WO2005054479A1 - Insect resistant cotton plants and methods of detecting the same - Google Patents

Insect resistant cotton plants and methods of detecting the same Download PDF

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Publication number
WO2005054479A1
WO2005054479A1 PCT/EP2004/012662 EP2004012662W WO2005054479A1 WO 2005054479 A1 WO2005054479 A1 WO 2005054479A1 EP 2004012662 W EP2004012662 W EP 2004012662W WO 2005054479 A1 WO2005054479 A1 WO 2005054479A1
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Prior art keywords
sample
seq
cot202
polynucleotide
detecting
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PCT/EP2004/012662
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French (fr)
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David Vincent Negrotto
Frank Arthur Shotkoski
Wenjin Yu
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Syngenta Participations Ag
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Priority to EP04797738A priority Critical patent/EP1699929A1/en
Priority to US10/580,596 priority patent/US7521550B2/en
Priority to AU2004295386A priority patent/AU2004295386A1/en
Priority to BRPI0416472-5A priority patent/BRPI0416472A/en
Publication of WO2005054479A1 publication Critical patent/WO2005054479A1/en
Priority to US12/402,957 priority patent/US20090181399A1/en

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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K14/00Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • C07K14/415Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from plants
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/63Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
    • C12N15/79Vectors or expression systems specially adapted for eukaryotic hosts
    • C12N15/82Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
    • C12N15/8241Phenotypically and genetically modified plants via recombinant DNA technology
    • C12N15/8261Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
    • C12N15/8271Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance
    • C12N15/8279Phenotypically 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 biotic stress resistance, pathogen resistance, disease resistance
    • C12N15/8286Phenotypically 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 biotic stress resistance, pathogen resistance, disease resistance for insect resistance
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12QMEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
    • C12Q1/00Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
    • C12Q1/68Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving nucleic acids
    • C12Q1/6876Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes
    • C12Q1/6888Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes for detection or identification of organisms
    • C12Q1/6895Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes for detection or identification of organisms for plants, fungi or algae
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A40/00Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
    • Y02A40/10Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
    • Y02A40/146Genetically Modified [GMO] plants, e.g. transgenic plants

Definitions

  • the present invention relates to genetic engineering of plants and in particular to an insect resistant transgenic cotton plant. Specifically, the invention relates to a cotton plant designated COT202 which comprises a VIP3A gene. It also relates to methods of detecting material derived from the plant.
  • Plant pests are a major factor in the loss of the world's important agricultural crops. About $8 billion is lost every year in the U.S. due to infestations of plants by non-mammalian pests including insects. In addition to losses in field crops, insect pests are also a burden to vegetable and fruit growers, to producers of ornamental flowers, and to home gardeners.
  • Insect pests are mainly controlled by intensive applications of chemical pesticides, which are active through inhibition of insect growth, prevention of insect feeding or reproduction, or cause death. Good control of insect pests can thus be reached, but these chemicals can sometimes also affect other, beneficial insects.
  • Another problem resulting from the wide use of chemical pesticides is the appearance of resistant insect varieties. This has been partially alleviated by various resistance management practices, but there is an increasing need for alternative pest control agents.
  • Biological pest control agents such as Bacillus thuringiensis strains expressing pesticidal toxins like ⁇ -endotoxins, have also been applied to crop plants with satisfactory results, offering an alternative or compliment to chemical pesticides.
  • genes coding for some of these ⁇ -endotoxins have been isolated and their expression in heterologous hosts has been shown to provide another tool for the control of economically important insect pests.
  • insecticidal toxins such as Bacillus thuringiensis ⁇ -endotoxins in transgenic plants, has provided efficient protection against selected insect pests, and transgenic plants expressing such toxins have been commercialised, allowing farmers to reduce applications of chemical insect control agents.
  • VTPs vegetable insecticidal proteins
  • the VIP3A toxins possess insecticidal activity against a wide spectrum of lepidopteran insects including but not limited to fall armyworm, Spodoptera frugiperda, black cutworm, Agrotis ipsilon, sugarcane borer, Diatraea saccharalis, and lesser cornstalk borer, Elasmopalpus lignosellus, and when expressed in transgenic plants, for example cotton, confer protection on the plant from insect feeding damage.
  • the cotton family genus Gossypium, a member of the Malvaceae, consists .of 39 species, of which Gossypium hirsutum is the most commonly cultivated species. Three other species are also cultivated: G. arbo ' reum, G. barbadense, and G. herbaceum. These cultivated species are grown primarily for the seed hairs that are made into textiles. Cotton is suitable as a textile fibre because the mature dry hairs twist in such a way that fine strong threads can be spun from them. Other products, such as cottonseed oil, cake, and cotton linters are by-products of fibre production.
  • insect pests of cotton include Beet armyworm- (Spodoptera exigua), Boll weevil (Anthonomus grandis grandis), Cabbage looper (Trichoplusia ni), Clouded plant bug (Neurocolpus nubilus), Cotton aphid (Aphis gossypii), Cotton bollworm (Heliocoverpa zed), Cutworms (Feltia subterranea, Peridroma saucia, Agrotis ipsilon), European corn borer (Ostrinia nubilalis), Fall armyworm (Spodoptera frugiperda), Seedling thrips (Frankliniella spp.), Soybean looper (Pseudoplusia includens), Stink bugs (Nezara viridula, Acrosternum h ⁇ lare
  • Transformation and regeneration of cotton plants is now a well-established procedure, typically based on Agrobacterium tumefaciens mediated transfer of foreign DNA into cotton plant parts and regeneration of said plant parts in tissue culture into fully fertile, transgenic cotton plants.
  • Agrobacterium tumefaciens mediated transfer of foreign DNA into cotton plant parts and regeneration of said plant parts in tissue culture into fully fertile, transgenic cotton plants.
  • An insect resistant cotton plant could reduce the need to apply chemical pesticides, which may be detrimental to other, beneficial insects and the environment.
  • COT202 an insect resistant transgenic cotton event
  • COT202 event in the context of this application refers to the original insecticidal transgenic cotton plant described herein.
  • Insecticidal refers to any inhibitory effect on an insect, including but not limited to reduced feeding, retarded growth, reduced fecundity, paralysis or death.
  • Flucundity comprises all aspects related to reproduction such as reproductive ability, reproductive frequency and number of offspring.
  • any plant material derived from the COT202 event including seeds.
  • the COT202 event exhibits a novel genotype comprising at least one expression cassette.
  • the cassette comprises a suitable promoter for expression in plants operably linked to a gene that encodes a VIP3A insecticidal toxin, useful in controlling a wide spectrum of lepidopteran insect pests, and a suitable polyadenylation signal.
  • Suitable promoters may be isolated from, inter alia, plants. Numerous plant promoters have been isolated and characterised including constitutive, switchable and/or tissue specific promoters.
