions, lithium ions, polyamines such as spermine, spermidine, or putrescine, and other cations. Organic solvents useful in conditioning a plant to permeation by bioactive trigger polynucleotides include DMSO, DMF, pyridine, N-pyrrolidine, hexamethylphosphoramide, acetonitrile, dioxane, polypropylene glycol, other solvents miscible with water or that will dissolve phosphonucleotides in non-aqueous systems (such as is used in synthetic reactions). Naturally derived or synthetic oils with or without surfactants or emulsifiers can be used, e.g., plant-sourced oils, crop oils (such as those listed in the 9th Compendium of Herbicide Adjuvants, publicly available on the worldwide web (internet) at herbicide.adjuvants.com) can be used, e.g., paraffinic oils, polyol fatty acid esters, or oils with short-chain molecules modified with amides or polyamines such as polyethyleneimine or N-pyrrolidine.
- In several embodiments, the transfer agent is an organosilicone preparation. In certain embodiments, an organosilicone preparation that is commercially available as SILWET® L-77 surfactant having CAS Number 27306-78-1 and EPA Number: CAL.REG.NO. 5905-50073-AA, and currently available from Momentive Performance Materials, Albany, N.Y. can be used to prepare a bioactive trigger polynucleotide composition. In certain embodiments where a SILWET® L-77 organosilicone preparation is used as a pre-spray treatment of plant leaves or other plant surfaces, freshly made concentrations in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) are efficacious in preparing a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells from a topical application on the surface. In certain embodiments of the methods and compositions provided herein, a composition that comprises a bioactive trigger polynucleotide molecule and an organosilicone preparation comprising SILWET® L-77 in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) is used or provided.
- In certain embodiments, any commercially available organosilicone preparation is used or provided. For example, one or more of the following commercially available organosilicone preparations can be used as transfer agents in a bioactive trigger polynucleotide composition or applied as a pre-spray treatment to prepare a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells: BREAK-THRU® S 321, BREAK-THRU® S 200 Cat#67674-67-3, BREAK-THRU® OE 441 Cat#68937-55-3, BREAK-THRU® S 278 Cat #27306-78-1, BREAK-THRU® S 243, BREAK-THRU® S 233 Cat#134180-76-0, available from manufacturer Evonik Goldschmidt (Germany), SILWET® HS 429, SILWET® HS 312, SILWET® HS 508, SILWET® HS 604 (Momentive Performance Materials, Albany, N.Y.). In certain embodiments where an organosilicone preparation is used as a pre-spray treatment of plant leaves or other surfaces, freshly made concentrations in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) are efficacious in preparing a leaf or other plant surface for transfer of bioactive trigger polynucleotide molecules into plant cells from a topical application on the surface. In certain embodiments of the methods and compositions provided herein, a composition that comprises a bioactive trigger polynucleotide molecule and an organosilicone preparation in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) is used or provided.
- Organosilicone preparations used in the methods and compositions provided herein can comprise one or more effective organosilicone compounds. As used herein, the phrase “effective organosilicone compound” is used to describe any organosilicone compound that is found in an organosilicone preparation that promotes internalization of a bioactive trigger polynucleotide into a plant cell. In certain embodiments, an effective organosilicone compound can enable a bioactive trigger polynucleotide to enter a plant cell in a manner permitting bioactive trigger polynucleotide mediated suppression of target gene expression in the plant cell. In general, effective organosilicone compounds include, but are not limited to, compounds that can comprise: i) a trisiloxane head group that is covalently linked to, ii) an alkyl linker including, but not limited to, an n-propyl linker, that is covalently linked to, iii) a poly glycol chain, that is covalently linked to, iv) a terminal group. Trisiloxane head groups of such effective organosilicone compounds include, but are not limited to, heptamethyltrisiloxane. Alkyl linkers can include, but are not limited to, an n-propyl linker. Poly glycol chains include, but are not limited to, polyethylene glycol or polypropylene glycol. Poly glycol chains can comprise a mixture that provides an average chain length “n” of about “7.5”. In certain embodiments, the average chain length “n” can vary from about 5 to about 14. Terminal groups can include, but are not limited to, alkyl groups such as a methyl group. Effective organosilicone compounds are believed to include, but are not limited to, trisiloxane ethoxylate surfactants or polyalkylene oxide modified heptamethyl trisiloxane.
- (Compound I: polyalkyleneoxide heptamethyltrisiloxane, average n=7.5).
- In certain embodiments, an organosilicone preparation that comprises an organosilicone compound comprising a trisiloxane head group is used in the methods and compositions provided herein. In certain embodiments, an organosilicone preparation that comprises an organosilicone compound comprising a heptamethyltrisiloxane head group is used in the methods and compositions provided herein. In certain embodiments, an organosilicone composition that comprises Compound I is used in the methods and compositions provided herein. In certain embodiments, an organosilicone composition that comprises Compound I is used in the methods and compositions provided herein. In certain embodiments of the methods and compositions provided herein, a composition that comprises a bioactive trigger polynucleotide molecule and one or more effective organosilicone compound in the range of about 0.015 to about 2 percent by weight (wt percent) (e.g., about 0.01, 0.015, 0.02, 0.025, 0.03, 0.035, 0.04, 0.045, 0.05, 0.055, 0.06, 0.065, 0.07, 0.075, 0.08, 0.085, 0.09, 0.095, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.5 wt percent) is used or provided.
- In several embodiments, the transfer agent is a plant hormone. Examples of plant hormones include abscisic acid, auxin, cytokinin, gibberellin, jasmonate, ethylene, salicyclic acid, nitric oxide, a strigolactone. In some embodiments, the transfer agent is the plant hormone, Brassinosteroid.
- In several embodiments, the transfer agent is a cationic lipid. As used herein, “cationic lipid” refers to a compound that includes at least one lipid moiety and a positively charged quaternary nitrogen associated with a counterion. “Lipids” are understood to be comprised of a hydrophobic alkyl or alkenyl moiety and a carboxylic acid or ester moiety. In some embodiments one ore more bioactive trigger molecules interact with cationic lipids to form nucleic acid lipid particles. In some embodiments, the bioactive trigger molecules are encapsulated in a liposome so that the bioactive trigger molecules is inaccessible to an aqueous medium. In some embodiments, the liposome will have a solid core comprised of bioactive trigger molecules; such liposomes encapsulating bioactive trigger molecules and having a solid core are termed “lipid nanoparticles” herein. In some embodiments, the bioactive trigger molecules are not encapsulated by a liposome. In such embodiments, the bioactive trigger molecules can be complexed on the outer surface of the. In these embodiments, the bioactive trigger molecules is accessible to the aqueous medium. In some embodiments, the cationic lipids can be used in combination with other lipid components such as cholesterol and PEG-lipids to form lipid nanoparticles with bioactive trigger molecules.
- In several embodiments, expression of an EPSPS gene in a plant is modulated by (a) conditioning of a plant to permeation by bioactive trigger polynucleotides and (b) treatment of the plant with the bioactive trigger polynucleotides, wherein the bioactive trigger polynucleotides include at least one segment of 18 or more contiguous nucleotides cloned from or otherwise identified from the target EPSPS gene in either anti-sense or sense orientation, whereby the bioactive trigger polynucleotide molecules permeate the interior of the plant and induce modulation of the target gene. The conditioning and polynucleotide application can be performed separately or in a single step. When the conditioning and bioactive trigger polynucleotide application are performed in separate steps, the conditioning can precede or can follow the bioactive trigger polynucleotide application within minutes, hours, or days. In some embodiments more than one conditioning step or more than one application of bioactive trigger polynucleotide molecules can be performed on the same plant.
- In some embodiments, ligands can be tethered to a bioactive trigger polynucleotide, for example a dsRNA, ssRNA, dsDNA or ssDNA trigger polynucleotide. Ligands in general can include modifiers, e.g., for enhancing uptake; diagnostic compounds or reporter groups e.g., for monitoring distribution; cross-linking agents; nuclease-resistance conferring moieties; and natural or unusual nucleobases. General examples include lipophiles, lipids (e.g., cholesterol, a bile acid, or a fatty acid (e.g., lithocholic-oleyl, lauroyl, docosnyl, stearoyl, palmitoyl, myristoyl oleoyl, linoleoyl), steroids (e.g., uvaol, hecigenin, diosgenin), terpenes (e.g., triterpenes, e.g., sarsasapogenin, Friedelin, epifriedelanol derivatized lithocholic acid), vitamins (e.g., folic acid, vitamin A, biotin, pyridoxal), carbohydrates, proteins, protein binding agents, integrin targeting molecules, polycationics, peptides, polyamines, and peptide mimics. The ligand may also be a recombinant or synthetic molecule, such as a synthetic polymer, e.g., polyethylene glycol (PEG), PEG-40K, PEG-20K and PEG-5K. Other examples of ligands include lipophilic molecules, e.g., cholesterol, cholic acid, adamantane acetic acid, 1-pyrene butyric acid, dihydrotestosterone, glycerol (e.g., esters and ethers thereof, e.g., C10, C11, C12, C13, C14, C15, C16, C17, C18, C19, or C20 alkyl; e.g., lauroyl, docosnyl, stearoyl, oleoyl, linoleoyl 1,3-bis-O(hexadecyl)glycerol, 1,3-bis-O(octaadecyl)glycerol), geranyloxyhexyl group, hexadecylglycerol, borneol, menthol, 1,3-propanediol, heptadecyl group, palmitic acid, myristic acid, O3-(oleoyl)lithocholic acid, O3-(oleoyl)cholenic acid, dodecanoyl, lithocholyl, 5β-cholanyl, N,N-distearyl-lithocholamide, 1,2-di-O-stearoylglyceride, dimethoxytrityl, or phenoxazine) and PEG (e.g., PEG-5K, PEG-20K, PEG-40K). In some embodiments, the lipophilic moieties are selected from a group consisting of lipid, cholesterols, oleyl, retinyl, and cholesteryl residues.
- In some embodiments, conjugating a ligand to a bioactive trigger polynucleotide, for example dsRNA, enhances its cellular absorption. In some embodiments, a lipophilic moiety is conjugated to a bioactive trigger polynucleotide, for example dsRNA. Lipophilic compounds that may be conjugated to a bioactive trigger polynucleotide include, but are not limited to, 1-pyrene butyric acid, 1,3-bis-O-(hexadecyl)glycerol, and menthol. One example of a ligand for receptor-mediated endocytosis is folic acid. Folic acid enters the cell by folate-receptor-radiated endocytosis. Bioactive trigger polynucleotides bearing folic acid would be efficiently transported into the cell via the folate-receptor-mediated endocytosis. Other ligands that have been conjugated to polynucleotides include polyethylene glycols, carbohydrate clusters, cross-linking agents, porphyrin conjugates, delivery peptides and lipids such as cholesterol. In certain instances, conjugation of a cationic ligand to polynucleotides results in improved resistance to nucleases. Representative examples of cationic ligands are propylammonium and dimethylpropylammonium. Interestingly, antisense polynucleotides were reported to retain their high binding affinity to mRNA when the cationic ligand was dispersed, throughout the oligonucleotide. See M. Manoharan Antisense & Nucleic Acid Drug Development 2002, 12, 103 and references therein.
- Delivery of bioactive trigger nucleotides to the interior of a plant cell can be accomplished by a variety of methods including, without limitation, (1) loading liposomes with a trigger polynucleotide provided herein and (2) complexing a trigger polynucleotide with lipids or liposomes to form nucleic acid-lipid or nucleic acid-liposome complexes. The liposome can be composed of cationic and neutral lipids commonly used to transfect cells in vitro. Cationic lipids can complex (e.g., charge-associate) with negatively charged, nucleic acids to form liposomes. Examples of cationic liposomes include, without limitation, LIPOFECTIN® (Invitrogen/Life Technologies, Carlsbad, Calif.; a 1:1 (w/w) liposome formulation of the cationic lipid N-[1-(2,3-dioleyloxy)propyl]-n,n,n-trimethylammonium chloride (DOTMA)), LIPOFECTAMINE® (Invitrogen/Life Technologies, Carlsbad, Calif.; a cationic liposome formulation with a neutral co-lipid), LIPOFECTACE® (Invitrogen/Life Technologies, Carlsbad, Calif.; a 1:2.5 (w/w) formulation of dimethyldioctadecylammonium bromide and dioleoylphosphatidylethanolamine), and DOTAP. Procedures for forming liposomes are well known in the art. Liposome compositions can be formed, for example, from phosphatidylcholine, dimyristoyl phosphatidylcholine, dipalmitoyl phosphatidylcholine, dimyristoyl phosphatidyl glycerol, dioleoyl phosphatidylethanolamine or liposomes comprising dihydrosphingomyelin (DHSM). Numerous lipophilic agents are commercially available, including LIPOFECTIN® (Invitrogen/Life Technologies, Carlsbad, Calif.) and EFFECTENE™ (Qiagen, Valencia, Calif.; a non-liposomal lipid formulation in conjunction with a DNA-condensing enhancer). In addition, systemic delivery methods can be optimized using commercially available cationic lipids such as DDAB or DOTAP, each of which can be mixed with a neutral lipid such as DOPE or cholesterol. In some eases, liposomes such as those described by Templeton et al. (Nature Biotechnology, 15:647-652 (1997)) can be used. In other embodiments, polycations such as polyethyleneimine can be used to achieve delivery in vivo and ex vivo (Boletta et al., J. Am Soc. Nephrol. 7:1728 (1996)). Additional information regarding the use of liposomes to deliver nucleic acids can be found in U.S. Pat. No. 6,271,359, PCT Publication WO 96/40964 and Morrissey, D. et al. 2005. Nat Biotechnol. 23(8):1002-7.
- In some embodiments, the bioactive trigger polynucleotide compositions may also be used as mixtures with various agricultural chemicals and/or insecticides, miticides and fungicides, pesticidal and biopesticidal agents. Examples include but are not limited to azinphos-methyl, acephate, isoxathion, isofenphos, ethion, etrimfos, oxydemeton-methyl, oxydeprofos, quinalphos, chlorpyrifos, chlorpyrifos-methyl, chlorfenvinphos, cyanophos, dioxabenzofos, dichlorvos, disulfoton, dimethylvinphos, dimethoate, sulprofos, diazinon, thiometon, tetrachlorvinphos, temephos, tebupirimfos, terbufos, naled, vamidothion, pyraclofos, pyridafenthion, pirimiphos-methyl, fenitrothion, fenthion, phenthoate, flupyrazophos, prothiofos, propaphos, profenofos, phoxime, phosalone, phosmet, formothion, phorate, malathion, mecarbam, mesulfenfos, methamidophos, methidathion, parathion, methyl parathion, monocrotophos, trichlorphon, EPN, isazophos, isamidofos, cadusafos, diamidaphos, dichlofenthion, thionazin, fenamiphos, fosthiazate, fosthietan, phosphocarb, DSP, ethoprophos, alanycarb, aldicarb, isoprocarb, ethiofencarb, carbaryl, carbosulfan, xylylcarb, thiodicarb, pirimicarb, fenobucarb, furathiocarb, propoxur, bendiocarb, benfuracarb, methomyl, metolcarb, XMC, carbofuran, aldoxycarb, oxamyl, acrinathrin, allethrin, esfenvalerate, empenthrin, cycloprothrin, cyhalothrin, gamma-cyhalothrin, lambda-cyhalothrin, cyfluthrin, beta-cyfluthrin, cypermethrin, alpha-cypermethrin, zeta-cypermethrin, silafluofen, tetramethrin, tefluthrin, deltamethrin, tralomethrin, bifenthrin, phenothrin, fenvalerate, fenpropathrin, furamethrin, prallethrin, flucythrinate, fluvalinate, flubrocythrinate, permethrin, resmethrin, ethofenprox, cartap, thiocyclam, bensultap, acetamiprid, imidacloprid, clothianidin, dinotefuran, thiacloprid, thiamethoxam, nitenpyram, chlorfluazuron, diflubenzuron, teflubenzuron, triflumuron, novaluron, noviflumuron, bistrifluoron, fluazuron, flucycloxuron, flufenoxuron, hexaflumuron, lufenuron, chromafenozide, tebufenozide, halofenozide, methoxyfenozide, diofenolan, cyromazine, pyriproxyfen, buprofezin, methoprene, hydroprene, kinoprene, triazamate, endosulfan, chlorfenson, chlorobenzilate, dicofol, bromopropylate, acetoprole, fipronil, ethiprole, pyrethrin, rotenone, nicotine sulphate, BT (Bacillus Thuringiensis) agent, spinosad, abamectin, acequinocyl, amidoflumet, amitraz, etoxazole, chinomethionat, clofentezine, fenbutatin oxide, dienochlor, cyhexatin, spirodiclofen, spiromesifen, tetradifon, tebufenpyrad, binapacryl, bifenazate, pyridaben, pyrimidifen, fenazaquin, fenothiocarb, fenpyroximate, fluacrypyrim, fluazinam, flufenzin, hexythiazox, propargite, benzomate, polynactin complex, milbemectin, lufenuron, mecarbam, methiocarb, mevinphos, halfenprox, azadirachtin, diafenthiuron, indoxacarb, emamectin benzoate, potassium oleate, sodium oleate, chlorfenapyr, tolfenpyrad, pymetrozine, fenoxycarb, hydramethylnon, hydroxy propyl starch, pyridalyl, flufenerim, flubendiamide, flonicamid, metaflumizole, lepimectin, TPIC, albendazole, oxibendazole, oxfendazole, trichlamide, fensulfothion, fenbendazole, levamisole hydrochloride, morantel tartrate, dazomet, metam-sodium, triadimefon, hexaconazole, propiconazole, ipconazole, prochloraz, triflumizole, tebuconazole, epoxiconazole, difenoconazole, flusilazole, triadimenol, cyproconazole, metconazole, fluquinconazole, bitertanol, tetraconazole, triticonazole, flutriafol, penconazole, diniconazole, fenbuconazole, bromuconazole, imibenconazole, simeconazole, myclobutanil, hymexazole, imazalil, furametpyr, thifluzamide, etridiazole, oxpoconazole, oxpoconazole fumarate, pefurazoate, prothioconazole, pyrifenox, fenarimol, nuarimol, bupirimate, mepanipyrim, cyprodinil, pyrimethanil, metalaxyl, mefenoxam, oxadixyl, benalaxyl, thiophanate, thiophanate-methyl, benomyl, carbendazim, fuberidazole, thiabendazole, manzeb, propineb, zineb, metiram, maneb, ziram, thiuram, chlorothalonil, ethaboxam, oxycarboxin, carboxin, flutolanil, silthiofam, mepronil, dimethomorph, fenpropidin, fenpropimorph, spiroxamine, tridemorph, dodemorph, flumorph, azoxystrobin, kresoxim-methyl, metominostrobin, orysastrobin, fluoxastrobin, trifloxystrobin, dimoxystrobin, pyraclostrobin, picoxystrobin, iprodione, procymidone, vinclozolin, chlozolinate, flusulfamide, dazomet, methyl isothiocyanate, chloropicrin, methasulfocarb, hydroxyisoxazole, potassium hydroxyisoxazole, echlomezol, D-D, carbam, basic copper chloride, basic copper sulfate, copper nonylphenolsulfonate, oxine copper, DBEDC, anhydrous copper sulfate, copper sulfate pentahydrate, cupric hydroxide, inorganic sulfur, wettable sulfur, lime sulfur, zinc sulfate, fentin, sodium hydrogen carbonate, potassium hydrogen carbonate, sodium hypochlorite, silver, edifenphos, tolclofos-methyl, fosetyl, iprobenfos, dinocap, pyrazophos, carpropamid, fthalide, tricyclazole, pyroquilon, diclocymet, fenoxanil, kasugamycin, validamycin, polyoxins, blasticiden S, oxytetracycline, mildiomycin, streptomycin, rape seed oil, machine oil, benthiavalicarbisopropyl, iprovalicarb, propamocarb, diethofencarb, fluoroimide, fludioxanil, fenpiclonil, quinoxyfen, oxolinic acid, chlorothalonil, captan, folpet, probenazole, acibenzolar-S-methyl, tiadinil, cyflufenamid, fenhexamid, diflumetorim, metrafenone, picobenzamide, proquinazid, famoxadone, cyazofamid, fenamidone, zoxamide, boscalid, cymoxanil, dithianon, fluazinam, dichlofluanide, triforine, isoprothiolane, ferimzone, diclomezine, tecloftalam, pencycuron, chinomethionat, iminoctadine acetate, iminoctadine albesilate, ambam, polycarbamate, thiadiazine, chloroneb, nickel dimethyldithiocarbamate, guazatine, dodecylguanidine-acetate, quintozene, tolylfluanid, anilazine, nitrothalisopropyl, fenitropan, dimethirimol, benthiazole, harpin protein, flumetover, mandipropamide and penthiopyrad.