  • Suitable promoters may be selected from the following, non-limiting group: CaMV35S, FMV35S, Ubiquitin, Act2, NOS, OCS, Cestrum yellow leaf curl virus promoter, Patatin, E9, alcA/alcR switch, GST switch, RMS switch, oleosin, Gelvin, ribulose bisphosphate carboxylase-oxygenase small sub-unit, actin 7, MR7 promoter (maize), Gos 9 (rice), GOS2 promoters, MasOcs (or super promoter),'RolD promoter (Agrobacterium rhizogenes), SuperMAS promoter, and Suc2 promoter (Arabidopsis).
  • the promoter is the Ubiquitin promoter, UBQ3, from Arabidopsis thaliana. Additional elements such as enhancer sequences may also be incorporated into the expression cassette in order to boost levels of gene expression, for example transcriptional or translational enhancers, such as tobacco etch virus (TEV) translation activator, CaMN35S enhancer, and FMV35S enhancer. Alternatively it may be desirable to include a targeting sequence, for example, to direct transportation of the VTP3A toxin to a particular cellular compartment. For example if it is desired to provide the protein outside of the cell then an extracellular targeting sequence may be ligated to the polynucleotide encoding the VIP protein.
  • TMV tobacco etch virus
  • targeting include targeting to a specific intracellular organelle or compartment, for example to the endoplasmic reticulum using a 'KDEL' retention sequence.
  • Numerous polyadenylation signals have been isolated and characterised. Examples of suitable polyadenylation signals functional in plants include that from the nopaline synthase gene (nos) of Agrobacterium tumefaciens, from the proteinase inhibitor II gene and from the alpha-tubulin gene (EP-A 652,286). In one embodiment of the present invention, the polyadenylation signal is that from the nos gene of Agrobacterium tumefaciens.
  • the polynucleotide encoding the VIP3A protein may also be codon-optimised or otherwise altered to enhance for example, transcription once it is incorporated into plant material.
  • codon optimisation may also be used to alter the predicted secondary structure of the RNA transcript produced in any transformed cell, or to destroy cryptic RNA instability elements present in the unaltered transcript, thereby increasing the stability and/or availability of the transcript in the transformed cell (Abler and Green (1996) Plant Molecular Biology (32) pp.63-78).
  • a second cassette that comprises a gene which, when expressed, can be used as a selectable marker.
  • selectable markers Numerous selectable markers have been characterised, including some that confer tolerance to antibiotics and others that confer tolerance to herbicides. Examples of suitable selectable marker genes include those that confer tolerance to hygromycin, kanamycin or gentamycin. Further suitable selectable markers include genes that confer resistance to herbicides such as glyphosate-based herbicides or resistance to toxins such as eutypine. Other forms of selection are also available such as hormone based selection systems such as the Multi Auto Transformation (MAT) system of Hiroyrasu Ebinuma et al. (1997) PNAS Vol.
  • MAT Multi Auto Transformation
  • the selectable marker gene is one that confers tolerance to hygromycin.
  • This second expression cassette is useful for selecting transformants during and following plant transformation. Optionally, it may be segregated away from the COT202 event precursor after transformation to leave the COT202 event itself. The COT202 event per se does not comprise a selectable marker cassette. Further expression cassettes are optionally comprised in the COT202 event. For example these may provide other desirable benefits such as herbicide resistance.
  • the expression cassettes may be introduced into the plant on the same or different plasmids. If the expression cassettes are present on the same plasmid and introduced into the plant via an Agrobacterium-mediated transformation method, they may be present within the same or different T-DNA regions. In one embodiment of the present invention, two expression cassettes are present on different T-DNA regions within the same plasmid.
  • a polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 1.
  • said polynucleotide comprises at least 18 contiguous nucleotides from SEQ ID NO: 1.
  • said polynucleotide comprises at least 20 contiguous nucleotides from SEQ ID NO: 1.
  • said polynucleotide comprises at least 22 contiguous nucleotides from SEQ ID NO: 1.
  • said polynucleotide comprises at least 23 contiguous nucleotides from SEQ ID NO: 1.
  • polynucleotide comprises at least 24 contiguous nucleotides from SEQ ID NO: 1. In a further embodiment said polynucleotide comprises at least 25 contiguous nucleotides from SEQ ID NO: 1. In a still further embodiment there is provided a polynucleotide comprising the sequence of SEQ ID NO: 1.
  • a polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 2. In one embodiment said polynucleotide comprises at least 18 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 20 contiguous nucleotides from SEQ ID NO: 2. In a still further embodiment said polynucleotide comprises at least 22 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 23 contiguous nucleotides from SEQ ID NO: 2.
  • polynucleotide comprises at least 24 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 25 contiguous nucleotides from SEQ ID NO: 2. In a still further embodiment there is provided a polynucleotide comprising the sequence of SEQ ID NO: 2.
  • polynucleotide as described above further comprising the sequence of SEQ ID NO: 7.
  • polynucleotide as described above further comprising the sequence of SEQ ID NO: 8.
  • a plant comprising a polynucleotide which comprises at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2.
  • said plant comprises at least 18 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2.
  • said plant comprises at least 20 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2.
  • said plant comprises at least 22 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2.
  • said plant comprises at least 23 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a still further embodiment said plant comprises at least 24 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment said plant comprises at least 25 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In yet a further embodiment said plant comprises the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment, said plant additionally comprises the sequence of SEQ ID NO: 7. In a further embodiment still, said plant additionally comprises the sequence of SEQ ID NO: 8. In one embodiment of the present invention, said plant is a cotton plant. In a further embodiment, said plant is an insecticidal cotton plant which is the COT202 event, or a plant derived therefrom.
  • Agrobacterium-medi&ted transformation is a commonly used method for transformation of dicotyledonous plants.
  • the foreign DNA to be introduced into the plant. is cloned into a binary vector in between left and right border consensus sequences. This is the T-DNA region.
  • the binary vector is transferred into an Agrobacterium cell, which is subsequently used to infect plant tissue.
  • the T-DNA region of the vector comprising the foreign DNA is inserted into the plant genome.
  • the marker gene cassette and trait gene cassette may be present on the same T-DNA region, different T-DNA regions in the same vector, or even different T-DNA regions in different vectors. In one embodiment of the present invention, the cassettes are present on different T-DNA regions in the same vector.
  • direct DNA transfer can be used to introduce the DNA directly into a plant cell.
  • One suitable method of direct transfer may be bombardment of plant cells with a vector comprising the DNA for insertion using a particle gun (particle-mediated biolistic transformation); another established method, 'whiskers', involves coating the DNA onto silicon carbide fibres onto which cells are impaled.
  • Other methods for transforming plant cells include protoplast transformation (optionally in the presence of polyethylene glycols); sonication of plant tissues, cells or protoplasts in a medium comprising the polynucleotide or vector; micro-insertion of the polynucleotide or vector into plant material (optionally employing the known silicon carbide "whiskers” technique), electroporation and the like.
  • transgenic plants Following transformation, transgenic plants must be regenerated from the transformed plant tissue, and progeny possessing the foreign DNA selected using an appropriate marker such as resistance to hygromycin.
  • an appropriate marker such as resistance to hygromycin.
  • the skilled man is familiar with the composition of suitable regeneration media.
  • the selectable marker can be segregated away from transgenic events by conventional plant breeding methods, thus resulting in, for example, the COT202 event.
  • a plant of the invention has an insecticidal effect on insects from one or more species from the group comprising Heliothis sp., Helicoverpa sp. and Spodoptera sp. which may infest it.
  • "Infest” as used herein refers to attack, colonisation, feeding or damage in any way by one or more insects.
  • the plant of the present invention will provide a self-defence mechanism against infestation by pest insects such as Helicoverpa zea (cotton boll worm).
  • pest insects such as Helicoverpa zea (cotton boll worm).
  • the present invention is not limited to the COT202 event itself, but is further extended to include any plant material derived therefrom, including seeds in so far as they contain at least one of the present inventive polynucleotides.
  • the present invention includes, but is not limited to plants that are derived from a breeding cross with the COT202 event or a derivative therefrom by conventional breeding or other methods.
  • the invention also includes plant material derived from the COT202 event that may comprise additional, modified or fewer polynucleotide sequences compared to the COT202 event or exhibit other phenotypic characteristics. For example it may be desirable to transform plant material derived from the COT202 event to generate a new event that possesses an additional trait, such as a second insect resistance gene. This process is known as gene stacking.
  • the second insect resistance gene may encode, for example insecticidal lectins, insecticidal protease inhibitors and insecticidal proteins derived from species of the
  • the second insect resistance gene encodes an insecticidal gene from Bacillus thuringiensis.
  • the second insect resistance gene encodes a Cry gene from the bacterium Bacillus thuringiensis, which Cry gene produces a toxin with a different mode of action or binding site in the insect gut to VIP for the control of different insect species.
  • the Cry gene may, for example, be Cryl Ab.
  • the present invention further provides plant material derived from the COT202 event which possesses an additional trait such as herbicide resistance, nematode resistance or fungal resistance.
  • said additional trait is herbicide resistance.
  • the herbicide resistance trait may be provided, for example, by a herbicide degradation enzyme, or a target-site specific resistant enzyme.
  • said herbicide resistance trait provides resistance to a herbicide which comprises glyphosate acid or an agriculturally acceptable salt thereof.
  • said herbicide resistance trait is provided by a gene encoding EPSP synthase or a mutant thereof.
  • the present invention further provides a method of controlling insects comprising providing the COT202 event or plant material derived from the COT202 event at a locus where said insects feed.
  • the invention yet further provides a method of controlling insects comprising providing the COT202 event or plant material derived from the COT202 event at a locus where said insects feed, and applying other agrochemicals to said plant material such as herbicides, fungicides and other insecticidal compounds including other insecticidal proteins.
  • Examples of possible insecticidal compounds include insecticidal lectins, insecticidal protease inhibitors and insecticidal proteins derived from species of the Bacillus thuringiensis, Xenorhabdus nematophil ⁇ s, or Photorabdus luminescens.
  • Examples of possible chemicals include pyrethroids, carbamates, imidacloprid, organochlorines, and macromolecules such as spinosad, abamectin or emamectin.
  • a method of detecting the COT202 event or plant material derived from the COT202 transgenic event comprising obtaining a sample for analysis; extracting DNA from the sample; providing a pair of primers designed to bind to a polynucleotide comprising at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2; amplifying the region which lies between the sites at which the primers bind; and detecting the presence of the amplification product.
  • Suitable pairs of primers for use in this method of detection can be designed using parameters well known to those skilled in the art of molecular biology now that SEQ ID NOs 1 and 2 are made available.
  • one or both primers of the pair may be designed to be vector-specific, trait gene specific, promoter specific, and/or specific to the sequence of the junction between the inserted DNA and the genomic DNA.
  • one of the primers is designed to be specific to the inserted sequence, and the other primer specific to the genomic DNA upstream or downstream of the insertion site.
  • the sequence of said primers is depicted as SEQ ID NO: 3 and SEQ ID NO: 4.
  • the region amplified by said method is between 100 and 1000 base pairs in length.
  • the amplicon is between 100 and 400 base pairs in length.
  • the amplicon is 181 base pairs in length.
  • the amplicon is produced using the above method in conjunction with the primers of the sequence of SEQ ID NO: 3 and SEQ ID NO: 4, and is 181 base pairs, in length. These primers are specific for the COT202 event.
  • Alternative primers which may be used in combination to detect the COT202 event include SEQ ID NOs 13 and 14 which are specific for the COT202 event and produce an 86 bp amplicon, and SEQ ID NOs 5 and 6 which are specific for the VIP gene and produce a 556bp amplicon.
  • PCR polymerase chain reaction
  • An embodiment of the present invention employs variations of the PCR principle such as TaqManTM. This involves labelling at least one of the primers involved in the amplification process with a fluorescent dye. When unbound, the primer adopts a conformation such that no fluorescence can be detected. However, when the primer is bound to a piece of DNA, the conformation changes and fluorescence can be detected. In this way, the amplification process can be monitored in real-time, the intensity of fluorescence corresponding directly to the level of amplification.
  • Suitable primers for use in TaqManTM PCR are depicted as SEQ ID NOs 13 to 15. These may be used in conjunction with internal control primers such as those depicted as SEQ ID NOs 10 to 12.
  • TaqManTM analysis may be useful for example, for detecting the presence of the COT202 event in a background of wild type cotton, or for detecting the adventitious presence of COT202 in other germplasm.
  • Further embodiments of the present invention include, but are not limited to, RACE PCR.
  • a further embodiment of the present invention involves the use of multiplex PCR for distinguishing between homozygous COT202 plant material and heterozygous COT202 plant material.
  • This is known to those skilled in the art as zygosity testing, and involves the use of three PCR primers which bind to specific parts of the cotton genome and / or inserted DNA. The presence or absence of each of two amplification products of particular sizes indicates whether the test sample is heterozygous or homozygous for COT202.
  • Suitable primers for use in such a zygosity test are depicted as SEQ ID NOs 16 to 18. - l i ⁇
  • a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; providing a probe designed to bind to the complement of a polynucleotide which comprises at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2 when said polynucleotide is single stranded; hybridising said probe with the sample; and detecting whether the probe has hybridised, fti one embodiment, said probe comprises the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2.