- In some embodiments, an agronomic field in need of weed control is treated by application of an agricultural chemical composition directly to the surface of the growing plants, such as by a spray. For example, a composition comprising a bioactive trigger polynucleotide and one or more of a transfer agent and a non-polynucleotide herbicide is applied to control weeds in a field of crop plants by spraying the field with the composition. The composition can be provided as a tank mix with one or more herbicidal chemicals and additional pesticidal chemicals to control pests and diseases of the crop plants in need of pest and disease control. In some embodiments, a sequential treatment of components (for example, the bioactive trigger polynucleotide-containing composition followed by the herbicide), or a simultaneous treatment or mixing of one or more of the components of the composition from separate containers is contemplated. Treatment of the field can occur as often as needed to provide weed control and the components of the composition can be adjusted to target specific weed species or weed families through utilization of specific bioactive trigger polynucleotides or bioactive trigger polynucleotide-containing compositions capable of selectively targeting the specific species or plant family to be controlled. The composition can be applied at effective use rates according to the time of application to the field, for example, preplant, at planting, post planting, and post harvest. Glyphosate can be applied to a field at rates of 11-44 ounces/acre up to 7.2875 pounds/acre. The bioactive trigger polynucleotides of the composition can be applied at rates of 1 to 30 grams per acre depending on the number of bioactive trigger polynucleotide molecules needed for the scope of weeds in the field.
- Crop plants in which weed control may be needed include but are not limited to corn, soybean, cotton, canola, sugar beet, alfalfa, sugarcane, rice, and wheat; vegetable plants including, but not limited to, tomato, sweet pepper, hot pepper, melon, watermelon, cucumber, eggplant, cauliflower, broccoli, lettuce, spinach, onion, peas, carrots, sweet corn, Chinese cabbage, leek, fennel, pumpkin, squash or gourd, radish, Brussels sprouts, tomatillo, garden beans, dry beans, or okra; culinary plants including, but not limited to, basil, parsley, coffee, or tea; or fruit plants including but not limited to apple, pear, cherry, peach, plum, apricot, banana, plantain, table grape, wine grape, citrus, avocado, mango, or berry; a tree grown for ornamental or commercial use, including, but not limited to, a fruit or nut tree; ornamental plant (e.g., an ornamental flowering plant or shrub or turf grass). The methods and compositions provided herein can also be applied to plants that are not grown from seed, including fruit trees and plants that include, but are not limited to, avocados, tomatoes, eggplant, cucumber, melons, watermelons, and grapes as well as various ornamental plants. For example, methods and compositions provided herein can also be applied to plants produced by a cutting, cloning, or grafting process.
- All publications, patents and patent applications are herein incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference.
- The following Examples are presented for the purposes of illustration and should not be construed as limitations.
- A major mechanism of glyphosate resistance in weeds is through amplification of the gene encoding 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS). For example, genotyping of glyphosate-resistant Palmer amaranth has revealed glyphosate-resistant plants with 4 to more than 100 copies of the EPSPS gene. Bioactive trigger polynucleotide molecules targeting the EPSPS gene for down regulation are useful in controlling herbicide resistant weeds.
- As shown in Table 1, two dsRNA molecules were designed using Palmer amaranth EPSPS cDNA sequence (SEQ ID NO: 1) to comprise an anti-sense strand that is complementary to positions 398-447 (, SEQ ID NO: 4) or positions 1189-1241 (, SEQ ID NO: 6) of Amaranthus palmeri EPSPS cDNA. The Palmer amaranth EPSPS sequences targeted by the bioactive dsRNA triggers are indicated by the lowercase nucleotides. The two bioactive dsRNA trigger molecules are further capable of hybridizing with mRNA transcribed from the Amaranthus rudis (waterhemp) EPSPS gene (SEQ ID NO: 2). As shown in Table 1, SEQ ID NO: 4 complements Amaranthus rudis EPSPS at positions 398-427, 429-433, and 435-447 as indicated by the lowercase nucleotides, with two mismatches at positions 428 and 434 (underlined). SEQ ID NO: 6 complements Amaranthus rudis EPSPS at positions 1189-1202, and 1204-1241 as indicated by the lowercase nucleotides, with one mismatch at position 1203 (underlined).
-
TABLE 1 EPSPS target and trigger sequences SEQ ID NOs: 1-8 SEQ ID NO: Description Sequence 1 EPSPS cDNA ATGGCTCAAGCTACTACCATCAACAATGGTGTCCATACTGGTCAAT Amaranthus TGCACCATACTTTACCCAAAACCCAGTTACCCAAATCTTCAAAAAC palmeri TCTTAATTTTGGATCAAACTTGAGAATTTCTCCAAAGTTCATGTCTT TAACCAATAAAAGAGTTGGTGGGCAATCATCAATTGTTCCCAAGA TTCAAGCTTCTGTTGCTGCTGCAGCTGAGAAACCTTCATCTGTCCC AGAAATTGTGTTACAACCCATCAAAGAGATCTCTGGTACTGTTCAA TTGCCTGGGTCAAAGTCTTTATCCAATCGAATCCTTCTTTTAGCTGC TTTGTCTGAGGGCACAACAGTGGTCGACAACTTGCTGTATAGTGAT GATATTCTTTATATGTTGGACGCTCTCAgaactcttggtttaaaagtggaggatgata gtacagccaaaagggcagtcGTAGAGGGTTGTGGTGGTCTGTTTCCTGTTGGT AAAGATGGAAAGGAAGAGATTCAACTTTTCCTTGGTAATGCAGGA ACAGCGATGCGCCCATTGACAGCTGCGGTTGCCGTTGCTGGAGGA AATTCAAGTTATGTGCTTGATGGAGTACCAAGAATGAGGGAGCGC CCCATTGGGGATCTGGTAGCAGGTCTAAAGCAACTTGGTTCAGATG TAGATTGTTTTCTTGGCACAAATTGCCCTCCTGTTCGGGTCAATGCT AAAGGAGGCCTTCCAGGGGGCAAGGTCAAGCTCTCTGGATCGGTT AGTAGCCAATATTTAACTGCACTTCTCATGGCTACTCCTTTGGGTCT TGGAGACGTGGAGATTGAGATAGTTGATAAATTGATTTCTGTACCG TATGTTGAAATGACAATAAAGTTGATGGAACGCTTTGGAGTATCCG TAGAACATAGTGATAGTTGGGACAGGTTCTACATTCGAGGTGGTC AGAAATACAAATCTCCTGGAAAGGCATATGTTGAGGGTGATGCTT CAAGTGCTAGCTACTTCCTAGCCGGAGCCGCCGTCACTGGTGGGAC TGTCACTGTCAAGGGTTGTGGAACAAGCAGTTTACAGGGTGATGT AAAATTTGCCGAAGTTCTTGAGAAGATGGGTTGCAAGGTCACCTG GACAGAGAATAGTGTAACTGTTACTGGACCACCCAGGGATTCATC TGGAAAGAAACATCTGCGTGCTATCgacgtcaacatgaacaaaatgccagatgttgct atgactcttgcagttgttgcCTTGTATGCAGATGGGCCCACCGCCATCAGAGAT GTGGCTAGCTGGAGAGTGAAGGAAACCGAACGGATGATTGCCATT TGCACAGAACTGAGAAAGCTTGGGGCAACAGTTGAGGAAGGATCT GATTACTGTGTGATCACTCCGCCTGAAAAGCTAAACCCCACCGCCA TTGAAACTTATGACGATCACCGAATGGCCATGGCATTCTCTCTTGC TGCCTGTGCAGATGTTCCCGTCACTATCCTTGATCCGGGATGCACC CGTAAAACCTTCCCGGACTACTTTGATGTTTTAGAAAAGTTCGCCA AGCATTGA 2 EPSPS ATGGCTCAAGCTACTACCATCAACAATGGTGTCCAAACTGGTCAAT Amaranthus TGCACCATACTTTACCCAAAACCCACTTACCCAAATCTTCAAAAAC rudis TGTTAATTTTGGATCAAACTTTAGAATTTCTCCAAAGTTCATGTCTT TAACCAATAAAAGAGTTGGTGGGCAATCATCAATTATTCCCAAGA TTCAAGCTTCAGTTGCTGCTGCAGCTGAGAAACCTTCATCTGTCCC AGAAATTGTGTTACAACCCATCAAAGAGATCTCTGGTACCATTCAA TTGCCTGGGTCAAAGTCTCTATCTAATCGAATCCTTCTTTTAGCTGC TTTGTCTCAGGGCACAACTGTGGTCGACAACTTGCTGTATAGTGAT GATATTCTTTATATGTTGGACGCTCTCAgaactcttggtttaaaagtggaggatgata AtacagAcaaaagggcagtcGTGGAGGGTTGTGGTGGTCTGTTTCCTGTTGG TAAAGATGGAAAGGAAGAGATTCAACTTTTCCTTGGAAATGCAGG AACAGCGATGCGCCCATTGACAGCTGCGGTTGCCGTTGCTGGAGG AAATTCAAGCTATGTTCTTGACGGAGTACCAAGAATGAGGGAGCG CCCCATTGGGGATCTGGTAGCAGGTCTAAAGCAACTTGGTTCAGAT GTTGACTGTTTTCTTGGCACAAATTGCCCTCCTGTTCGGGTCAATGC TAAAGGAGGCCTTCCAGGGGGCAAGGTCAAGCTCTCTGGATCGGT TAGTAGCCAATATTTAACTGCACTTCTGATGGCTACTCCTTTGGGT CTTGGAGATGTGGAGATTGAGATAGTTGATAAATTGATTTCCGTAC CGTATGTTGAAATGACAATAAGGTTGATGGAACGCTTTGGAGTATC TGTTGAACATAGTGATAGTTGGGACAGGTTCTTCATCCGAGGTGGT CAGAAATACAAATCTCCTGGAAAGGCATATGTTGAGGGTGACGCT TCAAGTGCTAGCTACTTCCTAGCTGGAGCCGCCGTCACTGGGGGGA CTGTGACTGTCAAGGGTTGTGGAACAAGCAGTTTACAGGGTGATG TAAAATTTGCCGAAGTTCTTGAGAAGATGGGTTGCAAGGTCACCTG GACAGACAATAGCGTAACTGTTACTGGACCACCCAGGGAATCATC TGGAAGGAAACATTTGCGCGCTATCgacgtcaacatgaaTaaaatgccagatgagct atgactcttgcagttgttgcCTTGTATGCAGATGGGCCCACCGCCATTAGAGAT GTGGCTAGCTGGAGAGTGAAGGAAACCGAACGGATGATTGCCATT TGCACAGAACTGAGAAAGCTTGGGGCAACAGTTGAGGAAGGATCT GATTACTGTGTGATCACTCCGCCTGAAAAGCTGATACCCACCGCCA TCGAAACTTATGACGATCACCGAATGGCCATGGCATTCTCTCTTGC TGCCTGTGCTGATGTTCCCGTCACTATCCTTGATCCGGGATGTACA CGTAAAACCTTCCCGGACTACTTTGATGTCTTAGAAAAGTTCGCCA AGCATTGA 3 50mer EPSPS GAACUCUUGGUUUAAAAGUGGAGGAUGAUAGUACAGCCAAAAG Trigger GGCAGUC 4 Reverse GACUGCCCUUUUGGCUGUACUAUCAUCCUCCACUUUUAAACCAA Complement GAGUUC 5 53mer EPSPS GACGUCAACAUGAACAAAAUGCCAGAUGUUGCUAUGACUCUUGC Trigger AGUUGUUGC 6 Reverse GCAACAACUGCAAGAGUCAUAGCAACAUCUGGCAUUUUGUUCAU Complement GUUGACGUC 7 24mer EPSPS AUGCCAGAUGUUGCUAUGACUCUU Trigger 8 Reverse AAGAGUCAUAGCAACAUCUGGCAU Complement - A number of plant species contain an EPSPS gene. For example, a gene encoding an EPSPS polynucleotide molecule occurs naturally in the genome of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidium, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convulvulus arvensis, Conyza candensis, Digitaria sanguinalis, and Xanthium strumarium. The nucleotide sequences of
SEQ ID NO 3 and SEQ ID NO 5 were compared to the EPSPS gene sequences of various plant species and target sequences having at least 85% identity or complementarity to SEQ ID NOs 3-6 were identified. EPSPS target sequences identified as having at least 85% identity or complementarity to SEQ ID NOs 3-6 are shown in Table 2 (mismatches are underlined). Bioactive trigger polynucleotides comprising a nucleotide sequence having at least 85% identity or complementarity to SEQ ID NOs: 9-35 are contemplated for down regulating EPSPS expression and controlling herbicide resistant weeds. -
TABLE 2 EPSPS target nucleotide sequences SEQ ID NOs: 9-35 SEQ ID Corresponding NO: Species to: Sequence Length 9 Amaranthus SEQ ID NO: 3 GAGCTCTTGGTTTAAAAGTGGAGGATGAT 49 graecizans AATACAGCCAAAAGGGCAGT 10 Amaranthus SEQ ID NO: 3 GAACTCTTGGTTTAAAAGTGGAGGATGAT 50 hybridus AATACAGCCAAAAGGGCAGTC 11 Amaranthus SEQ ID NO: 3 GAACTCTTGGTTTAAAAGTGGAGGATGAT 50 palmeri AGTACAGCCAAAAGGGCAGTC 12 Amaranthus SEQ ID NO: 3 GAACTCTTGGTTTAAAAGTGGAGGATGAT 50 rudis AATACAGACAAAAGGGCAGTC 13 Amaranthus SEQ ID NO: 3 GAACTCTTGGTTTAAAAGTGGAGGATGAT 50 viridis AATACAGCCAAAAGGGCAGTC 14 Abutilon SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCAGATGT 53 theophrasti TGCCATGACTCTCGCTGTTGTTGC 15 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 graecizans TGCTATGACTCTTGCAGTTGTTGC 16 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 hybridus TGCTATGACTCTTGCAGTAGTTGC 17 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 lividus TGCTATGACTCTTGCAGTAGTTGC 18 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 palmeri TGCTATGACTCTTGCAGTTGTTGC 19 Amaranthus SEQ ID NO: 5 GACGTCAACATGAATAAAATGCCAGATGT 53 rudis TGCTATGACTCTTGCAGTTGTTGC 20 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 thunbergii TGCTATGACTCTTGCAGTAGTTGC 21 Amaranthus SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCAGATGT 53 viridis TGCTATGACTCTTGCAGTAGTTGC 22 Ambrosia SEQ ID NO: 5 GATGTTAACATGAACAAAATGCCAGATGT 53 trifida TGCCATGACGCTTGCAGTCGTTGC 23 Chenopodium SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCAGATGT 53 album CGCTATGACTCTTGCTGTTGTTGC 24 Convolvulus SEQ ID NO: 5 GATGTCAACATGAATAAAATGCCAGATGT 53 arvensis CGCCATGACTCTTGCTGTAGTTGC 25 Conyza SEQ ID NO: 5 GATGTGAACATGAACAAGATGCCTGATGT 53 canadensis TGCCATGACTCTTGCTGTGGTCGC 26 Digitaria SEQ ID NO: 5 GATGTTAACATGAACAAAATGCCCGATGT 53 sanguinalis TGCCATGACTCTTGCCGTGGTTGC 27 Digitaria SEQ ID NO: 5 GACGTCAACATGAACAAAATGCCTGATGT 53 sanguinalis CGCAATGACTCTTGCTGTGGTTGC 28 Echinochloa SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCTGATGT 53 colona TGCCATGACTCTTGCTGTGGTCGC 29 Echinochloa SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCTGATGT 53 crus-galli TGCCATGACTCTTGCTGTGGTCGC 30 Euphorbia SEQ ID NO: 5 GATGTGAACATGAACAAAATGCCAGATGT 53 heterophylla CGCTATGACATTGGCTGTGGTTGC 31 Ipomoea SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCAGATGT 53 hederacea TGCCATGACTCTTGCTGTAGTTGC 32 Lolium SEQ ID NO: 5 GATGTCAACATGAACAAAATGCCTGATGT 53 multiflorum TGCCATGACTCTTGCCGTTGTTGC 33 Senna SEQ ID NO: 5 GATGTCAACATGAACAAGATGCCAGATGT 53 obtusifolia TGCCATGACTCTTGCTGTAGTTGC 34 Sorghum SEQ ID NO: 5 GATGTTAACATGAACAAAATGCCTGATGT 53 halepense TGCCATGACTCTTGCTGTGGTTGC 35 Xanthium SEQ ID NO: 5 GATGTTAACATGAACAAAATGCCAGATGT 53 strumarium TGCCATGACGCTTGCAGTCGTTGC - The efficacies of mid-sized bioactive polynucleotide trigger molecules comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 were assessed in glyphosate-resistant Palmer amaranth in relation to a 24-mer trigger comprising SEQ ID NOs: 7 and 8, which was known to sensitize glyphosate-resistant Palmer amaranth to glyphosate. Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the triggers were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to the desired concentration. The trigger formulations were then topically applied to the leaves of glyphosate-resistant Amaranthus palmeri plants (“R-22”). Control plants were either untreated or treated with the 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer solution. One day after treatment, WEATHERMAX® brand glyphosate herbicide (RU Wmax, Monsanto, St Louis, Mo.) was applied to the plants at 1.5 lb/ac. 11 days after treatment (DAT) with EPSPS trigger polynucleotides the percent growth reduction of the dsRNA treated plants was assessed relative to untreated control plants by visual score. At 14 DAT the fresh weight of the dsRNA treated and control plants were determined. Four replications were performed per treatment. As shown in Table 3, the mid-sized polynucleotide trigger molecules corresponding to SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6, showed similar activity to the trigger sequence corresponding to SEQ ID NOs: 7 and 8 in sensitizing glyphosate-resistant Amaranthus palmeri plants to glyphosate. See also
FIG. 1 . -
TABLE 3 Activity of EPSPS trigger polynucleotides in glyphosate-resistant Amaranthus palmeri Fresh weight Treatment Concentration visual 11-DAT 14-DAT SEQ ID NO (nmole) Average Stdev Average Stdev formulation — 30.0 11.5 27.7 13.1 control SEQ ID NO 7/82 nmole 47.5 5.0 19.0 7.7 SEQ ID NO 7/84 nmole 88.8 12.5 95.3 8.6 SEQ ID NO 7/88 nmole 90.0 7.1 91.8 5.4 SEQ ID NO 7/816 nmole 85.8 11.8 93.7 6.6 SEQ ID NO 5/62 nmole 48.8 17.5 18.2 10.9 SEQ ID NO 5/64 nmole 41.3 4.8 94.0 5.6 SEQ ID NO 5/68 nmole 93.8 2.5 96.2 2.8 SEQ ID NO 5/616 nmole 81.3 13.1 90.7 9.5 SEQ ID NO 3/42 nmole 46.3 18.0 24.0 3.7 SEQ ID NO 3/44 nmole 28.8 10.3 94.7 5.4 SEQ ID NO 3/48 nmole 88.3 10.4 88.4 9.5 SEQ ID NO 3/416 nmole 90.0 13.5 97.0 2.7 - The efficacies of mid-sized polynucleotide trigger molecules comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6, were assessed in glyphosate-resistant Waterhemp (Amaranthus rudis) in relation to a 24-mer trigger comprising SEQ ID NOs: 7 and 8. dsRNA triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the triggers were each formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a concentration of 8 nmol. The trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp. Control plants were either untreated or treated with a solution of 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer. One day after treatment with the trigger formulation, WEATHERMAX® brand glyphosate herbicide was applied to the plants at 1.5 lb/ac. Four replications were performed per treatment. The fresh weight of the plants was determined 14 DAT with EPSPS trigger polynucleotides and the fresh weight % compared to control plants (treated with WEATHERMAX® brand glyphosate herbicide alone) was calculated. See Table 4. As shown in Table 4, the trigger polynucleotides comprising
SEQ ID NO 3/4 orSEQ ID NO 5/6 showed similar activity to trigger polynucleotides comprisingSEQ ID NO 7/8 in sensitizing glyphosate-resistant Waterhemp plants to glyphosate. -
TABLE 4 Activity of EPSPS trigger polynucleotides in glyphosate-resistant waterhemp Treatment and % Control Fresh SEQ ID NO Concentration wt. average Buffer — 35 SEQ ID NO 7/88 nmol 85 SEQ ID NO 3/48 nmol 78 SEQ ID NO 5/68 nmol 83 - The activities of mid-sized bioactive polynucleotide trigger molecules corresponding to SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 were assessed in Amaranthus palmeri protoplasts. A 6 ug dose of each dsRNA trigger (
SEQ ID NO 3/4 orSEQ ID NO 5/6) was added to Amaranthus palmeri protoplasts. As shown inFIG. 2 , the dsRNA triggers comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6 reduced EPSPS mRNA levels by 69% and 84%, respectively. - The efficacies of mid-sized bioactive polynucleotide trigger molecules
- comprising
3 and 4 orSEQ ID NOs SEQ ID NOs 5 and 6 were assessed in glyphosate-resistant Waterhemp (WH13) in relation to a 24-mer trigger comprising 7 and 8, which was known to sensitize glyphosate-resistant Waterhemp to glyphosate. Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences of SEQ ID NOs: 3 and 4, SEQ ID NOs: 5 and 6, and SEQ ID NOs: 7 and 8 were produced and the bioactive trigger polynucleotides were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a concentration of 2 nmol, 4 nmol, 8 nmol or 16 nmol. The trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp plants (“WH13”). Control plants were either untreated or treated with the 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer solution. One day after treatment, WEATHERMAX® brand glyphosate herbicide (RU Wmax, Monsanto, St Louis, Mo.) was applied to the plants at 1.5 lb/ac. Four replications were performed per treatment.SEQ ID NOs FIG. 3 shows the plants at 14 days after treatment. As shown inFIG. 3 , the mid-sized bioactive trigger polynucleotide molecules comprising SEQ ID NOs: 5 and 6 or SEQ ID NOs: 3 and 4, sensitize glyphosate-resistant Waterhemp plants to glyphosate. - A composition comprising at least one bioactive trigger polynucleotide comprising a nucleotide sequence that is essentially identical and/or essentially complementary to SEQ ID NOs: 3-35 or a fragment thereof and a transfer agent that mobilizes the bioactive trigger polynucleotide into a plant cell is applied to a field of growing plants at an effective concentration. For example, an effective concentration of a bioactive trigger polynucleotide can have a use rate of about 1 to 30 grams or more per acre depending on the size of the bioactive trigger polynucleotide and the number of bioactive trigger polynucleotides in the composition. The bioactive trigger polynucleotide of the composition may be a dsRNA, ssDNA or dsDNA or a combination thereof. An effective concentration of bioactive trigger polynucleotides modulate the expression of an EPSPS gene in one or more target weed plant species to promote sensitivity of the target weed plant species to glyphosate. A glyphosate-containing herbicide is applied to control weeds in the field.