  • said probe comprises SEQ ID NO: 7.
  • said probe consists of SEQ ID NO: 7.
  • said probe comprises SEQ ID NO: 8.
  • said probe consists of SEQ ID NO: 8.
  • the probe may be, for example, a PCR product or restriction digestion fragment.
  • the probe as described herein may be tagged with a fluorescent, radioactive, enzymatic or other suitable label to enable hybridisation to be detected. The skilled man will know how to design suitable probes, now that he has the benefit of the present disclosure.
  • a method of hybridising a probe to the sample under stringent conditions and detecting whether the probe has hybridised comprising, for example: hybridisation at a temperature of about 60°C in a solution containing 6 x SSC, 0.01% SDS and 0.25% skimmed milk powder, followed by rinsing at the same temperature in a solution containing 1 x SSC and 0.1% SDS.
  • More stringent hybridisation conditions may comprise: hybridisation at a temperature of about 65°C in a solution containing 6 x SSC, 0.01% SDS and 0.25% skimmed milk powder, followed by rinsing at the same temperature in a solution containing 0.2 x SSC and 0.1% SDS.
  • Suitable techniques for detecting plant material derived from the COT202 event based on the hybridisation principle include, but are not limited to Southern Blots, Northern Blots and in-situ hybridisation. The skilled man is familiar with techniques such as these. Typically, they involve incubating a probe with a sample, washing to remove unbound probe, and detecting whether the probe has hybridised. Said detection method is dependent on the type of tag attached to the probe - for example, a radioactively labelled probe can be detected by exposure to and development of x-ray film. Alternatively, an enzymatically labelled probe may be detected by conversion of a substrate to effect a colour change.
  • a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; providing an antibody or binding protein designed to bind to a VIP protein contained within a plant comprising at least 17 contiguous nucleotides from SEQ ID NO: 1 and / or SEQ ID NO: 2; incubating said antibody or binding protein with the sample; and detecting whether the antibody or binding protein has bound.
  • said VIP protein comprises the sequence of SEQ ID NO: 9.
  • Suitable methods of detecting plant material derived from the COT202 event based on said antibody binding include, but are not limited to Western Blots, Enzyme-Linked lmmunoSorbent Assays (ELISA) and SELDI mass spectrometry.
  • ELISA Enzyme-Linked lmmunoSorbent Assays
  • SELDI mass spectrometry SELDI mass spectrometry.
  • Typical steps include incubating a sample with an antibody that binds to the VIP protein, washing to remove unbound antibody, and detecting whether the antibody has bound. Many such detection methods are based on enzymatic reactions - for example the antibody may be tagged with an enzyme such as horse radish peroxidase, and on application of a suitable substrate, a colour change detected.
  • Suitable antibodies may be monoclonal or polyclonal.
  • a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; making a protein extract of the sample; providing a test strip designed to detect the presence of a VIP protein present within the sample; incubating the test strip with the sample; and detecting whether VIP protein is present.
  • said VIP protein comprises the sequence of SEQ ID NO: 9.
  • An alternative antibody-based detection method for COT202 uses of dipsticks or test strips. Typical steps include incubating a test strip with a sample and observing the presence or absence of coloured bands on the test strip. The coloured bands are indicative of the presence of a protein in the sample. Such dipstick or test strip tests are protein specific, and may be used for rapid testing of samples in the field.
  • a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; subjecting one or more insects of the species Spodoptera frugiperda (susceptible to VTP3A) to the sample; subjecting one or more insects of species Ostrinia nubilalis (not susceptible to VD?3 A) to the sample as a control; detecting whether the sample has an insecticidal effect on insects from each species; and comparing the results with an authentic COT202 bioassay profile. The results are compared against an authentic
  • COT202 bioassay profile that is produced using insects of the same condition (including insect age and culture conditions) which have been subjected to the same dose and type of COT202 plant material (including plant age, plant variety and tissue type) and where the insecticidal effect is detected the same length of time after subjecting the insects to the COT202 sample.
  • Detection of an insecticidal effect may be, for example, an assessment of insect mortality, or of the growth stage of the insects.
  • Spodoptera frugiperda is a positive control for COT202 as it is susceptible to a suitable dose of VTP3A
  • Ostrinia nubilalis is a negative control for COT202 as it is not susceptible to a suitable dose of VIP3A.
  • Alternative insect species that are either susceptible or not susceptible to VIP3A may be substituted in an assay as described above as appropriate, provided that the results are compared against an authentic profile generated using the same insect species.
  • the method of detecting plant material derived from the COT202 event includes but is not limited to leaf-feeding bioassays in which a leaf or other suitable plant part from the COT202 event or any plant material derived from the COT202 event, is infested with one or more pest insects. Detection may be through assessment of damage to the leaf or plant part after set time periods, assessment of mortality or another insecticidal effect on the insects.
  • Alternative plant parts which may be used for such bioassays include bolls and squares.
  • Such bioassays may, for example, be carried out in the laboratory, field, or glasshouse, and may be subject to natural or artificial insect infestation.
  • kits of parts comprising a means for detecting the presence in a sample of plant material derived from the COT202 event.
  • said kit of parts comprises a means for detecting the presence in a sample of a polynucleotide comprising at least 17 contiguous nucleotides from the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2, or a protein encoded by a polynucleotide as described above, or a VIP protein, fti an embodiment of the present invention
  • said kit of parts may comprise DNA amplification-detection technology such as PCR or TaqManTM.
  • said kit of parts may comprise probe hybridisation- detection technology such as Southern Blots, Northern Blots or in-situ Hybridisation.
  • said kit of parts may comprise antibody binding-detection technology such as Western Blots, ELISA's, SELDI mass spectrometry or test strips, fti a further embodiment of the present invention, said kit of parts may comprise insect bioassay-detection technology such as leaf feeding bioassays or mortality bioassays.
  • said kit of parts may comprise any combination of the afore-mentioned detection technologies.
  • said kit of parts may comprise in the form of instructions one or more of the methods described above.
  • polynucleotides of the invention as described above for detecting the COT202 event.
  • said polynucleotides may be used in a method for detecting the COT202 event as described above.
  • SEQ ID NO 1 Polynucleotide sequence which extends across the junction where the 5' end of the COT202 insert is inserted into the cotton genome in event COT202.
  • SEQ ID NO 2 Polynucleotide sequence which extends across the junction where the 3' end of the COT202 insert is inserted into the cotton genome in . event COT202.
  • SEQ ID NOs 3 - 6 Polynucleotide sequences suitable for use as primers in the detection of the COT202 event.
  • SEQ ID NOs 7 - 8 Polynucleotide sequences suitable for use as probes in the detection of the COT202 event.
  • SEQ ID NO 9 Amino acid sequence of the VTP3A toxin protein.
  • SEQ ID NOs 10 - 15 Polynucleotide sequences suitable for use as TaqManTM primers in the detection of the COT202 event.
  • SEQ ID NOs 16 - 18 Polynucleotide sequences suitable for use as primers in the detection of the COT202 event via zygosity testing.
  • the vector included a selectable marker cassette comprising a Ubiquitin (UBQ3) promoter, the UBQ3 intron, a gene sequence which encodes a protein conferring resistance to hygromycin, and a nos polyadenylation sequence.
  • the vector also included the expression cassette of the target gene, which cassette comprised a Ubiquitin (UBQ3) promoter, the UBQ3 intron, a sequence encoding the VTP3A gene that had been codon optimised for expression in maize, and a nos polyadenylation sequence.
  • the selectable marker cassette and VIP3 A containing cassette were cloned between the left and right border sequences within different T-DNA regions of vector pNOVl 03.
  • the vector also comprised a gene conferring resistance to an antibiotic, kanamycin, for prokaryotic selection.
  • the vector was transformed into Agrobacterium tumefaciens strain GV3101 using standard Agrobacterium transformation techniques, and transformed cells selected through their resistance to kanamycin.
  • COT202 event was produced by Agrobacterium-mediated transformation of Gossypium hirsutum L. cv Coker 312.
  • Coker 312 seeds were sown in the glasshouse. Tender petioles were cut from 3 to 5 weeks old plants, and steriUzed by immersion in 70% ethanol. The petioles were then immersed in a 5% Clorox + 2ml/L Tween 20 solution for 20 minutes. Petioles were washed 3 times in ddH 2 O. The ends of petioles were cut off, and petioles transferred to petiole pre-culture medium (4.3g/L MS salts, 200X B5 vitamins, 30g/L glucose, 2.4g/L phytogel, pH 7.0) and allowed to pre-culture in the light at 30°C for 3 days.
  • pre-culture medium 4.3g/L MS salts, 200X B5 vitamins, 30g/L glucose, 2.4g/L phytogel, pH 7.0
  • calli were the size of a garden pea, they were removed from the explants and transfe ⁇ ed to fresh MMSl medium containing 500mg/L Cefotaxime and lOmg/L Hygromycin, and maintained in tissue culture by subculturing every 4 weeks as appropriate.
  • Somatic embryos formed within 1 to 2 months. Somatic embryos were transfe ⁇ ed to EG (embryoid germimation) medium (10X EG stock (consisting of lx 10L pack of Musashige and Skoog Modified Basal Salt Mixture (Sigma), 19g KNO3, 50ml 200X B5 vitamins, water to 1L), lg/L glutamine, 0.5g/L asparagine, recipe), and sub-cultured to fresh EG medium every 3 to 4 weeks.
  • EG embryoid germimation
  • Putative transgenic plants were screened by PCR for the presence of the VIP3A gene. Positive events were identified and screened using insect bioassays for insecticidal activity against Fall Armyworm (Spodoptera frugiperda) (see Example 7). Insecticidal lines were characterized for copy number by TaqManTM analysis (see Example 2). Tl seed from several events were observed in a field trial for insect resistance and agronomic quality. Two events, COT202 and COT203, were chosen based on having a single copy of the transgene, good protein expression as identified by ELISA (see Example 4), good insecticidal activity against Cotton Boll Worm (Helicoverpa zed) and field performance. The hygromycin selectable marker cassette was segregated away using conventional plant breeding to result in the COT202 event and the COT203 event.
  • TaqManTM PCR reactions were setup using a standard reaction mix comprising: 5ul 2x Jumpstart Master Mix for Q-PCR (Sigma, #P2893), supplemented with 15mM MgCl 2 and 200nM Strata-ROX 0.2ul 50x FAM primer / probe mix 0.2ul 50x VIC primer / probe mix 1.6ul Water.
  • primer / probe mixes comprised 45ul of each primer at a concentration of ImM, 50ul of the probe at a concentration of lOOuM and 860ul nuclease free water, and were stored in an amber tube at 4°C.
  • suitable primer / probe sequence combinations which were used are:
  • Example 3 COT202 Detection via Multiplex PCR Zygosity Test 3.1 Genomic DNA extraction Genomic DNA from COT202 was extracted as described in Example 2.1. 3.2 Multiplex PCR PCR primers were designed to bind to cotton genomic DNA sequence upstream of the site at which the COT202 cassette inserted (SEQ ID NO: 16); the cotton genomic DNA sequence downstream of the site at which the COT202 cassette inserted (SEQ ID NO: 17); and the COT202 cassette sequence itself (SEQ ID NO: 18).
  • a 25ul PCR reaction was set up for each sample to be tested as follows: lx JumpState ReadyMix REDTaq PCR (Sigma P-l 107) 0.5uM primer 1 (SEQ ID NO: 16) 0.5uM primer 2 (SEQ ID NO: 17) 0.5uM primer 3 (SEQ ID NO: 18) 0.2% BSA 20 ng genomic DNA ddH2O to 25ul
  • the PCR reactions were heated in a thermocycler at 94°C for 5 minutes, followed by 30 cycles as follows: 94°C for 30 seconds, 55°C for 45 seconds, 72°C for 1 minute. The reaction was completed by heating at 72°C for 5 minutes.
  • the COT202 event can be detected in a simple PCR reaction using the primers depicted as SEQ ID NO: 3 and 4, SEQ LD NO: 13 and 14, or SEQ ID NO: 16 and 18.
  • the composition of the PCR reaction mixture is the same as described in example 3.2 above.
  • the PCR reactions are heated in a thermocycler at 94°C for 5 minutes, followed by 30 cycles as follows: 94°C for 30 seconds, 55°C for 30 seconds, 72°C for 20 seconds. The reaction is completed by heating at 72°C for 5 minutes.
  • a DNA fragment of 18 lbp, 86bp or 18 lbp in size respectively indicates the presence of the COT202 event.
  • nuclei lysis buffer (0.14M sorbitol, 0.22M Tris-Cl pH8, 0.8M NaCl, 0.22M Na 2 EDTA, 0.8%w/v CTAB, 1% Sarkosyl, 1% Polyvinyl-py ⁇ olidone-10, 0.1% ascorbic acid, 0.2% B-mercaptoethanol, 5 ⁇ g/ml proteinase K
  • nuclei lysis buffer 0.14M sorbitol, 0.22M Tris-Cl pH8, 0.8M NaCl, 0.22M Na 2 EDTA, 0.8%w/v CTAB, 1% Sarkosyl, 1% Polyvinyl-py ⁇ olidone-10, 0.1% ascorbic acid, 0.2% B-mercaptoethanol, 5 ⁇ g/ml proteinase K
  • the aqueous layer was removed into a new tube containing lO ⁇ l RNase A (lOmg sigma R4642), and the tube incubated for 30 minutes at 37°C. The chloroform and centrifugation steps were repeated once.