- The composition optionally comprises a bioactive trigger polynucleotide that modulates the expression of an essential gene and optionally a herbicide that has a different mode of action relative to glyphosate. The composition may include one or more additional herbicides as needed to provide effective multi-species weed control. A composition comprising 1 or 2 or 3 or 4 or more of bioactive trigger polynucleotide that are essentially identical or essentially complementary to SEQ ID NOs: 3-35 or a fragment thereof would enable broad activity of the composition against the multiple weed species that occur in a field environment.
- The EPSPS cDNA of SEQ ID NO: 1 was tiled across the entire length of the cDNA to identify target sequences for bioactive trigger polynucleotides covering as shown in Table 5. The target nucleotide sequence were chosen to be approximately 47-62 bp in length. Bioactive trigger polynucleotides comprising a nucleotide sequence having at least 85% identity or complementarity to SEQ ID NOs: 36-66 were tested for the ability to sensitize glyphosate-resistant Waterhemp to glyphosate.
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TABLE 5 EPSPS target nucleotide sequences SEQ ID NO 36-66 SEQ ID NO Size Sense 36 49 GCTCAAGCTACTACCATCAACAATGGTGTCCATACTGGTCAATTGCACC 37 60 GCACCATACTTTACCCAAAACCCAGTTACCCAAATCTTCAAAAACTCTTAATTTTGGATC 38 60 GATCAAACTTGAGAATTTCTCCAAAGTTCATGTCTTTAACCAATAAAAGAGTTGGTGGGC 39 48 GCAATCATCAATTGTTCCCAAGATTCAAGCTTCTGTTGCTGCTGCAGC 40 54 GCTGAGAAACCTTCATCTGTCCCAGAAATTGTGTTACAACCCATCAAAGAGATC 41 52 GATCTCTGGTACTGTTCAATTGCCTGGGTCAAAGTCTTTATCCAATCGAATC 42 54 GAATCCTTCTTTTAGCTGCTTTGTCTGAGGGCACAACAGTGGTCGACAACTTGC 43 47 GCTGTATAGTGATGATATTCTTTATATGTTGGACGCTCTCAGAACTC 44 61 GCAGTCGTAGAGGGTTGTGGTGGTCTGTTTCCTGTTGGTAAAGATGGAAAGGAAGAGATTC 45 48 GATTCAACTTTTCCTTGGTAATGCAGGAACAGCGATGCGCCCATTGAC 46 56 GACAGCTGCGGTTGCCGTTGCTGGAGGAAATTCAAGTTATGTGCTTGATGGAGTAC 47 52 GTACCAAGAATGAGGGAGCGCCCCATTGGGGATCTGGTAGCAGGTCTAAAGC 48 53 GCAACTTGGTTCAGATGTAGATTGTTTTCTTGGCACAAATTGCCCTCCTGTTC 49 56 GTTCGGGTCAATGCTAAAGGAGGCCTTCCAGGGGGCAAGGTCAAGCTCTCTGGATC 50 54 GATCGGTTAGTAGCCAATATTTAACTGCACTTCTCATGGCTACTCCTTTGGGTC 51 48 GTCTTGGAGACGTGGAGATTGAGATAGTTGATAAATTGATTTCTGTAC 52 58 GTACCGTATGTTGAAATGACAATAAAGTTGATGGAACGCTTTGGAGTATCCGTAGAAC 53 51 GAACATAGTGATAGTTGGGACAGGTTCTACATTCGAGGTGGTCAGAAATAC 54 55 GTCAGAAATACAAATCTCCTGGAAAGGCATATGTTGAGGGTGATGCTTCAAGTGC 55 51 GCTAGCTACTTCCTAGCCGGAGCCGCCGTCACTGGTGGGACTGTCACTGTC 56 55 GTCAAGGGTTGTGGAACAAGCAGTTTACAGGGTGATGTAAAATTTGCCGAAGTTC 57 56 GTTCTTGAGAAGATGGGTTGCAAGGTCACCTGGACAGAGAATAGTGTAACTGTTAC 58 54 GTTACTGGACCACCCAGGGATTCATCTGGAAAGAAACATCTGCGTGCTATCGAC 59 62 GCCTTGTATGCAGATGGGCCCACCGCCATCAGAGATGTGGCTAGCTGGAGAGTGAAGGAAAC 60 50 GAAACCGAACGGATGATTGCCATTTGCACAGAACTGAGAAAGCTTGGGGC 61 52 GCAACAGTTGAGGAAGGATCTGATTACTGTGTGATCACTCCGCCTGAAAAGC 62 51 GCTAAACCCCACCGCCATTGAAACTTATGACGATCACCGAATGGCCATGGC 63 57 GCATTCTCTCTTGCTGCCTGTGCAGATGTTCCCGTCACTATCCTTGATCCGGGATGC 64 54 GCACCCGTAAAACCTTCCCGGACTACTTTGATGTTTTAGAAAAGTTCGCCAAGC 65 50 GAACTCTTGGTTTAAAAGTGGAGGATGATAGTACAGCCAAAAGGGCAGTC 66 53 GACGTCAACATGAACAAAATGCCAGATGTTGCTATGACTCTTGCAGTTGTTGC - Double stranded RNA (dsRNA) triggers comprising polynucleotide sequences corresponding to SEQ ID NOs: 36-62 were produced and the bioactive trigger polynucleotides were formulated with 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate buffer to a final concentration of 8 nmol. The trigger formulations were then topically applied to the leaves of glyphosate-resistant Waterhemp plants (“WH13”). Control plants were either untreated or treated with the formulation 0.5% SILWET® L-77, 2% AMS, and 20 mM phosphate “buffer” solution. Additionally dsRNA comprising SEQ ID NOs: 7 and 8 (24-mer EPSPS trigger) was applied as a control. One day after treatment, WEATHERMAX® brand glyphosate herbicide (RU Wmax, Monsanto, St Louis, Mo.) was applied to the plants at 1.5 lb/ac.
- Three replications were performed per treatment.
FIG. 4 shows the fresh weight (g) of the plants at 14 days after treatment. As shown inFIG. 4 , several mid-sized bioactive trigger polynucleotide molecules sensitize glyphosate-resistant Waterhemp plants to glyphosate, in particular, in addition to bioactive trigger polynucleotides comprising SEQ ID NOs: 3 and 4 or SEQ ID NOs: 5 and 6, it was observed that bioactive trigger polynucleotides corresponding to SEQ ID NOs: 36, 42, 43, 44, 57, 58 and 59 had good efficacy.
Claims (45)
1. A method of controlling growth, development or reproductive ability of a plant, comprising: topically treating the plant with a composition comprising a bioactive trigger polynucleotide and a transfer agent, wherein the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof, whereby the growth, development or reproductive ability of the plant is reduced.
2. The method of claim 1 , wherein the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5.
3. The method of claim 1 , wherein the transfer agent is an organosilicone surfactant.
4. The method of claim 3 , wherein the organosilicone surfactant is BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, or BREAK-THRU® S 233.
5. The method of claim 1 , wherein the transfer agent comprises a cationic lipid reagent.
6. The method of claim 5 , wherein the cationic lipid reagent is N-[1-(2,3-Dioleoyloxy)propyl]-N,N,N-trimethylammonium methyl-sulfate (DOTAP).
7. The method of claim 1 , wherein the transfer agent is a plant hormone and wherein the plant hormone is Brassinosteroid.
8. The method of claim 1 , wherein the bioactive trigger polynucleotide is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids.
9. The method of claim 8 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
10. The method of claim 8 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
11. The method of claim 1 , wherein the plant is selected from the group consisting of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidum, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convolvulus arvensis, Conyza canadensis, Digitaria sanguinalis, and Xanthium strumarium.
12. The method of claim 1 , wherein the composition further comprises an EPSPS-inhibitor herbicide.
13. The method of claim 12 , wherein the composition further comprises one or more herbicides different from the EPSPS-inhibitor herbicide.
14. The method of claim 12 , wherein the composition further comprises an auxin-like herbicide.
15. The method of claim 14 , wherein the auxin-like herbicide is dicamba or 2,4-D.
16. The method of claim 1 , wherein the composition comprises a combination of two or more different bioactive trigger polynucleotides.
17. A composition comprising: one or more bioactive trigger polynucleotides and a transfer agent, wherein one or more bioactive trigger polynucleotides comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-66, or a fragment thereof.
18. The composition of claim 17 , wherein one or more bioactive trigger polynucleotides comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5.
19. The composition of claim 17 , wherein one or more bioactive trigger polynucleotides is selected from the group consisting of single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, and double-stranded DNA/RNA hybrids.
20. The composition of claim 19 , wherein one or more bioactive trigger polynucleotides is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
21. The composition of claim 19 , wherein one or more bioactive trigger polynucleotides is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
22. The composition of claim 17 , wherein the transfer agent is selected from the group consisting of an organosilicone surfactant, a cationic lipid reagent and Brassinosteroid.
23. The composition of claim 22 , wherein the composition further comprises ammonium sulfate.
24. The composition of claim 22 , wherein the transfer agent is an organosilicone surfactant selected from the group consisting of: BREAK-THRU® S 321, BREAK-THRU® S 200, BREAK-THRU® OE 441, BREAK-THRU® S 278, BREAK-THRU® S 243, SILWET L-77®, SILWET® HS 429, SILWET® HS 312, and BREAK-THRU® S 233.
25. The composition of claim 22 , wherein the transfer agent is DOTAP.
26. The composition of claim 17 , further comprising an EPSPS-inhibitor herbicide.
27. The composition of claim 26 , wherein the EPSPS-inhibitor herbicide is glyphosate.
28. The composition of claim 26 , further comprising a non-EPSPS-inhibitor herbicide.
29. The composition of claim 28 , wherein the non-EPSPS-inhibitor herbicide is dicamba or 2,4-D.
30. A bioactive trigger polynucleotide comprising: a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO: 3, 5, or 9-35, or a fragment thereof.
31. The bioactive trigger polynucleotide of claim 30 , wherein the bioactive trigger polynucleotide comprises a nucleotide sequence that is essentially identical or essentially complementary to SEQ ID NO 3 or SEQ ID NO 5.
32. The bioactive trigger polynucleotide of claim 30 , wherein the bioactive trigger polynucleotide is single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, or a double-stranded DNA/RNA hybrid.
33. The bioactive trigger polynucleotide of claim 32 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
34. The bioactive trigger polynucleotide of claim 32 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
35. A plant cell comprising the bioactive trigger polynucleotide of any one of claims 30 -34 .
36. A growing plant comprising the bioactive trigger polynucleotide of any one of claims 30 -34 .
37. A seed comprising the bioactive trigger polynucleotide of any one of claims 30 -34 .
38. A method of sensitizing a weed plant to an EPSPS-inhibitor herbicide comprising:
treating the weed with a bioactive trigger polynucleotide that is essentially identical or essentially complementary to a nucleotide sequence selected from the group consisting of SEQ ID NO: 3, 5, and 9-66, or a fragment thereof, whereby the weed is more sensitive to an EPSPS-inhibitor herbicide relative to a weed not treated with the bioactive trigger polynucleotide.
39. The method of claim 38 , wherein the EPSPS-inhibitor herbicide is glyphosate.
40. The method of claim 38 , wherein the weed is resistant to one or more of glyphosate, dicamba and sulfonylurea.
41. The method of claim 40 , wherein the weed is growing in a field of herbicide-resistant crop plants.
42. The method of claim 40 , wherein the weed is selected from the group consisting of Amaranthus palmeri, Amaranthus rudis, Amaranthus albus, Amaranthus chlorostachys, Amaranthus graecizans, Amaranthus hybridus, Amaranthus lividus, Amaranthus spinosus, Amaranthus thunbergii, Amaranthus viridis, Lolium multiflorum, Lolium rigidum, Ambrosia artemisiifolia, Ambrosia trifida, Euphorbia heterophylla, Kochia scoparia, Abutilon theophrasti, Sorghum halepense, Chenopodium album, Commelina diffusa, Convolvulus arvensis, Conyza canadensis, Digitaria sanguinalis, and Xanthium strumarium.
43. The method of claim 38 , wherein the bioactive trigger polynucleotide is single-stranded DNA, single-stranded RNA, double-stranded RNA, double-stranded DNA, or a double-stranded DNA/RNA hybrid.
44. The method of claim 38 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 3 and 4.
45. The method of claim 38 , wherein the bioactive trigger polynucleotide is double-stranded RNA and the double-stranded RNA comprises SEQ ID NOs: 5 and 6.
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| US16/409,172 US20190264222A1 (en) | 2014-01-15 | 2019-05-10 | Methods and Compositions for Weed Control Using EPSPS Polynucleotides |
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| PCT/US2015/011408 WO2015108982A2 (en) | 2014-01-15 | 2015-01-14 | Methods and compositions for weed control using epsps polynucleotides |
| US201615111729A | 2016-07-14 | 2016-07-14 | |
| US16/409,172 US20190264222A1 (en) | 2014-01-15 | 2019-05-10 | Methods and Compositions for Weed Control Using EPSPS Polynucleotides |
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| PCT/US2015/011408 Continuation WO2015108982A2 (en) | 2014-01-15 | 2015-01-14 | Methods and compositions for weed control using epsps polynucleotides |
| US15/111,729 Continuation US10334848B2 (en) | 2014-01-15 | 2015-01-14 | Methods and compositions for weed control using EPSPS polynucleotides |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10934555B2 (en) | 2012-05-24 | 2021-03-02 | Monsanto Technology Llc | Compositions and methods for silencing gene expression |
Family Cites Families (539)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| NL154600B (en) | 1971-02-10 | 1977-09-15 | Organon Nv | METHOD FOR THE DETERMINATION AND DETERMINATION OF SPECIFIC BINDING PROTEINS AND THEIR CORRESPONDING BINDABLE SUBSTANCES. |
| US3687808A (en) | 1969-08-14 | 1972-08-29 | Univ Leland Stanford Junior | Synthetic polynucleotides |
| NL154598B (en) | 1970-11-10 | 1977-09-15 | Organon Nv | PROCEDURE FOR DETERMINING AND DETERMINING LOW MOLECULAR COMPOUNDS AND PROTEINS THAT CAN SPECIFICALLY BIND THESE COMPOUNDS AND TEST PACKAGING. |
| NL154599B (en) | 1970-12-28 | 1977-09-15 | Organon Nv | PROCEDURE FOR DETERMINING AND DETERMINING SPECIFIC BINDING PROTEINS AND THEIR CORRESPONDING BINDABLE SUBSTANCES, AND TEST PACKAGING. |
| US3901654A (en) | 1971-06-21 | 1975-08-26 | Biological Developments | Receptor assays of biologically active compounds employing biologically specific receptors |
| US3853987A (en) | 1971-09-01 | 1974-12-10 | W Dreyer | Immunological reagent and radioimmuno assay |
| US3867517A (en) | 1971-12-21 | 1975-02-18 | Abbott Lab | Direct radioimmunoassay for antigens and their antibodies |
| NL171930C (en) | 1972-05-11 | 1983-06-01 | Akzo Nv | METHOD FOR DETERMINING AND DETERMINING BITES AND TEST PACKAGING. |
| US3850578A (en) | 1973-03-12 | 1974-11-26 | H Mcconnell | Process for assaying for biologically active molecules |
| US3935074A (en) | 1973-12-17 | 1976-01-27 | Syva Company | Antibody steric hindrance immunoassay with two antibodies |
| US3996345A (en) | 1974-08-12 | 1976-12-07 | Syva Company | Fluorescence quenching with immunological pairs in immunoassays |
| US4034074A (en) | 1974-09-19 | 1977-07-05 | The Board Of Trustees Of Leland Stanford Junior University | Universal reagent 2-site immunoradiometric assay using labelled anti (IgG) |
| US3984533A (en) | 1975-11-13 | 1976-10-05 | General Electric Company | Electrophoretic method of detecting antigen-antibody reaction |
| US4098876A (en) | 1976-10-26 | 1978-07-04 | Corning Glass Works | Reverse sandwich immunoassay |
| US4879219A (en) | 1980-09-19 | 1989-11-07 | General Hospital Corporation | Immunoassay utilizing monoclonal high affinity IgM antibodies |
| US4469863A (en) | 1980-11-12 | 1984-09-04 | Ts O Paul O P | Nonionic nucleic acid alkyl and aryl phosphonates and processes for manufacture and use thereof |
| US5023243A (en) | 1981-10-23 | 1991-06-11 | Molecular Biosystems, Inc. | Oligonucleotide therapeutic agent and method of making same |
| US4476301A (en) | 1982-04-29 | 1984-10-09 | Centre National De La Recherche Scientifique | Oligonucleotides, a process for preparing the same and their application as mediators of the action of interferon |
| US4535060A (en) | 1983-01-05 | 1985-08-13 | Calgene, Inc. | Inhibition resistant 5-enolpyruvyl-3-phosphoshikimate synthetase, production and use |
| US5094945A (en) | 1983-01-05 | 1992-03-10 | Calgene, Inc. | Inhibition resistant 5-enolpyruvyl-3-phosphoshikimate synthase, production and use |
| US5331107A (en) | 1984-03-06 | 1994-07-19 | Mgi Pharma, Inc. | Herbicide resistance in plants |
| US4761373A (en) | 1984-03-06 | 1988-08-02 | Molecular Genetics, Inc. | Herbicide resistance in plants |
| US5304732A (en) | 1984-03-06 | 1994-04-19 | Mgi Pharma, Inc. | Herbicide resistance in plants |
| US5011771A (en) | 1984-04-12 | 1991-04-30 | The General Hospital Corporation | Multiepitopic immunometric assay |
| US5550111A (en) | 1984-07-11 | 1996-08-27 | Temple University-Of The Commonwealth System Of Higher Education | Dual action 2',5'-oligoadenylate antiviral derivatives and uses thereof |
| US4666828A (en) | 1984-08-15 | 1987-05-19 | The General Hospital Corporation | Test for Huntington's disease |
| US4581847A (en) | 1984-09-04 | 1986-04-15 | Molecular Genetics Research And Development | Tryptophan overproducer mutants of cereal crops |
| ATE93542T1 (en) | 1984-12-28 | 1993-09-15 | Plant Genetic Systems Nv | RECOMBINANT DNA THAT CAN BE INTRODUCED INTO PLANT CELLS. |
| US5034506A (en) | 1985-03-15 | 1991-07-23 | Anti-Gene Development Group | Uncharged morpholino-based polymers having achiral intersubunit linkages |
| US5185444A (en) | 1985-03-15 | 1993-02-09 | Anti-Gene Deveopment Group | Uncharged morpolino-based polymers having phosphorous containing chiral intersubunit linkages |
| US5166315A (en) | 1989-12-20 | 1992-11-24 | Anti-Gene Development Group | Sequence-specific binding polymers for duplex nucleic acids |
| US5405938A (en) | 1989-12-20 | 1995-04-11 | Anti-Gene Development Group | Sequence-specific binding polymers for duplex nucleic acids |
| US5235033A (en) | 1985-03-15 | 1993-08-10 | Anti-Gene Development Group | Alpha-morpholino ribonucleoside derivatives and polymers thereof |
| US4683202A (en) | 1985-03-28 | 1987-07-28 | Cetus Corporation | Process for amplifying nucleic acid sequences |
| US4801531A (en) | 1985-04-17 | 1989-01-31 | Biotechnology Research Partners, Ltd. | Apo AI/CIII genomic polymorphisms predictive of atherosclerosis |
| US4940835A (en) | 1985-10-29 | 1990-07-10 | Monsanto Company | Glyphosate-resistant plants |
| DK175922B1 (en) | 1985-08-07 | 2005-07-04 | Monsanto Technology Llc | Glyphosate-resistant plants |
| US4810648A (en) | 1986-01-08 | 1989-03-07 | Rhone Poulenc Agrochimie | Haloarylnitrile degrading gene, its use, and cells containing the gene |
| ATE57390T1 (en) | 1986-03-11 | 1990-10-15 | Plant Genetic Systems Nv | PLANT CELLS OBTAINED BY GENOLOGICAL TECHNOLOGY AND RESISTANT TO GLUTAMINE SYNTHETASE INHIBITORS. |
| US5188958A (en) | 1986-05-29 | 1993-02-23 | Calgene, Inc. | Transformation and foreign gene expression in brassica species |
| US5273894A (en) | 1986-08-23 | 1993-12-28 | Hoechst Aktiengesellschaft | Phosphinothricin-resistance gene, and its use |
| US5378824A (en) | 1986-08-26 | 1995-01-03 | E. I. Du Pont De Nemours And Company | Nucleic acid fragment encoding herbicide resistant plant acetolactate synthase |
| US5013659A (en) | 1987-07-27 | 1991-05-07 | E. I. Du Pont De Nemours And Company | Nucleic acid fragment encoding herbicide resistant plant acetolactate synthase |
| US5605011A (en) | 1986-08-26 | 1997-02-25 | E. I. Du Pont De Nemours And Company | Nucleic acid fragment encoding herbicide resistant plant acetolactate synthase |
| US5004863B2 (en) | 1986-12-03 | 2000-10-17 | Agracetus | Genetic engineering of cotton plants and lines |
| US5015580A (en) | 1987-07-29 | 1991-05-14 | Agracetus | Particle-mediated transformation of soybean plants and lines |
| US5264423A (en) | 1987-03-25 | 1993-11-23 | The United States Of America As Represented By The Department Of Health And Human Services | Inhibitors for replication of retroviruses and for the expression of oncogene products |
| US5276019A (en) | 1987-03-25 | 1994-01-04 | The United States Of America As Represented By The Department Of Health And Human Services | Inhibitors for replication of retroviruses and for the expression of oncogene products |
| US5145783A (en) | 1987-05-26 | 1992-09-08 | Monsanto Company | Glyphosate-tolerant 5-endolpyruvyl-3-phosphoshikimate synthase |
| US5312910A (en) | 1987-05-26 | 1994-05-17 | Monsanto Company | Glyphosate-tolerant 5-enolpyruvyl-3-phosphoshikimate synthase |
| US4971908A (en) | 1987-05-26 | 1990-11-20 | Monsanto Company | Glyphosate-tolerant 5-enolpyruvyl-3-phosphoshikimate synthase |
| US5188897A (en) | 1987-10-22 | 1993-02-23 | Temple University Of The Commonwealth System Of Higher Education | Encapsulated 2',5'-phosphorothioate oligoadenylates |
| US4924624A (en) | 1987-10-22 | 1990-05-15 | Temple University-Of The Commonwealth System Of Higher Education | 2,',5'-phosphorothioate oligoadenylates and plant antiviral uses thereof |
| US5922602A (en) | 1988-02-26 | 1999-07-13 | Biosource Technologies, Inc. | Cytoplasmic inhibition of gene expression |
| EP0406309A4 (en) | 1988-03-25 | 1992-08-19 | The University Of Virginia Alumni Patents Foundation | Oligonucleotide n-alkylphosphoramidates |
| US5278302A (en) | 1988-05-26 | 1994-01-11 | University Patents, Inc. | Polynucleotide phosphorodithioates |
| US5216141A (en) | 1988-06-06 | 1993-06-01 | Benner Steven A | Oligonucleotide analogs containing sulfur linkages |
| US5258300A (en) | 1988-06-09 | 1993-11-02 | Molecular Genetics Research And Development Limited Partnership | Method of inducing lysine overproduction in plants |
| US5416011A (en) | 1988-07-22 | 1995-05-16 | Monsanto Company | Method for soybean transformation and regeneration |
| US5272057A (en) | 1988-10-14 | 1993-12-21 | Georgetown University | Method of detecting a predisposition to cancer by the use of restriction fragment length polymorphism of the gene for human poly (ADP-ribose) polymerase |
| GB8825402D0 (en) | 1988-10-31 | 1988-11-30 | Cambridge Advanced Tech | Sulfonamide resistance genes |
| US5310667A (en) | 1989-07-17 | 1994-05-10 | Monsanto Company | Glyphosate-tolerant 5-enolpyruvyl-3-phosphoshikimate synthases |
| US5550318A (en) | 1990-04-17 | 1996-08-27 | Dekalb Genetics Corporation | Methods and compositions for the production of stably transformed, fertile monocot plants and cells thereof |
| US7705215B1 (en) | 1990-04-17 | 2010-04-27 | Dekalb Genetics Corporation | Methods and compositions for the production of stably transformed, fertile monocot plants and cells thereof |
| US5192659A (en) | 1989-08-25 | 1993-03-09 | Genetype Ag | Intron sequence analysis method for detection of adjacent and remote locus alleles as haplotypes |
| US5286634A (en) | 1989-09-28 | 1994-02-15 | Stadler Joan K | Synergistic method for host cell transformation |
| DD288618A5 (en) | 1989-10-23 | 1991-04-04 | Adl Fz Fuer Bodenfruchtbarkeit Muenchberg,De | METHOD FOR SELECTIVELY REDUCING THE PRODUCTION OF AN ISOENZYME OF GLUTAMINE SYNTHASE FROM MEDICAGO SATIVA L. |
| US5399676A (en) | 1989-10-23 | 1995-03-21 | Gilead Sciences | Oligonucleotides with inverted polarity |
| US5264564A (en) | 1989-10-24 | 1993-11-23 | Gilead Sciences | Oligonucleotide analogs with novel linkages |
| US5264562A (en) | 1989-10-24 | 1993-11-23 | Gilead Sciences, Inc. | Oligonucleotide analogs with novel linkages |
| US5177198A (en) | 1989-11-30 | 1993-01-05 | University Of N.C. At Chapel Hill | Process for preparing oligoribonucleoside and oligodeoxyribonucleoside boranophosphates |
| US5587361A (en) | 1991-10-15 | 1996-12-24 | Isis Pharmaceuticals, Inc. | Oligonucleotides having phosphorothioate linkages of high chiral purity |
| WO1991010725A1 (en) | 1990-01-22 | 1991-07-25 | Dekalb Plant Genetics | Fertile transgenic corn plants |
| US5484956A (en) | 1990-01-22 | 1996-01-16 | Dekalb Genetics Corporation | Fertile transgenic Zea mays plant comprising heterologous DNA encoding Bacillus thuringiensis endotoxin |
| US5321131A (en) | 1990-03-08 | 1994-06-14 | Hybridon, Inc. | Site-specific functionalization of oligodeoxynucleotides for non-radioactive labelling |
| US5837848A (en) | 1990-03-16 | 1998-11-17 | Zeneca Limited | Root-specific promoter |
| US5470967A (en) | 1990-04-10 | 1995-11-28 | The Dupont Merck Pharmaceutical Company | Oligonucleotide analogs with sulfamate linkages |
| US5264618A (en) | 1990-04-19 | 1993-11-23 | Vical, Inc. | Cationic lipids for intracellular delivery of biologically active molecules |
| WO1992000377A1 (en) | 1990-06-25 | 1992-01-09 | Monsanto Company | Glyphosate tolerant plants |
| US5602240A (en) | 1990-07-27 | 1997-02-11 | Ciba Geigy Ag. | Backbone modified oligonucleotide analogs |
| US5541307A (en) | 1990-07-27 | 1996-07-30 | Isis Pharmaceuticals, Inc. | Backbone modified oligonucleotide analogs and solid phase synthesis thereof |
| US5623070A (en) | 1990-07-27 | 1997-04-22 | Isis Pharmaceuticals, Inc. | Heteroatomic oligonucleoside linkages |
| US5677437A (en) | 1990-07-27 | 1997-10-14 | Isis Pharmaceuticals, Inc. | Heteroatomic oligonucleoside linkages |
| US5610289A (en) | 1990-07-27 | 1997-03-11 | Isis Pharmaceuticals, Inc. | Backbone modified oligonucleotide analogues |
| US5489677A (en) | 1990-07-27 | 1996-02-06 | Isis Pharmaceuticals, Inc. | Oligonucleoside linkages containing adjacent oxygen and nitrogen atoms |
| US5608046A (en) | 1990-07-27 | 1997-03-04 | Isis Pharmaceuticals, Inc. | Conjugated 4'-desmethyl nucleoside analog compounds |
| US5618704A (en) | 1990-07-27 | 1997-04-08 | Isis Pharmacueticals, Inc. | Backbone-modified oligonucleotide analogs and preparation thereof through radical coupling |
| DK0541722T3 (en) | 1990-08-03 | 1996-04-22 | Sterling Winthrop Inc | Compounds and Methods for Inhibiting Gene Expression |
| US5177196A (en) | 1990-08-16 | 1993-01-05 | Microprobe Corporation | Oligo (α-arabinofuranosyl nucleotides) and α-arabinofuranosyl precursors thereof |
| US6403865B1 (en) | 1990-08-24 | 2002-06-11 | Syngenta Investment Corp. | Method of producing transgenic maize using direct transformation of commercially important genotypes |
| US5633435A (en) | 1990-08-31 | 1997-05-27 | Monsanto Company | Glyphosate-tolerant 5-enolpyruvylshikimate-3-phosphate synthases |
| US5214134A (en) | 1990-09-12 | 1993-05-25 | Sterling Winthrop Inc. | Process of linking nucleosides with a siloxane bridge |
| US5561225A (en) | 1990-09-19 | 1996-10-01 | Southern Research Institute | Polynucleotide analogs containing sulfonate and sulfonamide internucleoside linkages |
| EP0549686A4 (en) | 1990-09-20 | 1995-01-18 | Gilead Sciences Inc | Modified internucleoside linkages |
| US5866775A (en) | 1990-09-28 | 1999-02-02 | Monsanto Company | Glyphosate-tolerant 5-enolpyruvyl-3-phosphoshikimate synthases |
| US5767366A (en) | 1991-02-19 | 1998-06-16 | Louisiana State University Board Of Supervisors, A Governing Body Of Louisiana State University Agricultural And Mechanical College | Mutant acetolactate synthase gene from Ararbidopsis thaliana for conferring imidazolinone resistance to crop plants |
| FR2673642B1 (en) | 1991-03-05 | 1994-08-12 | Rhone Poulenc Agrochimie | CHIMERIC GENE COMPRISING A PROMOTER CAPABLE OF GIVING INCREASED TOLERANCE TO GLYPHOSATE. |
| FR2673643B1 (en) | 1991-03-05 | 1993-05-21 | Rhone Poulenc Agrochimie | TRANSIT PEPTIDE FOR THE INSERTION OF A FOREIGN GENE INTO A PLANT GENE AND PLANTS TRANSFORMED USING THIS PEPTIDE. |
| USRE36449E (en) | 1991-03-05 | 1999-12-14 | Rhone-Poulenc Agro | Chimeric gene for the transformation of plants |
| DK0539563T3 (en) | 1991-05-15 | 2001-11-12 | Monsanto Technology Llc | Process for Creating a Transformed Rice Plant |
| US5731180A (en) | 1991-07-31 | 1998-03-24 | American Cyanamid Company | Imidazolinone resistant AHAS mutants |
| US5571799A (en) | 1991-08-12 | 1996-11-05 | Basco, Ltd. | (2'-5') oligoadenylate analogues useful as inhibitors of host-v5.-graft response |
| JPH0557182A (en) | 1991-09-03 | 1993-03-09 | Central Glass Co Ltd | Carbon dioxide absorbent |