  • the aqueous layer was removed into a new tube containing 10ml propan-2-ol. After approximately 15 minutes incubation at room temperature, a gelatinous precipitate was observed in the middle of the tube. The tube was mixed gently to precipitate out the DNA.
  • the DNA was spooled out using a sterile loop into a falcon tube containing 70% ethanol. The DNA was air-dried to remove the ethanol and resuspended in 200-400 ⁇ l TE.
  • 2-3 young cotton leaves are ground to a paste in a mortar. and pestle at room temperature, with 2ml of grinding buffer (lOOmM NaOAc pH 4.8, 50mM EDTA pH8.0, 500mM NaCl, 2% PVP (10,000 MW), 1.4 % SDS) and a little sand.
  • the ground tissue is transfe ⁇ ed to a 15ml falcon tube, and the remnants in the mortar rinsed with 1 ml of grinding buffer into the tube.
  • the sample is incubated at 65°C for 15 minutes, shaking occasionally. 4ml 10M ammonium acetate is added, and the sample 5 mixed well and incubated at 65 °C for 10 minutes to precipitate proteins.
  • the samples are incubated at room temperature at 4600 rpm for 10 minutes.
  • the aqueous phase is transfe ⁇ ed to a fresh 15ml tube.
  • the supernatant is transfe ⁇ ed to fresh tubes, 1/10 volume 3M NaOAc (pH4.8) added and mixed, and then one volume cold isopropanol is added.
  • the sample may be incubated at room temperature for up to 30 20 minutes to precipitate the DNA.
  • the DNA is spooled out and resuspended in 70% ethanol.
  • the DNA is air-dried to remove the ethanol and resuspended in 200ul water.
  • a Southern Blot was prepared as follows: A glass plate was placed over a tray containing 20X SSC and a strip of 3M paper was placed onto the glass plate such that both ends dipped into the 20X SSC solution (to act as a wick). A piece of 3M paper the same size as the gel was placed on the wick, and the gel placed on this. Strips of nescofiftn were laid around the edges of the gel to form a seal. A Hybond membrane was placed on top of the gel, followed by two further pieces of 3M paper. Throughout the assembly of the blot, care was taken to ensure that no air bubbles were trapped between the membrane, gel and 3M paper. A 5cm-10cm stack of absorbent paper towels was placed on top of the 3M paper and held in place with a weight.
  • the DNA was allowed to transfer to the Hybond membrane overnight. After transfer the Southern Blot stack was disassembled and the DNA was bound to the membrane via UV cross-linking.
  • a suitable DNA probe was prepared by PCR or restriction digest of binary plasmid. 25ng probe DNA in 45ul TE was boiled for 5 minutes, placed on ice for 5 minutes then transfe ⁇ ed to a Rediprime II (Amersham Pharmacia Biotech, #RPN1633) tube. After addition of 5ul P32-labelled dCTP to the Rediprime tube, the probe was incubated at 37°C for 1 hour . The probe was purified by centrifugation through a microspin G-50 column (Amersham Pharmacia Biotech, #27-5330-01) according to the manufacturers instructions to remove unincorporated dNTPs.
  • the activity of the probe was measured roughly by comparing the amount of radioactive component remaining in the column to the amount in the sample tube, with a ratio of at least 50:50 being acceptable.
  • the Hybond membrane was pre-hybridised by wetting with 40 ml pre-warmed Rapid-Hyb buffer (Amersham- Pharmacia), at 65°C for 30 minutes.
  • the labelled probe was boiled for 5 minutes, and placed on ice for 5 minutes.
  • An appropriate amount of probe (1 million counts per 1ml pre-hybridisation buffer) was added to the pre-hybridisation buffer and hybridisation occurred at 65°C overnight.
  • the hybridisation buffer was discarded, and following a rinse with 50ml 2xSSC/l%SDS solution the membrane washed in 150ml 2xSSC/l%SDS solution at 65°C for 30-45 minutes. This process was repeated twice with 0.1xSSC/l%SDS solution . The membrane was exposed to a phosphor screen or X-ray film to detect where the probe had bound.
  • the sample was vortexed and homogenised using a Brinkman PT 10/35 Polytron equipped with a PTA 10TS foam- reducing generator, until the mixture became liquefied. Extracts were centrifuged at 10,000 x g for 15 minutes. The protein extract supernatant was stored at 2-8°C.
  • the ELISA procedure used standard techniques as follows. A 96-well plate was soaked in ethanol for 2 hours, and air-dried. The plate was coated with 50ul goat anti-VTP3 A antibody per well and incubated overnight at 2-8°C. After washing three times with IX ELISA wash solution (lOOmM Tris, 0.5% Tween-20, 75mM NaCl, ⁇ H8.5), the plate was dried briefly by tapping upside down on a paper towel. 150ul blocking solution (1 OmM NaPO 4 , 140mM NaCl, 1% BSA, 0.02% Sodium Azide, titrated to pH7.4 with monobasic NaPi and dibasic NaPi) was added to each well followed by incubation at room temperature for 45 minutes. The plate was washed 3 times as described above.
  • VIP3A standards and protein extract samples were applied to appropriate wells of the plate in triplicate, 50ul total volume per well.
  • the plate was incubated at 2-8°C for 1 hour 30 minutes, followed by room temperature for a further 30 minutes.
  • the plate was washed three times with ELISA wash solution, and then incubated at 35-39°C for 1 hour with 50ul rabbit anti-VTP3 A antibody per well.
  • the plate was washed three times with ELISA wash solution, and incubated at room temperature for 30 minutes with 50ul donkey anti-rabbit alkaline phosphatase per well. Following a further three washes with ELISA wash solution, 50ul phosphatase substrate solution was added per well and the plate incubated for 30 minutes at room temperature.
  • the reaction was stopped by addition of 50ul 3M NaOH per well.
  • the absorbance of the solution in each well was measured at 405mn using a Ceres 900C multiwell plate reader and the results analysed using KC3 Curve fitting software (Bio-Tek Instruments Inc.).
  • the concentration of VIP3A in the samples was calculated by reference to the VIP3A protein standards.
  • a piece of leaf tissue approximately 2 cm 2 was placed in a tube containing extraction buffer.
  • a plastic stirrer was used to extract protein from the tissue, by cutting into and mascerating the tissue.
  • test strip was placed into the tube and incubated for 5 to 10 minutes for the result to develop.
  • the test strip comprised a first band at which anti-VIP3A antibody was bound, and a second band at which a control antibody was bound.
  • a double red line in the result window of the test strip indicated that VTP3A was present.