| US5518908A (en) | 1991-09-23 | 1996-05-21 | Monsanto Company | Method of controlling insects |
| FR2684354B1 (en) | 1991-11-29 | 1995-01-20 | Oreal | DISPENSING DEVICE FOR A CONTAINER CONTAINING A LIQUID PASTE PRODUCT. |
| US5593874A (en) | 1992-03-19 | 1997-01-14 | Monsanto Company | Enhanced expression in plants |
| US5633360A (en) | 1992-04-14 | 1997-05-27 | Gilead Sciences, Inc. | Oligonucleotide analogs capable of passive cell membrane permeation |
| DK0604662T3 (en) | 1992-07-07 | 2008-10-20 | Japan Tobacco Inc | Method of Transforming Monocotyledon |
| WO1994001382A1 (en) | 1992-07-10 | 1994-01-20 | Nippon Kayaku Kabushiki Kaisha | Gas generating agent and gas generator for automotive airbag |
| US5281521A (en) | 1992-07-20 | 1994-01-25 | The Trustees Of The University Of Pennsylvania | Modified avidin-biotin technique |
| US5339107A (en) | 1992-08-19 | 1994-08-16 | Hewlett-Packard Company | Color optical scanner with rotating color filter assembly |
| DE69323875T2 (en) | 1992-12-14 | 1999-09-30 | Sony Corp., Tokio/Tokyo | FIXING COMPOSITION FOR WATER-BASED INK, WITH THIS COVERING FILM FOR THERMALLY TRANSMITTING IMAGES AND DEDICATED RECORDING MEDIUM |
| US5721138A (en) | 1992-12-15 | 1998-02-24 | Sandford University | Apolipoprotein(A) promoter and regulatory sequence constructs and methods of use |
| US5476925A (en) | 1993-02-01 | 1995-12-19 | Northwestern University | Oligodeoxyribonucleotides including 3'-aminonucleoside-phosphoramidate linkages and terminal 3'-amino groups |
| US6414222B1 (en) | 1993-02-05 | 2002-07-02 | Regents Of The University Of Minnesota | Gene combinations for herbicide tolerance in corn |
| GB9304618D0 (en) | 1993-03-06 | 1993-04-21 | Ciba Geigy Ag | Chemical compounds |
| CA2159629A1 (en) | 1993-03-31 | 1994-10-13 | Sanofi | Oligonucleotides with amide linkages replacing phosphodiester linkages |
| DE4314274C2 (en) | 1993-04-30 | 1995-11-30 | Foerster Inst Dr Friedrich | Method and device for automatic diameter adjustment of sensors of measuring and / or testing devices provided on a rotatingly driven test head |
| US5393175A (en) | 1993-06-18 | 1995-02-28 | Courville; Leo | Diamond core drill |
| US6118047A (en) | 1993-08-25 | 2000-09-12 | Dekalb Genetic Corporation | Anthranilate synthase gene and method of use thereof for conferring tryptophan overproduction |
| DE69409743T2 (en) | 1993-09-14 | 1998-10-22 | Lucas Ind Plc | Fuel supply device |
| US6969782B2 (en) | 1993-10-06 | 2005-11-29 | Ajinomoto Co., Inc. | Method of producing transgenic plants having improved amino acid composition |
| GB9403941D0 (en) | 1994-03-01 | 1994-04-20 | Sandoz Ltd | Improvements in or relating to organic compounds |
| US5558071A (en) | 1994-03-07 | 1996-09-24 | Combustion Electromagnetics, Inc. | Ignition system power converter and controller |
| US5625050A (en) | 1994-03-31 | 1997-04-29 | Amgen Inc. | Modified oligonucleotides and intermediates useful in nucleic acid therapeutics |
| US5767373A (en) | 1994-06-16 | 1998-06-16 | Novartis Finance Corporation | Manipulation of protoporphyrinogen oxidase enzyme activity in eukaryotic organisms |
| US5939602A (en) | 1995-06-06 | 1999-08-17 | Novartis Finance Corporation | DNA molecules encoding plant protoporphyrinogen oxidase and inhibitor-resistant mutants thereof |
| US5392910A (en) | 1994-07-21 | 1995-02-28 | Transidyne General Corporation | Package for a device having a sharp cutting edge |
| ATE189356T1 (en) | 1994-08-19 | 2000-02-15 | Monsanto Co | SUPPLY OF EXOGENEOUS CHEMICAL SUBSTANCES TO PLANT TISSUE |
| DE4430307A1 (en) | 1994-08-26 | 1996-02-29 | Bayer Ag | Method and device for the simultaneous dispersion and atomization of at least two liquids |
| US5631152A (en) | 1994-10-26 | 1997-05-20 | Monsanto Company | Rapid and efficient regeneration of transgenic plants |
| US5550398A (en) | 1994-10-31 | 1996-08-27 | Texas Instruments Incorporated | Hermetic packaging with optical |
| US5830430A (en) | 1995-02-21 | 1998-11-03 | Imarx Pharmaceutical Corp. | Cationic lipids and the use thereof |
| HU226259B1 (en) | 1995-04-20 | 2008-07-28 | American Cyanamid Co | Structure-based designed herbicide resistant products |
| US5853973A (en) | 1995-04-20 | 1998-12-29 | American Cyanamid Company | Structure based designed herbicide resistant products |
| FR2734842B1 (en) | 1995-06-02 | 1998-02-27 | Rhone Poulenc Agrochimie | DNA SEQUENCE OF A HYDROXY-PHENYL PYRUVATE DIOXYGENASE GENE AND OBTAINING PLANTS CONTAINING A HYDROXY-PHENYL PYRUVATE DIOXYGENASE GENE, TOLERANT TO CERTAIN HERBICIDES |
| US6084155A (en) | 1995-06-06 | 2000-07-04 | Novartis Ag | Herbicide-tolerant protoporphyrinogen oxidase ("protox") genes |
| JP4335310B2 (en) | 1995-06-07 | 2009-09-30 | ザ ユニバーシティ オブ ブリティッシュ コロンビア | Lipid-nucleic acid particles prepared through hydrophobic lipid-nucleic acid complex intermediates and use for gene transfer |
| ATE298368T1 (en) | 1995-12-27 | 2005-07-15 | Japan Tobacco Inc | COLD-INDUSABLE PROMOTER SEQUENCES |
| US5739180A (en) | 1996-05-02 | 1998-04-14 | Lucent Technologies Inc. | Flat panel displays and methods and substrates therefor |
| EP0856060A2 (en) | 1996-06-21 | 1998-08-05 | Monsanto Company | METHODS FOR THE PRODUCTION OF STABLY-TRANSFORMED, FERTILE WHEAT EMPLOYING $i(AGROBACTERIUM)-MEDIATED TRANSFORMATION AND COMPOSITIONS DERIVED THEREFROM |
| WO1997049816A1 (en) | 1996-06-27 | 1997-12-31 | E.I. Du Pont De Nemours And Company | Plant gene for p-hydroxyphenylpyruvate dioxygenase |
| FR2751347B1 (en) | 1996-07-16 | 2001-12-07 | Rhone Poulenc Agrochimie | CHIMERIC GENE WITH MULTIPLE HERBICIDE TOLERANCE GENES, PLANT CELL AND PLANT TOLERANT WITH MULTIPLE HERBICIDES |
| NZ334187A (en) | 1996-08-16 | 2000-09-29 | Monsanto Co | Sequential application method for treating plants with exogenous chemicals and an accession agent |
| US6140078A (en) | 1996-09-05 | 2000-10-31 | Unilever Patent Holdings | Salt-inducible promoter derivable from a lactic acid bacterium, and its use in a lactic acid bacterium for production of a desired protein |
| JPH10117776A (en) | 1996-10-22 | 1998-05-12 | Japan Tobacco Inc | Transformation of indica rice |
| DE19652284A1 (en) | 1996-12-16 | 1998-06-18 | Hoechst Schering Agrevo Gmbh | Novel genes encoding amino acid deacetylases with specificity for N-acetyl-L-phosphinothricin, their isolation and use |
| WO1998031822A1 (en) | 1997-01-20 | 1998-07-23 | Plant Genetic Systems, N.V. | Pathogen-induced plant promoters |
| US5981840A (en) | 1997-01-24 | 1999-11-09 | Pioneer Hi-Bred International, Inc. | Methods for agrobacterium-mediated transformation |
| US6040497A (en) | 1997-04-03 | 2000-03-21 | Dekalb Genetics Corporation | Glyphosate resistant maize lines |
| US7105724B2 (en) | 1997-04-04 | 2006-09-12 | Board Of Regents Of University Of Nebraska | Methods and materials for making and using transgenic dicamba-degrading organisms |
| US7022896B1 (en) | 1997-04-04 | 2006-04-04 | Board Of Regents Of University Of Nebraska | Methods and materials for making and using transgenic dicamba-degrading organisms |
| FR2770854B1 (en) | 1997-11-07 | 2001-11-30 | Rhone Poulenc Agrochimie | DNA SEQUENCE OF A GENE OF HYDROXY-PHENYL PYRUVATE DIOXYGENASE AND PRODUCTION OF PLANTS CONTAINING SUCH A GENE, HERBICIDE TOLERANT |
| US6245968B1 (en) | 1997-11-07 | 2001-06-12 | Aventis Cropscience S.A. | Mutated hydroxyphenylpyruvate dioxygenase, DNA sequence and isolation of plants which contain such a gene and which are tolerant to herbicides |
| US6069115A (en) | 1997-11-12 | 2000-05-30 | Rhone-Poulenc Agrochimie | Method of controlling weeds in transgenic crops |
| IL122270A0 (en) | 1997-11-20 | 1998-04-05 | Yeda Res & Dev | DNA molecules conferring to plants resistance to a herbicide and plants transformed thereby |
| AU761248B2 (en) | 1997-11-26 | 2003-05-29 | Kamterter Ii Llc | Solid matrix conditioning of seeds |
| US6506559B1 (en) | 1997-12-23 | 2003-01-14 | Carnegie Institute Of Washington | Genetic inhibition by double-stranded RNA |
| US6421956B1 (en) | 1997-12-29 | 2002-07-23 | Van Dok Ijsbrand | Method and apparatus for priming seed |
| US20030027173A1 (en) | 1998-01-16 | 2003-02-06 | Della-Cioppa Guy | Method of determining the function of nucleotide sequences and the proteins they encode by transfecting the same into a host |
| US6303848B1 (en) | 1998-01-16 | 2001-10-16 | Large Scale Biology Corporation | Method for conferring herbicide, pest, or disease resistance in plant hosts |
| US5914451A (en) | 1998-04-06 | 1999-06-22 | Monsanto Company | Efficiency soybean transformation protocol |
| US6906245B1 (en) | 1998-04-30 | 2005-06-14 | Sumitomo Chemical Company, Limited | Method for producing transgenic plants resistant to weed control compounds which disrupt the porphyrin pathways of plants |
| US6307123B1 (en) | 1998-05-18 | 2001-10-23 | Dekalb Genetics Corporation | Methods and compositions for transgene identification |
| AR020078A1 (en) | 1998-05-26 | 2002-04-10 | Syngenta Participations Ag | METHOD FOR CHANGING THE EXPRESSION OF AN OBJECTIVE GENE IN A PLANT CELL |
| AU755564B2 (en) | 1998-06-20 | 2002-12-12 | Washington University | Membrane-permeant peptide complexes for medical imaging, diagnostics, and pharmaceutical therapy |
| AU4704499A (en) | 1998-06-22 | 2000-01-10 | Margaret A. Egli | Dna encoding oat acetyl coa carboxylase |
| JP2000083680A (en) | 1998-07-16 | 2000-03-28 | Nippon Paper Industries Co Ltd | Introduction of gene into plant utilizing adventitious bud redifferentiation gene put under control due to photoinduction type promoter as selection marker gene and vector for transduction of gene into plant used therefor |
| US6121513A (en) | 1998-07-20 | 2000-09-19 | Mendel Biotechnology, Inc. | Sulfonamide resistance in plants |
| US6717034B2 (en) | 2001-03-30 | 2004-04-06 | Mendel Biotechnology, Inc. | Method for modifying plant biomass |
| AU2037700A (en) | 1998-12-03 | 2000-06-19 | E.I. Du Pont De Nemours And Company | Plant vitamin e biosynthetic enzymes |
| US6642435B1 (en) | 1998-12-18 | 2003-11-04 | E. I. Du Pont De Nemours And Company | Plant folate biosynthetic genes |
| CA2359868A1 (en) | 1999-01-14 | 2000-07-20 | Monsanto Company | Soybean transformation method |
| IL128207A (en) | 1999-01-24 | 2005-03-20 | Bio Oz Advanced Biotechnologic | Multi-barrel plant inoculation gun |
| WO2000044914A1 (en) | 1999-01-28 | 2000-08-03 | Medical College Of Georgia Research Institute, Inc. | Composition and method for in vivo and in vitro attenuation of gene expression using double stranded rna |
| US6271359B1 (en) | 1999-04-14 | 2001-08-07 | Musc Foundation For Research Development | Tissue-specific and pathogen-specific toxic agents and ribozymes |
| US6992237B1 (en) | 1999-04-16 | 2006-01-31 | Pioneer Hi-Bred International Inc. | Regulated expression of genes in plant seeds |
| US6194636B1 (en) | 1999-05-14 | 2001-02-27 | Dekalb Genetics Corp. | Maize RS324 promoter and methods for use thereof |
| US6207879B1 (en) | 1999-05-14 | 2001-03-27 | Dekalb Genetics Corporation | Maize RS81 promoter and methods for use thereof |
| US6232526B1 (en) | 1999-05-14 | 2001-05-15 | Dekalb Genetics Corp. | Maize A3 promoter and methods for use thereof |
| US6713077B1 (en) | 1999-07-28 | 2004-03-30 | Monsanto Technology, Llc | Control of shoot/foliar feeding pests with pesticide seed treatments |
| WO2001012825A1 (en) | 1999-08-13 | 2001-02-22 | Syngenta Participations Ag | Herbicide-tolerant protoporphyrinogen oxidase |
| US6326193B1 (en) | 1999-11-05 | 2001-12-04 | Cambria Biosciences, Llc | Insect control agent |
| US20010042257A1 (en) | 1999-12-07 | 2001-11-15 | Dannette Connor-Ward | Sugarbeet regeneration and transformation |
| DE10000600A1 (en) | 2000-01-10 | 2001-07-12 | Bayer Ag | New N-substituted oxazolyl-uracil and thiazolyl-uracil derivatives useful as herbicides, especially for weed control in crops |
| IL134830A0 (en) | 2000-03-01 | 2001-05-20 | Chay 13 Medical Res Group N V | Peptides and immunostimulatory and anti-bacterial pharmaceutical compositions containing them |
| JP2001253874A (en) | 2000-03-10 | 2001-09-18 | Ishihara Sangyo Kaisha Ltd | Pyrimidine compound, their manufacturing method and herbicide including them |
| US6444615B1 (en) | 2000-04-18 | 2002-09-03 | Dow Agrosciences Llc | Herbicidal imidazolidinetrione and thioxo-imidazolidinediones |
| US6768044B1 (en) | 2000-05-10 | 2004-07-27 | Bayer Cropscience Sa | Chimeric hydroxyl-phenyl pyruvate dioxygenase, DNA sequence and method for obtaining plants containing such a gene, with herbicide tolerance |
| ES2608927T3 (en) | 2000-05-10 | 2017-04-17 | Board Of Supervisors Of Louisiana State University And Agricultural And Mechanical College | Resistance to herbicides that inhibit acetohydroxy acid synthase |
| JP2002080454A (en) | 2000-06-26 | 2002-03-19 | Nippon Nohyaku Co Ltd | Pyridine-2,3-dicarboxylic acid diamide derivatives and herbicides |
| US7109393B2 (en) | 2000-08-15 | 2006-09-19 | Mendel Biotechnology, Inc. | Methods of gene silencing using inverted repeat sequences |
| BR0003908A (en) | 2000-08-18 | 2002-06-18 | Suzano Papel & Celulose | Method for genetic transformation of eucalyptus spp |
| US6453609B1 (en) | 2000-09-06 | 2002-09-24 | University Of Iowa Research Foundation | Method for uptake of a substance into a seed |
| US7462481B2 (en) | 2000-10-30 | 2008-12-09 | Verdia, Inc. | Glyphosate N-acetyltransferase (GAT) genes |
| FR2815969B1 (en) | 2000-10-30 | 2004-12-10 | Aventis Cropscience Sa | TOLERANT PLANTS WITH HERBICIDES BY METABOLIC BYPASS |
| JP2002138075A (en) | 2000-10-30 | 2002-05-14 | Nippon Soda Co Ltd | 3-aminoacrylic acid derivative and herbicide |
| EP1399566A2 (en) | 2000-10-30 | 2004-03-24 | Maxygen, Inc. | Novel glyphosate n-acetyltransferase (gat) genes |
| CN1162542C (en) | 2000-11-03 | 2004-08-18 | 中国科学院微生物研究所 | A plant lectin gene |
| JP2002145707A (en) | 2000-11-10 | 2002-05-22 | Sankyo Co Ltd | Herbicide comprising n-substituted dihydropyrrole derivative |
| NZ526737A (en) | 2000-11-29 | 2005-12-23 | Kumiai Chemical Industry Co | Gene encoding acetolactic acid synthase gene |
| ES2400699T3 (en) | 2000-12-07 | 2013-04-11 | Syngenta Limited | HYDROXI-PHENYL PIRUVATO DIOXIGENASAS (HPPD) derived from plants and resistant to tricetonic herbicides, and transgenic plants containing DIOXYGENASES |
| EP2233606B1 (en) | 2000-12-12 | 2013-02-13 | Konica Corporation | Plasma discharge apparatus |
| US7151204B2 (en) | 2001-01-09 | 2006-12-19 | Monsanto Technology Llc | Maize chloroplast aldolase promoter compositions and methods for use thereof |
| JP2002220389A (en) | 2001-01-26 | 2002-08-09 | Hokko Chem Ind Co Ltd | Pyridylbenzoxazine derivatives, herbicides and intermediates |
| EP1362059A2 (en) | 2001-02-16 | 2003-11-19 | Metanomics GmbH & Co. KGaA | Method for identifying herbicidally active substances |
| DE60239667D1 (en) | 2001-02-20 | 2011-05-19 | Sagami Chemical Res Ct Ayase | PYRAZOL DERIVATIVES, THEIR INTERMEDIATES, METHOD FOR THE PRODUCTION THEREOF AND HERBICIDES THEREOF CONTAINING THESE COMPOUNDS AS AN ACTIVE SUBSTANCE |
| EP1238586A1 (en) | 2001-03-09 | 2002-09-11 | Basf Aktiengesellschaft | Herbicidal 2-alkynyl-pyri(mi)dines |
| DE10116399A1 (en) | 2001-04-03 | 2002-10-10 | Bayer Ag | Substituted azolazine (thi) one |
| US6743905B2 (en) | 2001-04-16 | 2004-06-01 | Applera Corporation | Mobility-modified nucleobase polymers and methods of using same |
| WO2002085308A2 (en) | 2001-04-24 | 2002-10-31 | Epigenesis Pharmaceuticals, Inc. | Antisense and anti-inflammatory based compositions to treat respiratory disorders |
| JP2003064059A (en) | 2001-06-14 | 2003-03-05 | Nippon Soda Co Ltd | Pyrimidine compound, method for producing the same and herbicide |
| DE10130397A1 (en) | 2001-06-23 | 2003-01-09 | Bayer Cropscience Gmbh | Herbicidally substituted pyridines, processes for their preparation and their use as herbicides and plant growth regulators |
| ES2192945B1 (en) | 2001-07-06 | 2005-03-01 | Consejo Superior De Investigaciones Cientificas | A METHOD TO INTERFER WITH VIRUS INFECTION IN PLANTS. |
| ITMI20011497A1 (en) | 2001-07-13 | 2003-01-13 | Isagro Ricerca Srl | NEW ANILINE DERIVATIVES SUBSTITUTED FOR HERBICIDE ACTIVITIES |
| WO2003012052A2 (en) | 2001-07-30 | 2003-02-13 | The Government Of The United States Of America As Represented By The Secretary Of The Department Of Health And Human Services | Specific inhibition of gene expression by small double stranded rnas |
| US7897845B2 (en) | 2001-08-09 | 2011-03-01 | University Of Saskatchewan | Wheat plants having increased resistance to imidazolinone herbicides |
| AR035087A1 (en) | 2001-08-09 | 2004-04-14 | Syngenta Participations Ag | PIRIDIL-ALQUINOS AND PIRIDIL-N-OXIDO-ACTIVE HERBICIDE ALKINES, PROCEDURE FOR PREPARATION, HERBICIDE COMPOSITION AND TO INHIBIT THE GROWTH OF PLANTS, METHOD FOR CONTROLLING GROWTH OF INDESEABLE PLANTS, AND METHOD OF CREAM INHIBITION |
| US20040198758A1 (en) | 2001-08-17 | 2004-10-07 | Rapado Liliana Parra | N-heterocyclyl substituted thienyloxy-pyrimidines used as herbicides |
| MXPA04001685A (en) | 2001-08-28 | 2004-05-31 | Syngenta Participations Ag | Sulfonylamino derivatives useful as herbicides. |
| AU2002332795A1 (en) | 2001-08-31 | 2003-03-18 | The Dow Chemical Company | Nucleic acid compositions conferring insect control in plants |
| MXPA04001981A (en) | 2001-09-06 | 2004-06-07 | Syngenta Participations Ag | Herbicidal n-alkylsulfonamino derivatives. |
| CA2459359A1 (en) | 2001-09-07 | 2003-03-20 | Basf Aktiengesellschaft | Pyrazolyl-substituted thienyloxypyridines |
| US20040198609A1 (en) | 2001-09-07 | 2004-10-07 | Michael Hoffmann | 4-alkyl-substituted thienyloxy-pyridines |
| JP2003096059A (en) | 2001-09-21 | 2003-04-03 | Otsuka Chem Co Ltd | Thiazole compound and herbicidal composition containing the same |
| WO2003029243A2 (en) | 2001-09-24 | 2003-04-10 | Basf Aktiengesellschaft | 2-aryloxy-6-pyrazolyl-pyridines |
| US7550578B2 (en) | 2001-09-26 | 2009-06-23 | Syngenta Participations Ag | Rice promoters for regulation of plant expression |
| CA2465342C (en) | 2001-11-01 | 2009-09-08 | Dongbu Hannong Chemical Co., Ltd. | Optically active herbicidal (r)-phenoxypropionic acid-n-methyl-n-2-fluorophenyl amides |
| DE10154075A1 (en) | 2001-11-02 | 2003-05-15 | Bayer Cropscience Ag | Substituted pyrimidines |
| US20030150017A1 (en) | 2001-11-07 | 2003-08-07 | Mesa Jose Ramon Botella | Method for facilitating pathogen resistance |
| AU2002367564A1 (en) | 2001-11-08 | 2003-09-29 | Paradigm Genetics, Inc. | Methods for the identification of herbicides and the modulation of plant growth |
| US6766613B2 (en) | 2001-11-16 | 2004-07-27 | University Of Florida Research Foundation, Inc. | Materials and methods for controlling pests |
| JP2005510548A (en) | 2001-11-29 | 2005-04-21 | ビーエーエスエフ アクチェンゲゼルシャフト | 2, ω-Diaminocarboxylic acid compound |
| DE10256354A1 (en) | 2001-12-06 | 2003-06-18 | Syngenta Participations Ag | New 5-thiol-4-pyridylcarbonyl-cyclohexene-dione derivatives, useful as herbicides and plant growth inhibitors, with improved leaching properties and selectivity |
| DE10256367A1 (en) | 2001-12-06 | 2003-06-26 | Syngenta Participations Ag | New 4-(pyridine-3-carbonyl)-cyclohex-4-ene-1,3-dione derivatives, useful as herbicides and plant growth inhibitors, especially for selective weed control in crops such as cereals, cotton or soya |
| DE10256353A1 (en) | 2001-12-06 | 2003-06-18 | Syngenta Participations Ag | New 4-pyridylcarbonyl-cyclohexene-dione derivatives, useful as both total and selective herbicides and effective against mono- and di-cotyledonous weeds, for use on e.g. cereals, cotton, soya, sugar beet/cane and rape |
| AR037754A1 (en) | 2001-12-11 | 2004-12-01 | Syngenta Participations Ag | HERBICIDES |
| DE10161765A1 (en) | 2001-12-15 | 2003-07-03 | Bayer Cropscience Gmbh | Substituted phenyl derivatives |
| CN1606543A (en) | 2001-12-19 | 2005-04-13 | 巴斯福股份公司 | Alpha-cyanoacrylates |
| EP1458674B1 (en) | 2001-12-19 | 2010-02-24 | Basf Se | Beta-amino-alpha-cyanoacrylates and their use as herbicides |
| EP2128248B2 (en) | 2002-02-01 | 2017-01-11 | Life Technologies Corporation | Oligonucleotide compositions with enhanced efficiency |
| DE10204951A1 (en) | 2002-02-06 | 2003-08-14 | Basf Ag | Phenylalanine derivatives as herbicides |
| AU2003218758A1 (en) | 2002-03-14 | 2003-09-22 | Syngenta Participations Ag | Derivatives of 1-phenyl-3-phenylpyrazole as herbicides |
| US7576262B2 (en) | 2002-03-14 | 2009-08-18 | Commonwealth Scientific And Industrial Research Organization | Modified gene-silencing RNA and uses thereof |
| JP4504689B2 (en) | 2002-03-20 | 2010-07-14 | ビーエーエスエフ ソシエタス・ヨーロピア | Serine hydroxymethyltransferase as a herbicide target |
| US7166771B2 (en) | 2002-06-21 | 2007-01-23 | Monsanto Technology Llc | Coordinated decrease and increase of gene expression of more than one gene using transgenic constructs |
| DE60328092D1 (en) | 2002-03-29 | 2009-08-06 | Kumiai Chemical Industry Co | ACETOLACTATE SYNTHASE CODING GENES |
| AR039208A1 (en) | 2002-04-03 | 2005-02-09 | Syngenta Participations Ag | PHENYL AND PIRIDYL ALKIN COMPOUNDS, HERBICIDE COMPOSITION CONTAINING THEM, PROCEDURE FOR PREPARATION OF THOSE AND PROCEDURE TO COMBAT THE GROWTH OF INDENATED PLANTS |
| HRP20041120A2 (en) | 2002-04-25 | 2005-02-28 | Basf Aktiengesellschaft | 3-heteroaryl substituted 5-methyloxymethyl-isoxazolines used as herbicides |
| WO2003091217A1 (en) | 2002-04-26 | 2003-11-06 | Ishihara Sangyo Kaisha, Ltd. | Pyridine compounds or salts thereof and herbicides containing the same |
| US6645914B1 (en) | 2002-05-01 | 2003-11-11 | Ndsu-Research Foundation | Surfactant-ammonium sulfate adjuvant composition for enhancing efficacy of herbicides |
| DE10219435A1 (en) | 2002-05-02 | 2003-11-13 | Bayer Cropscience Ag | Substituted pyrazolo-pyrimidin-4-ones |
| JP2004051628A (en) | 2002-05-28 | 2004-02-19 | Ishihara Sangyo Kaisha Ltd | Pyridine-based compound or its salt, method for producing the same, and herbicide containing the same |
| AR040413A1 (en) | 2002-05-31 | 2005-04-06 | Syngenta Participations Ag | HETEROCICLILALQUINOS ACTIVE AS HERBICIDES |
| AR041182A1 (en) | 2002-07-01 | 2005-05-04 | Syngenta Participations Ag | DERIVATIVES OF PHENOXIPROPENYLPHENYL AND ITS USE AS HERBICIDES |
| AR041181A1 (en) | 2002-07-01 | 2005-05-04 | Syngenta Participations Ag | HERBICIDE TENYLALKINS AND PROCEDURE FOR PREPARING SUCH COMPOUNDS |
| WO2004005485A2 (en) | 2002-07-10 | 2004-01-15 | Kansas State University Research Foundation | Compositions and methods for controlling parasitic nematodes |
| US20110098180A1 (en) | 2002-07-17 | 2011-04-28 | United States Department Of Agriculture | Herbicide-Resistant Plants, And Polynucleotides And Methods For Providing Same |
| ES2420929T3 (en) | 2002-07-18 | 2013-08-27 | Monsanto Technology Llc | Procedures for using artificial polynucleotides and their compositions to reduce transgene silencing |
| CA2493030C (en) | 2002-07-24 | 2011-04-19 | Basf Aktiengesellschaft | Synergistically acting herbicidal mixtures |
| DE10234876A1 (en) | 2002-07-25 | 2004-02-05 | Bayer Cropscience Gmbh | 4-trifluoromethylpyrazolyl substituted pyridines and pyrimidines |
| DE10234875A1 (en) | 2002-07-25 | 2004-02-05 | Bayer Cropscience Gmbh | 4-trifluoromethylpyrazolyl substituted pyridines and pyrimidines |
| WO2004011429A1 (en) | 2002-07-26 | 2004-02-05 | Nihon Nohyaku Co., Ltd. | Novel haloalkylsulfonanilide derivatives, herbicides and usage thereof |
| US20040029275A1 (en) | 2002-08-10 | 2004-02-12 | David Brown | Methods and compositions for reducing target gene expression using cocktails of siRNAs or constructs expressing siRNAs |
| FR2844415B1 (en) | 2002-09-05 | 2005-02-11 | At & T Corp | FIREWALL SYSTEM FOR INTERCONNECTING TWO IP NETWORKS MANAGED BY TWO DIFFERENT ADMINISTRATIVE ENTITIES |
| US20040053289A1 (en) | 2002-09-09 | 2004-03-18 | The Regents Of The University Of California | Short interfering nucleic acid hybrids and methods thereof |
| JP2004107228A (en) | 2002-09-17 | 2004-04-08 | Nippon Nohyaku Co Ltd | Bicyclic pyrimidinone derivative and herbicide containing the same as active ingredient |
| TW200410975A (en) | 2002-09-26 | 2004-07-01 | Nihon Nohyaku Co Ltd | New pesticide and method for using it, new substituted thienopyrimidine derivative, its intermediate, and method for producing it |
| AU2003304398A1 (en) | 2002-10-16 | 2005-02-25 | Board Of Regents, The University Of Texas System | Methods and compositions for increasing the efficacy of biologically-active ingredients |
| AU2003274025A1 (en) | 2002-10-17 | 2004-05-04 | Syngenta Participations Ag | Pyridine derivatives useful as herbicides |
| WO2004035563A1 (en) | 2002-10-17 | 2004-04-29 | Syngenta Participations Ag | 3-heterocyclylpyridine derivatives useful as herbicides |
| JP4398866B2 (en) | 2002-10-18 | 2010-01-13 | ビーエーエスエフ ソシエタス・ヨーロピア | 1-phenylpyrrolidin-2-one-3-carboxamide |
| WO2004035545A2 (en) | 2002-10-18 | 2004-04-29 | E.I. Du Pont De Nemours And Company | Azolecarboxamide herbicides |
| EP2305813A3 (en) | 2002-11-14 | 2012-03-28 | Dharmacon, Inc. | Fuctional and hyperfunctional sirna |
| GB0228326D0 (en) | 2002-12-04 | 2003-01-08 | Syngenta Ltd | Method of controlling unwanted vegitation |
| AU2003299832B2 (en) | 2002-12-18 | 2009-06-18 | Athenix Corporation | Genes conferring herbicide resistance |
| US20040123347A1 (en) | 2002-12-20 | 2004-06-24 | Hinchey Brendan S. | Water-deficit-inducible plant promoters |
| US20040133944A1 (en) | 2003-01-08 | 2004-07-08 | Delta And Pine Land Company | Seed oil suppression to enhance yield of commercially important macromolecules |
| WO2004062351A2 (en) | 2003-01-09 | 2004-07-29 | Virginia Tech Intellectual Properties, Inc. | Gene encoding resistance to acetolactate synthase-inhibiting herbicides |
| CN1521165A (en) | 2003-01-30 | 2004-08-18 | 拜尔农作物科学股份公司 | Thiophene derivative |
| DE10303883A1 (en) | 2003-01-31 | 2004-08-12 | Bayer Cropscience Ag | Substituted pyrimidines |
| AU2004213818B2 (en) | 2003-02-18 | 2008-06-05 | Monsanto Technology Llc | Glyphosate resistant class I 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) |
| CN1526704A (en) | 2003-03-06 | 2004-09-08 | 拜尔农作物科学股份公司 | Substituted triazolformamide compound |
| WO2005003362A2 (en) | 2003-03-10 | 2005-01-13 | Athenix Corporation | Methods to confer herbicide resistance |
| WO2004089061A2 (en) | 2003-04-11 | 2004-10-21 | Bio-Oz Biotechnologies Ltd. | Liquid discharge apparatus particularly useful as a portable inoculation gun for anti-virus inoculation of plants |
| US7682829B2 (en) | 2003-05-30 | 2010-03-23 | Monsanto Technology Llc | Methods for corn transformation |
| US7578598B2 (en) | 2006-11-13 | 2009-08-25 | Black & Decker Inc. | Battery charging work light |
| PL1633767T3 (en) | 2003-06-02 | 2019-07-31 | University Of Massachusetts | Methods and compositions for controlling efficacy of rna silencing |
| JP2005008583A (en) | 2003-06-20 | 2005-01-13 | Nippon Soda Co Ltd | Guanidine compound, herbicide and plant growth regulator |
| JP2005015390A (en) | 2003-06-26 | 2005-01-20 | Bayer Cropscience Ag | Azolidine derivative and herbicide |
| WO2005017108A2 (en) | 2003-06-30 | 2005-02-24 | United Soybean Board | Soybean selection system based on aec-resistance |
| CN1208325C (en) | 2003-07-04 | 2005-06-29 | 中国科学院上海有机化学研究所 | 2-Pyrimidinyloxy-N-ureidophenylbenzylamine compound, preparation method and use thereof |
| WO2005007627A1 (en) | 2003-07-18 | 2005-01-27 | Nihon Nohyaku Co., Ltd. | Phenylpyridine derivative, intermediate therefor, and herbicide containing the same as active ingredient |
| KR100568457B1 (en) | 2003-07-22 | 2006-04-07 | 학교법인 성균관대학 | RNA Transfer to Plants Using Cationic Oligopeptides |
| US7371927B2 (en) | 2003-07-28 | 2008-05-13 | Arborgen, Llc | Methods for modulating plant growth and biomass |
| WO2005020790A2 (en) | 2003-08-21 | 2005-03-10 | Ischem Corporation | Automated methods and systems for vascular plaque detection and analysis |
| US8090164B2 (en) | 2003-08-25 | 2012-01-03 | The University Of North Carolina At Chapel Hill | Systems, methods, and computer program products for analysis of vessel attributes for diagnosis, disease staging, and surgical planning |
| WO2005040152A1 (en) | 2003-10-20 | 2005-05-06 | E.I. Dupont De Nemours And Company | Heteroyclylphenyl-and heterocyclylpyridyl-substituted azolecarboxamides as herbicides |
| WO2005047233A1 (en) | 2003-10-31 | 2005-05-26 | Syngenta Participations Ag | Novel herbicides |
| WO2005047281A1 (en) | 2003-11-13 | 2005-05-26 | Syngenta Participations Ag | Novel herbicides |
| PL1687435T3 (en) | 2003-11-17 | 2012-02-29 | Bayer Cropscience Nv | Insect resistance using inhibition of gene expression |
| CA2548354A1 (en) | 2003-12-19 | 2005-07-07 | Basf Aktiengesellschaft | Herbicidal heteroaroyl-substituted phenylalanine amides |
| MXPA06005989A (en) | 2003-12-19 | 2006-08-23 | Basf Ag | Benzoyl-substituted phenylalanine amides. |
| WO2005070889A1 (en) | 2004-01-23 | 2005-08-04 | E.I. Dupont De Nemours And Company | Herbicidal amides |
| US7297541B2 (en) | 2004-01-26 | 2007-11-20 | Monsanto Technology Llc | Genes encoding 4-hydroxyphenylpyruvate dioxygenase (HPPD) enzymes for plant metabolic engineering |
| US7622301B2 (en) | 2004-02-24 | 2009-11-24 | Basf Plant Science Gmbh | Compositions and methods using RNA interference for control of nematodes |
| JP4596795B2 (en) | 2004-02-27 | 2010-12-15 | 住友林業株式会社 | Plant inhibitor containing piperitol or its derivatives as active ingredients |
| DE102004011705A1 (en) | 2004-03-10 | 2005-09-29 | Bayer Cropscience Gmbh | Substituted 4- (4-trifluoromethylpyrazolyl) -pyrimidines |
| BRPI0509244A (en) | 2004-03-27 | 2007-09-04 | Bayer Cropscience Gmbh | herbicidal combination |
| JPWO2005095335A1 (en) | 2004-03-31 | 2008-02-21 | 株式会社クレハ | Ylide compound, its production method, herbicide and use as pharmaceutical intermediate |
| JP2005314407A (en) | 2004-03-31 | 2005-11-10 | Nippon Nohyaku Co Ltd | Novel haloalkylsulfonanilide derivatives, herbicides, methods of use and intermediates thereof |
| AR048685A1 (en) | 2004-04-09 | 2006-05-17 | Monsanto Technology Llc | METHODS FOR CONTROL OF INSECT INFESTATIONS IN PLANTS. |
| PT1740039E (en) | 2004-04-30 | 2012-08-27 | Dow Agrosciences Llc | Novel herbicide resistance genes |
| CA2566286A1 (en) | 2004-05-11 | 2005-12-08 | Rnai Co., Ltd. | Polynucleotide causing rna interfere and method of regulating gene expression with the use of the same |
| WO2006006569A1 (en) | 2004-07-12 | 2006-01-19 | Nihon Nohyaku Co., Ltd. | Phenylpyridine derivative or salt thereof, herbicide containing the same as active ingredient, and method of use thereof |
| WO2006014013A1 (en) | 2004-08-04 | 2006-02-09 | Riken | Bone/joint disease sensitivity gene and use thereof |
| ATE415819T1 (en) | 2004-08-19 | 2008-12-15 | Monsanto Technology Llc | HERBICIDAL GLYPHOSATE SALT COMPOSITION |
| WO2006026738A2 (en) | 2004-08-31 | 2006-03-09 | Qiagen North American Holdings, Inc. | Methods and compositions for rna amplification and detection using an rna-dependent rna-polymerase |
| US20060135758A1 (en) * | 2004-08-31 | 2006-06-22 | Kunsheng Wu | Soybean polymorphisms and methods of genotyping |
| PT1789401E (en) | 2004-09-03 | 2010-03-18 | Syngenta Ltd | Isoxazoline derivatives and their use as herbicides |
| BRPI0515386A (en) | 2004-09-16 | 2008-07-22 | Basf Ag | compound, processes for preparing same, for preparing agents and for combating unwanted vegetation, agent, and use of the compound |
| UA82453C2 (en) | 2004-09-16 | 2008-04-10 | Басф Акциенгезелльшафт | Heteroaroyl-substituted serine amides used as herbicides, process for the preparation thereof (variants), intermediates, an agent and process for the preparation thereof, method for controlling unwanted plants |