  • the lower line indicated the presence of VTP3A protein while the upper line was a control indicating that the assay was working co ⁇ ectly.
  • Leaf assays were performed on Fall Army Worm (Spodoptera frugiperda), Cotton Boll Worm (Helicoverpa zed) and Tobacco Budworm (Heliothis virescens) as follows: Pads were soaked with 300ul to 500ul distilled water and placed into Gelman dishes. Leaf pieces measuring between approximately 0.5 square inches and 0.75 square inches were excised from cotton plants 8 to 12 inches in height, and placed on the pads. Between 8 and 10 insect larvae were placed in each dish and a lid fitted. The dishes were incubated at 28°C. On the third and sixth days after infestation, damage to the leaf in each dish was scored and compared with the control plants.
  • the experiment was incubated at room temperature for approximately 3 weeks. The bolls were then cut open to determine damage. Damage to the boll was compared to the control samples.
  • Terminal leaves were snap-frozen on dry-ice at time of picking and lyophilised overnight.
  • the freeze dried tissue was ground in a mortar and pestle to a fine powder and resuspended in 0.2% agar solution to make an 8% (0.08g/ml) suspension of leaf powder.
  • the suspension was overlaid on top of artificial insect diet in 96-well plates and left to dry. A single neonate insect larva was introduced into each well and the plates sealed. The plates were incubated at 28°C. On the sixth day after infestation, larval mortality was scored and compared with control samples.

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Abstract

The present application relates an insect resistant transgenic cotton plant. In particular, it relates to a specific event, designated COT202. The application also relates to polynucleotides which are characteristic of the COT202 event, plants comprising said polynucleotides, and methods of detecting the COT202 event.

Description

INSECT RESISTANT COTTON PLANTS AND METHODS OF DETECTING THE SAME
The present invention relates to genetic engineering of plants and in particular to an insect resistant transgenic cotton plant. Specifically, the invention relates to a cotton plant designated COT202 which comprises a VIP3A gene. It also relates to methods of detecting material derived from the plant.
Plant pests are a major factor in the loss of the world's important agricultural crops. About $8 billion is lost every year in the U.S. due to infestations of plants by non-mammalian pests including insects. In addition to losses in field crops, insect pests are also a burden to vegetable and fruit growers, to producers of ornamental flowers, and to home gardeners.
Insect pests are mainly controlled by intensive applications of chemical pesticides, which are active through inhibition of insect growth, prevention of insect feeding or reproduction, or cause death. Good control of insect pests can thus be reached, but these chemicals can sometimes also affect other, beneficial insects. Another problem resulting from the wide use of chemical pesticides is the appearance of resistant insect varieties. This has been partially alleviated by various resistance management practices, but there is an increasing need for alternative pest control agents. Biological pest control agents, such as Bacillus thuringiensis strains expressing pesticidal toxins like δ-endotoxins, have also been applied to crop plants with satisfactory results, offering an alternative or compliment to chemical pesticides. The genes coding for some of these δ-endotoxins have been isolated and their expression in heterologous hosts has been shown to provide another tool for the control of economically important insect pests. In particular, the expression of insecticidal toxins such as Bacillus thuringiensis δ-endotoxins in transgenic plants, has provided efficient protection against selected insect pests, and transgenic plants expressing such toxins have been commercialised, allowing farmers to reduce applications of chemical insect control agents.
Recently, a new family of insecticidal proteins produced by Bacillus sp. during the vegetative stages of growth (vegetative insecticidal proteins (VTPs)) has been identified. U.S. Patents 5,877,012, 6,107,279, and 6,137,033 describe vip3A toxin genes isolated from Bacillus species. The VIP3A toxins possess insecticidal activity against a wide spectrum of lepidopteran insects including but not limited to fall armyworm, Spodoptera frugiperda, black cutworm, Agrotis ipsilon, sugarcane borer, Diatraea saccharalis, and lesser cornstalk borer, Elasmopalpus lignosellus, and when expressed in transgenic plants, for example cotton, confer protection on the plant from insect feeding damage.
The cotton family, genus Gossypium, a member of the Malvaceae, consists .of 39 species, of which Gossypium hirsutum is the most commonly cultivated species. Three other species are also cultivated: G. arbo' reum, G. barbadense, and G. herbaceum. These cultivated species are grown primarily for the seed hairs that are made into textiles. Cotton is suitable as a textile fibre because the mature dry hairs twist in such a way that fine strong threads can be spun from them. Other products, such as cottonseed oil, cake, and cotton linters are by-products of fibre production.
Damage to cotton crops by insect pests throughout the world results in a significant yield loss each year. Effective control of these pests to minimise yield loss is of great economic importance. Examples of insect pests of cotton include Beet armyworm- (Spodoptera exigua), Boll weevil (Anthonomus grandis grandis), Cabbage looper (Trichoplusia ni), Clouded plant bug (Neurocolpus nubilus), Cotton aphid (Aphis gossypii), Cotton bollworm (Heliocoverpa zed), Cutworms (Feltia subterranea, Peridroma saucia, Agrotis ipsilon), European corn borer (Ostrinia nubilalis), Fall armyworm (Spodoptera frugiperda), Seedling thrips (Frankliniella spp.), Soybean looper (Pseudoplusia includens), Stink bugs (Nezara viridula, Acrosternum hϊlare, Euschistus servus), Tarnished plant bug (Lygus lineolaris), Tobacco budworm (Heliothis virescens) and Whiteflies (Trialeurodes abutilonea, Bemisia tabaci).
Transformation and regeneration of cotton plants is now a well-established procedure, typically based on Agrobacterium tumefaciens mediated transfer of foreign DNA into cotton plant parts and regeneration of said plant parts in tissue culture into fully fertile, transgenic cotton plants. There exists a requirement to generate a cotton plant that is insect resistant so that yield loss through damage to cotton crops by insect pests is reduced. An insect resistant cotton plant could reduce the need to apply chemical pesticides, which may be detrimental to other, beneficial insects and the environment. Further, it is desirable to provide an insect resistant plant that comprises a VIP gene, as an alternative to transgenic plants comprising crystal proteins from Bacillus thuringiensis. This may be of use in insect resistance management.
Therefore, the present invention relates to an insect resistant transgenic cotton event, designated COT202. It also relates to methods of detecting plant material derived therefrom. "COT202 event" in the context of this application refers to the original insecticidal transgenic cotton plant described herein. "Insecticidal" as used herein refers to any inhibitory effect on an insect, including but not limited to reduced feeding, retarded growth, reduced fecundity, paralysis or death. "Fecundity" comprises all aspects related to reproduction such as reproductive ability, reproductive frequency and number of offspring. Also embraced by this invention is any plant material derived from the COT202 event, including seeds.