| US20060247197A1 (en) | 2004-10-04 | 2006-11-02 | Van De Craen Marc | Method for down-regulating gene expression in fungi |
| DE602005018084D1 (en) | 2004-10-05 | 2010-01-14 | Syngenta Ltd | ISOXAZOLINE DERIVATIVES AND THEIR USE AS HERBICIDES |
| WO2006046148A2 (en) | 2004-10-25 | 2006-05-04 | Devgen Nv | Rna constructs |
| DE102004054665A1 (en) | 2004-11-12 | 2006-05-18 | Bayer Cropscience Gmbh | Substituted bicyclic and tricyclic pyrazole derivatives Methods for the preparation and use as herbicides and plant growth regulators |
| DE102004054666A1 (en) | 2004-11-12 | 2006-05-18 | Bayer Cropscience Gmbh | New substituted pyrazol-3-carboxamide derivatives useful to combat harmful plants and for growth regulation of plants |
| US7393812B2 (en) | 2004-11-19 | 2008-07-01 | Dow Agrosciences Llc | Methylidene mevalonates and their use as herbicides |
| US8404927B2 (en) | 2004-12-21 | 2013-03-26 | Monsanto Technology Llc | Double-stranded RNA stabilized in planta |
| US8314290B2 (en) | 2004-12-21 | 2012-11-20 | Monsanto Technology Llc | Temporal regulation of gene expression by MicroRNAs |
| US20060200878A1 (en) | 2004-12-21 | 2006-09-07 | Linda Lutfiyya | Recombinant DNA constructs and methods for controlling gene expression |
| AU2006203892B2 (en) | 2005-01-07 | 2011-03-24 | State Of Oregon Acting By And Through The State Board Of Higher Education On Behalf Of Oregon State University | Method to trigger RNA interference |
| JP2006232824A (en) | 2005-01-27 | 2006-09-07 | Sagami Chem Res Center | Imidazole derivatives, methods for producing them, and herbicides containing them as active ingredients |
| US7738626B2 (en) | 2005-02-04 | 2010-06-15 | Koninklijke Philips Electronics N.V. | System for the determination of vessel geometry and flow characteristics |
| FR2882062B1 (en) | 2005-02-14 | 2007-06-15 | Commissariat Energie Atomique | STABLE AND LONG-TERM EXPRESSION VECTORS OF SIRNA AND THEIR APPLICATIONS |
| KR100890886B1 (en) | 2005-02-24 | 2009-03-31 | 니혼노야쿠가부시키가이샤 | Novel haloalkylsulfonanilide derivative, herbicide, and method of use thereof |
| US8088976B2 (en) | 2005-02-24 | 2012-01-03 | Monsanto Technology Llc | Methods for genetic control of plant pest infestation and compositions thereof |
| JP2006282552A (en) | 2005-03-31 | 2006-10-19 | Nippon Nohyaku Co Ltd | Phenylheteroaryls or salts thereof and herbicides containing these as active ingredients |
| DE102005014638A1 (en) | 2005-03-31 | 2006-10-05 | Bayer Cropscience Gmbh | Substituted pyrazolyloxyphenyl derivatives as herbicides |
| DE102005014906A1 (en) | 2005-04-02 | 2006-10-05 | Bayer Cropscience Gmbh | New pyrimidine compounds e.g. N-((4-ethyl-6((2-(trifluoromethyl) pyridine-4-yl)oxy) pyrimidine-2-yl)methyl) cyclopropane carboxamide useful for combating weeds |
| BRPI0608829A2 (en) | 2005-04-19 | 2011-03-15 | Basf Plant Science Gmbh | method for transgenic expression with enhanced specificity in a plant, use of a chimeric nucleic acid construct, chimeric ribonucleotide sequence, expression construct, expression vector, nonhuman organism or transformed cell, transformed seed, and pharmaceutical preparation |
| KR101323617B1 (en) | 2005-05-09 | 2013-11-06 | 고쿠리츠다이가쿠호진 도호쿠다이가쿠 | Method for Transformation Using Mutant Acetolactate Synthase Gene |
| GB0510151D0 (en) | 2005-05-18 | 2005-06-22 | Syngenta Ltd | Novel herbicides |
| CN101228133A (en) | 2005-05-25 | 2008-07-23 | 巴斯福股份公司 | Heteroaroyl-substituted serine amides |
| BRPI0611497A2 (en) | 2005-05-25 | 2011-02-22 | Basf Ag | compound, processes for preparing compounds, and agents, and for combating unwanted vegetation, agent, and use of the compound |
| JPWO2006132270A1 (en) | 2005-06-10 | 2009-01-08 | 国立大学法人京都大学 | Herbicide resistance gene |
| US20070130653A1 (en) | 2005-06-17 | 2007-06-07 | Pioneer Hi-Bred International, Inc. | Methods and compositions for gene silencing |
| DE102005031412A1 (en) | 2005-07-06 | 2007-01-11 | Bayer Cropscience Gmbh | 3- [1-Halo-1-aryl-methane-sulfonyl] and 3- [1-halo-1-heteroaryl-methanesulfonyl] -isoxazoline derivatives, processes for their preparation and use as herbicides and plant growth regulators |
| EP1907551A1 (en) | 2005-07-07 | 2008-04-09 | CBD Technologies Ltd. | Compositions and methods comprising stinging capsules/cells for delivering a biologically active agent into a plant cell |
| US7702116B2 (en) | 2005-08-22 | 2010-04-20 | Stone Christopher L | Microphone bleed simulator |
| ATE544861T1 (en) | 2005-08-24 | 2012-02-15 | Pioneer Hi Bred Int | METHODS AND COMPOSITIONS FOR EXPRESSING A POLYNUCLEOTIDE OF INTEREST |
| US7671254B2 (en) | 2005-08-25 | 2010-03-02 | The Board Of Trustees Of The University Of Illinois | Herbicide resistance gene, compositions and methods |
| US7842856B2 (en) | 2005-08-25 | 2010-11-30 | The Board Of Trustees Of The University Of Illinois | Herbicide resistance gene, compositions and methods |
| JPWO2007026834A1 (en) | 2005-09-01 | 2009-03-12 | クミアイ化学工業株式会社 | Pyrazole derivatives and herbicides for agriculture and horticulture |
| ES2545093T3 (en) | 2005-09-16 | 2015-09-08 | Devgen N.V. | Transgenic plant-based methods for plant pests using RNAi |
| CN104357447A (en) | 2005-09-16 | 2015-02-18 | 德福根有限公司 | Methods for controlling pests using RNAI |
| PT2431473T (en) | 2005-09-16 | 2017-02-15 | Monsanto Technology Llc | Methods for genetic control of insect infestations in plants and compositions thereof |
| EP2980220A1 (en) | 2005-09-20 | 2016-02-03 | BASF Plant Science GmbH | Improved methods controlling gene expression |
| WO2007038788A2 (en) | 2005-09-29 | 2007-04-05 | The Cleveland Clinic Foundation | Small interfering rnas as non-specific drugs |
| AU2006302969B2 (en) | 2005-10-13 | 2011-09-22 | Monsanto Technology, Llc | Methods for producing hybrid seed |
| WO2007050715A2 (en) | 2005-10-26 | 2007-05-03 | Integrated Plant Genetics, Inc. | Compositions and methods for safe delivery of biologically-active plant transformation agents using non-fibrous silicon carbide powder |
| EP1948196B1 (en) | 2005-11-03 | 2012-12-26 | Zoser B. Salama | Use of tetraorganosilicon compounds |
| JP2007161701A (en) | 2005-11-15 | 2007-06-28 | Hokko Chem Ind Co Ltd | Aryloxy-N- (oxyiminoalkyl) alkanoic acid amide derivatives and uses |
| JP5078904B2 (en) | 2005-11-21 | 2012-11-21 | ジヨンソン・アンド・ジヨンソン・リサーチ・ピーテイワイ・リミテツド | Multi-targeting interfering RNAs and methods for their use and design |
| JP2007153847A (en) | 2005-12-08 | 2007-06-21 | Hokko Chem Ind Co Ltd | Phenoxyalkanoic acid amide derivative and herbicide |
| WO2007070389A2 (en) | 2005-12-12 | 2007-06-21 | Syngenta Participations Ag | Control of parasitic weeds |
| GB0526044D0 (en) | 2005-12-21 | 2006-02-01 | Syngenta Ltd | Novel herbicides |
| WO2007071730A2 (en) | 2005-12-23 | 2007-06-28 | Basf Se | A method for controlling aquatic weeds |
| AR058408A1 (en) | 2006-01-02 | 2008-01-30 | Basf Ag | PIPERAZINE COMPOUNDS WITH HERBICITY ACTION |
| ATE463485T1 (en) | 2006-01-05 | 2010-04-15 | Basf Se | PIPERAZINE COMPOUNDS WITH HERBICIDAL EFFECT |
| JP2007182404A (en) | 2006-01-10 | 2007-07-19 | Hokko Chem Ind Co Ltd | Aryloxy-N- (alkoxyalkyl) alkanoic acid amide derivatives and herbicides |
| BRPI0706227A8 (en) | 2006-01-12 | 2019-01-02 | Devgen Nv | transgenic plant-based methods for plant pests using rnai |
| EP2347759B1 (en) | 2006-01-12 | 2017-10-18 | deVGen N.V. | Methods for controlling pests using RNAi |
| WO2008063203A2 (en) | 2006-01-27 | 2008-05-29 | Whitehead Institute For Biomedical Research | Compositions and methods for efficient gene silencing in plants |
| US20080022423A1 (en) | 2006-02-03 | 2008-01-24 | Monsanto Technology Llc | IN PLANTA RNAi CONTROL OF FUNGI |
| CA2637665A1 (en) | 2006-02-10 | 2007-08-23 | Monsanto Technology Llc | Identification and use of target genes for control of the plant parasitic nematodes heterodera glycines |
| CN105385679B (en) | 2006-02-13 | 2020-05-26 | 孟山都技术有限公司 | Selecting and stabilizing dsRNA constructs |
| US20090036311A1 (en) | 2006-02-16 | 2009-02-05 | Basf Se | Benzoyl-Substituted Alanines |
| EP1987008A2 (en) | 2006-02-16 | 2008-11-05 | Basf Se | Heteroaroyl-substituted alanines |
| GB0603891D0 (en) | 2006-02-27 | 2006-04-05 | Syngenta Ltd | Novel herbicides |
| US20070214515A1 (en) | 2006-03-09 | 2007-09-13 | E.I.Du Pont De Nemours And Company | Polynucleotide encoding a maize herbicide resistance gene and methods for use |
| US20100068172A1 (en) | 2006-03-16 | 2010-03-18 | Devgen N.V. | Nematode Control |
| TWI375669B (en) | 2006-03-17 | 2012-11-01 | Sumitomo Chemical Co | Pyridazinone compound and use thereof |
| US20070281900A1 (en) | 2006-05-05 | 2007-12-06 | Nastech Pharmaceutical Company Inc. | COMPOSITIONS AND METHODS FOR LIPID AND POLYPEPTIDE BASED siRNA INTRACELLULAR DELIVERY |
| JP2009536029A (en) | 2006-05-09 | 2009-10-08 | リライアンス ライフ サイエンシーズ プライベイト リミテッド | Molecular cloning and sequencing of the acetyl-CoA carboxylase (ACCase) gene from Jatrophacurcas |
| JP2009537477A (en) | 2006-05-19 | 2009-10-29 | ビーエーエスエフ ソシエタス・ヨーロピア | Benzoyl-substituted alanine |
| BRPI0710930A2 (en) | 2006-05-19 | 2012-02-14 | Basf Se | compound process for preparing a compound, composition, processes for preparing compositions and for combating unwanted vegetation, and use of the compound |
| US7884262B2 (en) | 2006-06-06 | 2011-02-08 | Monsanto Technology Llc | Modified DMO enzyme and methods of its use |
| EP2044204B1 (en) | 2006-06-07 | 2014-04-30 | Yissum Research Development Company of the Hebrew University of Jerusalem Ltd. | Plant expression constructs and methods of utilizing same |
| ES2418843T3 (en) | 2006-06-08 | 2013-08-16 | Athenix Corporation | Bacterial glutamine synthetases and methods of use |
| GB0613901D0 (en) | 2006-07-13 | 2006-08-23 | Univ Lancaster | Improvements in and relating to plant protection |
| GB0614471D0 (en) | 2006-07-20 | 2006-08-30 | Syngenta Ltd | Herbicidal Compounds |
| JP2008074840A (en) | 2006-08-23 | 2008-04-03 | Nippon Nohyaku Co Ltd | Novel haloalkylsulfonanilide derivatives, herbicides and methods of use thereof |
| JP2008074841A (en) | 2006-08-23 | 2008-04-03 | Nippon Nohyaku Co Ltd | Novel haloalkylsulfonanilide derivatives, herbicides and methods of use thereof |
| GB0617575D0 (en) | 2006-09-06 | 2006-10-18 | Syngenta Ltd | Herbicidal compounds and compositions |
| WO2008042231A2 (en) | 2006-09-29 | 2008-04-10 | Children's Medical Center Corporation | Compositions and methods for evaluating and treating heart failure |
| US7897846B2 (en) | 2006-10-30 | 2011-03-01 | Pioneer Hi-Bred Int'l, Inc. | Maize event DP-098140-6 and compositions and methods for the identification and/or detection thereof |
| TW200829171A (en) | 2006-11-17 | 2008-07-16 | Nihon Nohyaku Co Ltd | Haloalkyl sulfonanilide derivatives or salts thereof, herbicide using it as effective constituent and use-method thereof |
| JP2008133218A (en) | 2006-11-28 | 2008-06-12 | Hokko Chem Ind Co Ltd | Phenoxybutyric acid amide derivatives and herbicides |
| JP2008133207A (en) | 2006-11-28 | 2008-06-12 | Hokko Chem Ind Co Ltd | Oxazolinone derivative, production method thereof and herbicide |
| GB0624760D0 (en) | 2006-12-12 | 2007-01-17 | Syngenta Ltd | Herbicidal compounds |
| GB0625598D0 (en) | 2006-12-21 | 2007-01-31 | Syngenta Ltd | Novel herbicides |
| JP2008169121A (en) | 2007-01-09 | 2008-07-24 | Bayer Cropscience Ag | Jasmonic acid derivative, herbicide and herbicidal effect-reinforcing agent |
| US8133851B2 (en) | 2007-01-11 | 2012-03-13 | Basf Se | Heteroaroyl-substituted serine amides |
| CL2008000376A1 (en) | 2007-02-09 | 2008-08-18 | Du Pont | COMPOUNDS DERIVED FROM PIRIDINE N-OXIDES; HERBICIDE COMPOSITION; AND METHOD TO CONTROL THE GROWTH OF INDESEATED VEGETATION. |
| WO2008102908A1 (en) | 2007-02-23 | 2008-08-28 | Nissan Chemical Industries, Ltd. | Haloalkylsulfonanilide derivative |
| EP2358269B1 (en) | 2007-03-08 | 2019-04-10 | Sync-RX, Ltd. | Image processing and tool actuation for medical procedures |
| DE102007012168A1 (en) | 2007-03-12 | 2008-09-18 | Bayer Cropscience Ag | New thiazole derivatives useful as herbicides and plant growth regulators |
| CN101279951B (en) | 2007-04-06 | 2010-09-01 | 中国中化股份有限公司 | 2-Pyrimidinyloxy (thio) benzoic acid enoate compounds and their application |
| CN101279950B (en) | 2007-04-06 | 2010-08-11 | 中国中化股份有限公司 | 2-pyrimidinyloxy (thio) benzoyl acetamide compounds and their application |
| GB0709710D0 (en) | 2007-05-21 | 2007-06-27 | Syngenta Ltd | Herbicidal compositions |
| EP1997381A1 (en) | 2007-06-01 | 2008-12-03 | Commissariat à l'Energie Atomique | Use of a compound having a monogalactosyldiacylglycerol synthase inhibitory activity as herbicide or algaecide, herbicide and algaecide compositions |
| AU2008258254B2 (en) | 2007-06-07 | 2014-07-03 | Agriculture And Agri-Food Canada | Nanocarrier based plant transfection and transduction |
| US20100152047A1 (en) | 2007-06-12 | 2010-06-17 | Basf Se | Piperazine Compounds Whith a Herbicidal Action |
| BRPI0812877A2 (en) | 2007-06-12 | 2014-12-09 | Basf Se | "PIPERAZINE COMPOUNDS, USE OF A PIPERAZINE COMPOUND, COMPOSITION, AND UNWANTED VEGETATION METHOD". |
| PE20090420A1 (en) | 2007-06-22 | 2009-05-08 | Basf Se | PIPERAZINE COMPOUNDS WITH HERBICIDAL ACTION |
| NL2000719C2 (en) | 2007-06-22 | 2008-12-23 | Synthesis B V | Method and device for treating vegetable seeds. |
| KR100884933B1 (en) | 2007-07-03 | 2009-02-23 | 주식회사경농 | Photoactive (R) -allyloxypropionic acid amide compound and herbicide composition comprising the same |
| US20130084243A1 (en) | 2010-01-27 | 2013-04-04 | Liliane Goetsch | Igf-1r specific antibodies useful in the detection and diagnosis of cellular proliferative disorders |
| JP2010535913A (en) | 2007-08-14 | 2010-11-25 | ディーエスエム アイピー アセッツ ビー.ブイ. | Rubber desulfurization |
| MX2010001666A (en) | 2007-08-16 | 2010-03-10 | Basf Se | Seed treatment compositions and methods. |
| JP2010537639A (en) | 2007-08-27 | 2010-12-09 | ボストン バイオメディカル, インコーポレイテッド | Asymmetric interfering RNA compositions and uses thereof |
| JP2009067739A (en) | 2007-09-14 | 2009-04-02 | Sumitomo Chemical Co Ltd | Herbicidal composition |
| CL2008002703A1 (en) | 2007-09-14 | 2009-11-20 | Sumitomo Chemical Co | Compounds derived from 1,4-dihydro-2h-pyridazin-3-one; herbicidal composition comprising said compounds; weed control method; use of said compounds for weed control; and intermediate compounds. |
| EP2193202A2 (en) | 2007-09-21 | 2010-06-09 | BASF Plant Science GmbH | Plants with increased yield |
| JP5507459B2 (en) | 2007-10-05 | 2014-05-28 | ダウ アグロサイエンシィズ エルエルシー | Method for transferring molecular substances to plant cells |
| WO2009055597A2 (en) | 2007-10-25 | 2009-04-30 | Monsanto Technology Llc | Methods for identifying genetic linkage |
| WO2009060122A2 (en) | 2007-11-05 | 2009-05-14 | Baltic Technology Development, Ltd. | Use of oligonucleotides with modified bases as antiviral agents |
| CA2704560A1 (en) | 2007-11-05 | 2009-05-14 | Baltic Technology Development, Ltd. | Use of oligonucleotides with modified bases in hybridization of nucleic acids |
| US8097712B2 (en) | 2007-11-07 | 2012-01-17 | Beelogics Inc. | Compositions for conferring tolerance to viral disease in social insects, and the use thereof |
| JP2009114128A (en) | 2007-11-07 | 2009-05-28 | Hokko Chem Ind Co Ltd | Amino acid amide derivatives and herbicides |
| GB0722472D0 (en) | 2007-11-15 | 2007-12-27 | Syngenta Ltd | Herbicidal compounds |
| JP2009126792A (en) | 2007-11-20 | 2009-06-11 | Sagami Chem Res Center | 5-Substituted phenyl-2-trifluoromethylpyrimidin-6 (1H) -one derivative, method for producing the same, and herbicide containing the derivative as an active ingredient |
| EP2065374A1 (en) | 2007-11-30 | 2009-06-03 | Bayer CropScience AG | 2-(benzyl- and 1H-pyrazol-4-ylmethyl)sulfinyl-thiazol-derivatives as herbicides and plant growth regulators |
| EP2065373A1 (en) | 2007-11-30 | 2009-06-03 | Bayer CropScience AG | Chiral 3-(benzylsulfinyl)-5,5-dimethyl-4,5-dihydroisoxazole and 5,5-dimethyl-3-[(1H-pyrazol-4-ylmethyl) sulfinyl]-4,5-dihydroisoxazole derivatives, methods for their preparation and their use as herbicides and plant growth regulators |
| JP2009137851A (en) | 2007-12-04 | 2009-06-25 | Sagami Chem Res Center | 2-Trifluoromethylpyrimidin-6 (1H) -one derivative, method for producing the same, and herbicide containing the derivative as an active ingredient |
| US8158850B2 (en) | 2007-12-19 | 2012-04-17 | Monsanto Technology Llc | Method to enhance yield and purity of hybrid crops |
| CL2008003785A1 (en) | 2007-12-21 | 2009-10-09 | Du Pont | Pyridazine derived compounds; herbicidal compositions comprising said compounds; and method of controlling the growth of unwanted vegetation. |
| GB0800856D0 (en) | 2008-01-17 | 2008-02-27 | Syngenta Ltd | Herbicidal compounds |
| GB0800855D0 (en) | 2008-01-17 | 2008-02-27 | Syngenta Ltd | Herbicidal compounds |
| ES2393594T3 (en) | 2008-02-20 | 2012-12-26 | Syngenta Participations Ag | Herbicidal formulation |
| WO2009110924A1 (en) | 2008-03-03 | 2009-09-11 | Ms Technologies Llc | Antibodies immunoreactive with mutant 5-enolpyruvlshikimate-3-phosphate synthase |
| WO2009116151A1 (en) | 2008-03-19 | 2009-09-24 | アグロカネショウ株式会社 | 1-phenyl-5-difluoromethylpyrazole-4-carboxamide derivatives and herbicides containing the derivatives as the active ingredient |
| GB0805318D0 (en) | 2008-03-20 | 2008-04-30 | Syngenta Ltd | Herbicidal compounds |
| WO2009125401A2 (en) | 2008-04-10 | 2009-10-15 | Rosetta Genomics Ltd. | Compositions and methods for enhancing oil content in plants |
| WO2009144079A1 (en) | 2008-04-14 | 2009-12-03 | Bayer Bioscience N.V. | New mutated hydroxyphenylpyruvate dioxygenase, dna sequence and isolation of plants which are tolerant to hppd inhibitor herbicides |
| US8271857B2 (en) | 2008-05-13 | 2012-09-18 | International Business Machines Corporation | Correcting errors in longitudinal position (LPOS) words |
| JP2011522552A (en) | 2008-06-13 | 2011-08-04 | リボックス・ゲーエムベーハー | Method for enzymatic synthesis of chemically modified RNA |
| EP2135865A1 (en) | 2008-06-17 | 2009-12-23 | Bayer CropScience AG | Substituted 1-(diazinyl)pyrazol-4-yl acetic acids, method for their production and their use as herbicides and plant growth regulators |
| WO2009158258A1 (en) | 2008-06-25 | 2009-12-30 | E. I. Du Pont De Nemours And Company | Herbicidal dihydro oxo six-membered azinyl isoxazolines |
| WO2010002984A1 (en) | 2008-07-01 | 2010-01-07 | Monsanto Technology, Llc | Recombinant dna constructs and methods for modulating expression of a target gene |
| TWI455944B (en) | 2008-07-01 | 2014-10-11 | Daiichi Sankyo Co Ltd | Double-stranded polynucleotides |
| US8703730B2 (en) | 2008-07-10 | 2014-04-22 | Regenesance B.V. | Complement antagonists and uses thereof |
| EP2147919A1 (en) | 2008-07-24 | 2010-01-27 | Bayer CropScience Aktiengesellschaft | Heterocyclic substituted amides, method for their manufacture and their use as herbicides |
| KR20110036633A (en) | 2008-07-29 | 2011-04-07 | 바스프 에스이 | Piperazine Compounds with Herbicidal Effect |
| AU2009281311A1 (en) | 2008-08-15 | 2010-02-18 | Zoser B. Salama | Carrier system for biological agents containing organosilicon compounds and uses thereof |
| WO2010019271A1 (en) | 2008-08-15 | 2010-02-18 | Georgetown University | Fluorescent regulators of rassf1a expression and human cancer cell proliferation |
| EP2336104A4 (en) | 2008-09-02 | 2012-01-25 | Nissan Chemical Ind Ltd | ORTHO-SUBSTITUTED HALOGENOALKYLSULFONANILIDE DERIVATIVE AND HERBICIDE |
| CA2735899A1 (en) | 2008-09-25 | 2010-04-01 | Cephalon, Inc. | Liquid formulations of bendamustine |
| WO2010034153A1 (en) | 2008-09-25 | 2010-04-01 | 沈阳化工研究院 | New 2-pyrimidinyloxy (sulfo) benzoxy olefin acid ester compounds and uses thereof |
| DK2346321T4 (en) | 2008-09-30 | 2022-08-08 | Basf Se | COMPOSITION FOR IMPROVING THE EFFECTIVENESS OF HERBICIDES |
| US20100099561A1 (en) | 2008-10-15 | 2010-04-22 | E.I. Du Pont De Nemours And Company | Heterobicyclic alkylthio-bridged isoxazolines |
| EP2350074B1 (en) | 2008-10-29 | 2013-03-06 | Basf Se | Substituted pyridines having a herbicidal effect |
| BRPI0920107A2 (en) | 2008-10-30 | 2015-08-18 | Pioneer Hi Bred Int | Isolated polynucleotide, recombinant expression cassette, host cell, transgenic plant, transgenic seed, method for modulating gs in a plant, method for reducing gs enzyme polypeptide activity in a plant cell. |
| JP2012506889A (en) | 2008-10-31 | 2012-03-22 | ビーエーエスエフ ソシエタス・ヨーロピア | Piperazine compounds with herbicidal effect |
| RU2011121523A (en) | 2008-10-31 | 2012-12-10 | Басф Се | METHOD FOR IMPROVING PLANT VIABILITY |
| US20110209253A1 (en) | 2008-10-31 | 2011-08-25 | Basf Se | Method for Improving Plant Health |
| EP2194052A1 (en) | 2008-12-06 | 2010-06-09 | Bayer CropScience AG | Substituted 1.(1-thiazolyl)- and 1-(isothiazolyl)pyrazol-4-yl acetic acids, method for their production and their use as herbicides and plant growth regulators |
| JP2012512821A (en) | 2008-12-18 | 2012-06-07 | ビーエーエスエフ ソシエタス・ヨーロピア | Heterocyclic diketone derivatives with herbicidal action |
| US20100249214A1 (en) | 2009-02-11 | 2010-09-30 | Dicerna Pharmaceuticals | Multiplex dicer substrate rna interference molecules having joining sequences |
| DE102008063561A1 (en) | 2008-12-18 | 2010-08-19 | Bayer Cropscience Ag | Hydrazides, process for their preparation and their use as herbicides and insecticides |
| EP2204366A1 (en) | 2008-12-19 | 2010-07-07 | Bayer CropScience AG | Herbicidal and insecticidal phenyl-substituted pyridazinones |
| US8554490B2 (en) | 2009-02-25 | 2013-10-08 | Worcester Polytechnic Institute | Automatic vascular model generation based on fluid-structure interactions (FSI) |
| CA2792354A1 (en) | 2009-03-06 | 2010-09-10 | Bio-Tree Systems, Inc. | Vascular analysis methods and apparatus |
| JP2010235603A (en) | 2009-03-13 | 2010-10-21 | Sumitomo Chemical Co Ltd | Pyridazinone compounds and uses thereof |
| EP2229813A1 (en) | 2009-03-21 | 2010-09-22 | Bayer CropScience AG | Pyrimidine-4-ylpropandinitrile derivatives, method for their manufacture and their use as herbicides and plant growth regulators |
| GB0905441D0 (en) | 2009-03-30 | 2009-05-13 | Syngenta Ltd | Herbicidal compounds |
| EP2756845B1 (en) | 2009-04-03 | 2017-03-15 | Dicerna Pharmaceuticals, Inc. | Methods and compositions for the specific inhibition of KRAS by asymmetric double-stranded RNA |
| EP2417132B1 (en) | 2009-04-06 | 2013-04-17 | Syngenta Limited | Herbicidal quinoline and 1,8-naphthyridine compounds |
| WO2010119906A1 (en) | 2009-04-14 | 2010-10-21 | 日産化学工業株式会社 | Haloalkylsulfonanilide derivative |
| CA2759100A1 (en) | 2009-04-21 | 2010-10-28 | Basf Plant Science Company Gmbh | Rna-mediated induction of gene expression in plants |
| GB0908293D0 (en) | 2009-05-14 | 2009-06-24 | Syngenta Ltd | Herbicidal compounds |
| US8975470B2 (en) | 2009-06-30 | 2015-03-10 | Yissum Research Development Company Of The Hebrew University Of Jerusalem Ltd. | Introducing DNA into plant cells |
| WO2011003776A2 (en) | 2009-07-09 | 2011-01-13 | Basf Se | Substituted cyanobutyrates having a herbicidal effect |
| US20110028412A1 (en) | 2009-08-03 | 2011-02-03 | Cappellos, Inc. | Herbal enhanced analgesic formulations |
| US20120157512A1 (en) | 2009-08-21 | 2012-06-21 | Monsanto Technology Llc | Preventing and Curing Beneficial Insect Diseases Via Plant Transcribed Molecules |
| MX2012003377A (en) | 2009-09-25 | 2012-05-08 | Bayer Cropscience Ag | N-(1,2,5-oxadiazol-3-yl) benzamides and the use thereof as herbicides. |
| US8962584B2 (en) | 2009-10-14 | 2015-02-24 | Yissum Research Development Company Of The Hebrew University Of Jerusalem, Ltd. | Compositions for controlling Varroa mites in bees |
| WO2011045796A1 (en) | 2009-10-14 | 2011-04-21 | Yissum Research Development Company Of The Hebrew University Of Jerusalem Ltd. | Compositions for controlling varroa mites in bees |
| DE102010042864A1 (en) | 2009-10-30 | 2011-06-01 | Basf Se | Substituted thioamides with herbicidal activity |
| US8329619B2 (en) | 2009-11-03 | 2012-12-11 | Basf Se | Substituted quinolinones having herbicidal action |
| US8926626B2 (en) | 2009-11-10 | 2015-01-06 | Wake Forest University Health Sciences | Tissue tensioning devices and related methods |
| US9145562B2 (en) | 2009-11-20 | 2015-09-29 | Alberta Innovates—Technology Futures | Variegation in plants |
| UA115762C2 (en) | 2009-11-23 | 2017-12-26 | Монсанто Текнолоджи Ллс | RECOMBINANT DNA MOLECULE INDICATING THE PRESENCE OF THE TRANSGENIC EVENT MON 87427 MAIS |
| JP2011195561A (en) | 2009-11-24 | 2011-10-06 | Sumitomo Chemical Co Ltd | Ketone compound, and herbicide comprising the same |
| WO2011067745A2 (en) | 2009-12-06 | 2011-06-09 | Rosetta Green Ltd. | Compositions and methods for enhancing plants resistance to abiotic stress |
| CA2785208A1 (en) | 2009-12-23 | 2011-06-30 | Bayer Intellectual Property Gmbh | Plants tolerant to hppd inhibitor herbicides |
| EP2519097B1 (en) | 2009-12-28 | 2016-03-02 | Evogene Ltd. | Isolated polynucleotides and polypeptides and methods of using same for increasing plant yield, biomass, growth rate, vigor, oil content, abiotic stress tolerance of plants and nitrogen use efficiency |
| CA2788198C (en) | 2010-01-26 | 2021-01-19 | Pioneer Hi-Bred International, Inc. | Hppd-inhibitor herbicide tolerance |
| US9121022B2 (en) | 2010-03-08 | 2015-09-01 | Monsanto Technology Llc | Method for controlling herbicide-resistant plants |
| EP2385129A1 (en) | 2010-05-03 | 2011-11-09 | BASF Plant Science Company GmbH | Enhanced methods for gene regulation in plants |
| CA2801808A1 (en) | 2010-06-30 | 2012-01-05 | Basf Plant Science Company Gmbh | Novel microrna precursor and use thereof in regulation of target gene expression |
| CN101892247B (en) | 2010-07-21 | 2012-12-12 | 河北大学 | Herbicide resistance gene and application thereof |
| EP2418283A1 (en) | 2010-08-07 | 2012-02-15 | Nomad Bioscience GmbH | Process of transfecting plants |
| CN101914540A (en) * | 2010-08-09 | 2010-12-15 | 大连大学 | A method of introducing RNA interference into plants |
| US20140013469A1 (en) | 2010-10-25 | 2014-01-09 | A.B. Seeds Ltd. | ISOLATED POLYNUCLEOTIDES EXPRESSING OR MODULATING microRNAs OR TARGETS OF SAME, TRANSGENIC PLANTS COMPRISING SAME AND USES THEREOF IN IMPROVING NITROGEN USE EFFICIENCY, ABIOTIC STRESS TOLERANCE, BIOMASS, VIGOR OR YIELD OF A PLANT |
| EP2633049B1 (en) | 2010-10-27 | 2018-10-10 | Harrisvaccines Inc | Methods and compositions to protect aquatic invertebrates from disease |
| EP2651207B1 (en) | 2010-12-17 | 2017-11-08 | Monsanto Technology LLC | Methods for improving competency of plant cells |
| UY33853A (en) | 2010-12-30 | 2012-07-31 | Dow Agrosciences Llc | ? NUCLEIC ACID MOLECULES THAT ARE DIRECTED TO SUBUNITY H OF THE VACUOLAR ATPASA AND CONFERENCE RESISTANCE TO PATHOPHERAL PESTS ?. |
| CN102154364A (en) | 2010-12-31 | 2011-08-17 | 广西作物遗传改良生物技术重点开放实验室 | Method for agrobacterium tumefaciens-mediated genetic transformation of sugarcane |
| EP2530159A1 (en) | 2011-06-03 | 2012-12-05 | Sandoz Ag | Transcription terminator sequences |
| PH12013502638A1 (en) | 2011-07-18 | 2019-07-03 | Devgen Nv | Plants resistant to insect pests |
| EP2744905B1 (en) | 2011-08-16 | 2016-08-03 | Syngenta Participations AG | Methods and compositions for introduction of exogenous dsrna into plant cells |
| US9974508B2 (en) | 2011-09-01 | 2018-05-22 | Ghassan S. Kassab | Non-invasive systems and methods for determining fractional flow reserve |
| WO2013040116A1 (en) | 2011-09-13 | 2013-03-21 | Monsanto Technology Llc | Methods and compositions for weed control |
| EP3434779A1 (en) | 2011-09-13 | 2019-01-30 | Monsanto Technology LLC | Methods and compositions for weed control |
| MX350775B (en) * | 2011-09-13 | 2017-09-15 | Monsanto Technology Llc | Methods and compositions for weed control. |
| CN103957697B (en) | 2011-09-13 | 2017-10-24 | 孟山都技术公司 | Methods and compositions for weed control |
| UA116090C2 (en) | 2011-09-13 | 2018-02-12 | Монсанто Текнолоджи Ллс | Methods and compositions for weed control |
| CN103958686A (en) * | 2011-09-13 | 2014-07-30 | 孟山都技术公司 | Methods and compositions for weed control |
| CA2848689A1 (en) * | 2011-09-13 | 2013-03-21 | Monsanto Technology Llc | Methods and compositions for weed control targeting pds |
| CA2848576A1 (en) * | 2011-09-13 | 2013-03-21 | Monsanto Technology Llc | Methods and compositions for weed control comprising topical application of 4-hydroxyphenyl-pyruvate-dioxygenase (hppd)-inhibiting polynucleotides |
| US10034614B2 (en) | 2012-02-29 | 2018-07-31 | General Electric Company | Fractional flow reserve estimation |
| US8548778B1 (en) | 2012-05-14 | 2013-10-01 | Heartflow, Inc. | Method and system for providing information from a patient-specific model of blood flow |
| US10240162B2 (en) | 2012-05-24 | 2019-03-26 | A.B. Seeds Ltd. | Compositions and methods for silencing gene expression |
| WO2013180851A1 (en) | 2012-05-29 | 2013-12-05 | The Johns Hopkins University | A method for estimating pressure gradients and fractional flow reserve from computed tomography angiography: transluminal attenuation flow encoding |
| EP2880162B1 (en) | 2012-08-03 | 2017-07-05 | Alnylam Pharmaceuticals, Inc. | Modified rnai agents |
| BR112015015975A2 (en) | 2013-01-01 | 2018-11-06 | A. B. Seeds Ltd. | isolated dsrna molecules and methods of using them for silencing target molecules of interest. |
| US10683505B2 (en) | 2013-01-01 | 2020-06-16 | Monsanto Technology Llc | Methods of introducing dsRNA to plant seeds for modulating gene expression |
| US10000767B2 (en) * | 2013-01-28 | 2018-06-19 | Monsanto Technology Llc | Methods and compositions for plant pest control |
| UA121846C2 (en) | 2013-03-13 | 2020-08-10 | Монсанто Текнолоджи Ллс | METHOD AND HERBICIDAL COMPOSITION FOR CONTROL OF PLANT SPECIES OF THE GENUS LOLIUM |
| UA123082C2 (en) * | 2013-03-13 | 2021-02-17 | Монсанто Текнолоджи Ллс | Methods and compositions for weed control |
| US9920316B2 (en) | 2013-03-14 | 2018-03-20 | Pioneer Hi-Bred International, Inc. | Compositions and methods to control insect pests |
| US20140283211A1 (en) * | 2013-03-14 | 2014-09-18 | Monsanto Technology Llc | Methods and Compositions for Plant Pest Control |
| US10568328B2 (en) | 2013-03-15 | 2020-02-25 | Monsanto Technology Llc | Methods and compositions for weed control |
| AU2014233711B2 (en) | 2013-03-15 | 2020-05-28 | Monsanto Technology Llc | Compositions and Methods for the Production and Delivery of RNA |
| US9850496B2 (en) | 2013-07-19 | 2017-12-26 | Monsanto Technology Llc | Compositions and methods for controlling Leptinotarsa |
| CN105980567B (en) | 2013-07-19 | 2021-04-16 | 孟山都技术有限公司 | Compositions and methods for controlling Beetle |
| ES3008698T3 (en) | 2013-11-04 | 2025-03-24 | Greenlight Biosciences Inc | Compositions and methods for controlling arthropod parasite and pest infestations |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10934555B2 (en) | 2012-05-24 | 2021-03-02 | Monsanto Technology Llc | Compositions and methods for silencing gene expression |
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| EP3116303A4 (en) | 2017-12-06 |
| UA121462C2 (en) | 2020-06-10 |
| UY35952A (en) | 2015-08-31 |
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| AU2015206585A9 (en) | 2019-08-01 |
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| WO2015108982A3 (en) | 2015-09-11 |
| US20160330967A1 (en) | 2016-11-17 |
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| AR099092A1 (en) | 2016-06-29 |
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| BR112016016337A2 (en) | 2017-10-03 |
| US10334848B2 (en) | 2019-07-02 |
| WO2015108982A2 (en) | 2015-07-23 |
| CN105979770A (en) | 2016-09-28 |
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