The COT202 event exhibits a novel genotype comprising at least one expression cassette. The cassette comprises a suitable promoter for expression in plants operably linked to a gene that encodes a VIP3A insecticidal toxin, useful in controlling a wide spectrum of lepidopteran insect pests, and a suitable polyadenylation signal. Suitable promoters may be isolated from, inter alia, plants. Numerous plant promoters have been isolated and characterised including constitutive, switchable and/or tissue specific promoters. Suitable promoters may be selected from the following, non-limiting group: CaMV35S, FMV35S, Ubiquitin, Act2, NOS, OCS, Cestrum yellow leaf curl virus promoter, Patatin, E9, alcA/alcR switch, GST switch, RMS switch, oleosin, Gelvin, ribulose bisphosphate carboxylase-oxygenase small sub-unit, actin 7, MR7 promoter (maize), Gos 9 (rice), GOS2 promoters, MasOcs (or super promoter),'RolD promoter (Agrobacterium rhizogenes), SuperMAS promoter, and Suc2 promoter (Arabidopsis). In one embodiment of the present invention, the promoter is the Ubiquitin promoter, UBQ3, from Arabidopsis thaliana. Additional elements such as enhancer sequences may also be incorporated into the expression cassette in order to boost levels of gene expression, for example transcriptional or translational enhancers, such as tobacco etch virus (TEV) translation activator, CaMN35S enhancer, and FMV35S enhancer. Alternatively it may be desirable to include a targeting sequence, for example, to direct transportation of the VTP3A toxin to a particular cellular compartment. For example if it is desired to provide the protein outside of the cell then an extracellular targeting sequence may be ligated to the polynucleotide encoding the VIP protein. Other examples of targeting include targeting to a specific intracellular organelle or compartment, for example to the endoplasmic reticulum using a 'KDEL' retention sequence. Numerous polyadenylation signals have been isolated and characterised. Examples of suitable polyadenylation signals functional in plants include that from the nopaline synthase gene (nos) of Agrobacterium tumefaciens, from the proteinase inhibitor II gene and from the alpha-tubulin gene (EP-A 652,286). In one embodiment of the present invention, the polyadenylation signal is that from the nos gene of Agrobacterium tumefaciens.
According to the invention, the polynucleotide encoding the VIP3A protein may also be codon-optimised or otherwise altered to enhance for example, transcription once it is incorporated into plant material. Such codon optimisation may also be used to alter the predicted secondary structure of the RNA transcript produced in any transformed cell, or to destroy cryptic RNA instability elements present in the unaltered transcript, thereby increasing the stability and/or availability of the transcript in the transformed cell (Abler and Green (1996) Plant Molecular Biology (32) pp.63-78).
In a precursor to the COT202 event, a second cassette is present that comprises a gene which, when expressed, can be used as a selectable marker. Numerous selectable markers have been characterised, including some that confer tolerance to antibiotics and others that confer tolerance to herbicides. Examples of suitable selectable marker genes include those that confer tolerance to hygromycin, kanamycin or gentamycin. Further suitable selectable markers include genes that confer resistance to herbicides such as glyphosate-based herbicides or resistance to toxins such as eutypine. Other forms of selection are also available such as hormone based selection systems such as the Multi Auto Transformation (MAT) system of Hiroyrasu Ebinuma et al. (1997) PNAS Vol. 94 pp.2117-2121; visual selection systems which' use the known green fluorescence protein, β glucoronidase; and any other selection system such as mannose isomerase (Positech™), xylose isomerase and 2-deoxyglucose (2-DOG). In one embodiment of the present invention, the selectable marker gene is one that confers tolerance to hygromycin. This second expression cassette is useful for selecting transformants during and following plant transformation. Optionally, it may be segregated away from the COT202 event precursor after transformation to leave the COT202 event itself. The COT202 event per se does not comprise a selectable marker cassette. Further expression cassettes are optionally comprised in the COT202 event. For example these may provide other desirable benefits such as herbicide resistance.
The expression cassettes may be introduced into the plant on the same or different plasmids. If the expression cassettes are present on the same plasmid and introduced into the plant via an Agrobacterium-mediated transformation method, they may be present within the same or different T-DNA regions. In one embodiment of the present invention, two expression cassettes are present on different T-DNA regions within the same plasmid.
According to the first aspect of the invention, there is provided a polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 1. In one embodiment said polynucleotide comprises at least 18 contiguous nucleotides from SEQ ID NO: 1. In a further embodiment said polynucleotide comprises at least 20 contiguous nucleotides from SEQ ID NO: 1. In a still further embodiment said polynucleotide comprises at least 22 contiguous nucleotides from SEQ ID NO: 1. In a further embodiment said polynucleotide comprises at least 23 contiguous nucleotides from SEQ ID NO: 1. In yet a further embodiment said polynucleotide comprises at least 24 contiguous nucleotides from SEQ ID NO: 1. In a further embodiment said polynucleotide comprises at least 25 contiguous nucleotides from SEQ ID NO: 1. In a still further embodiment there is provided a polynucleotide comprising the sequence of SEQ ID NO: 1.
In a further aspect of the invention, there is provided a polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 2. In one embodiment said polynucleotide comprises at least 18 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 20 contiguous nucleotides from SEQ ID NO: 2. In a still further embodiment said polynucleotide comprises at least 22 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 23 contiguous nucleotides from SEQ ID NO: 2. In yet a further embodiment said polynucleotide comprises at least 24 contiguous nucleotides from SEQ ID NO: 2. In a further embodiment said polynucleotide comprises at least 25 contiguous nucleotides from SEQ ID NO: 2. In a still further embodiment there is provided a polynucleotide comprising the sequence of SEQ ID NO: 2.
In a further aspect of the present invention there is provided a polynucleotide as described above further comprising the sequence of SEQ ID NO: 7. In a further aspect of the present invention there is provided a polynucleotide as described above further comprising the sequence of SEQ ID NO: 8.
In another aspect of the present invention there is provided a plant comprising a polynucleotide which comprises at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In one embodiment said plant comprises at least 18 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment said plant comprises at least 20 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment said plant comprises at least 22 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment said plant comprises at least 23 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a still further embodiment said plant comprises at least 24 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment said plant comprises at least 25 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2. In yet a further embodiment said plant comprises the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2. In a further embodiment, said plant additionally comprises the sequence of SEQ ID NO: 7. In a further embodiment still, said plant additionally comprises the sequence of SEQ ID NO: 8. In one embodiment of the present invention, said plant is a cotton plant. In a further embodiment, said plant is an insecticidal cotton plant which is the COT202 event, or a plant derived therefrom.
The skilled man is familiar with plant transformation methods. In particular, two principal techniques have been characterised across a wide range of plant species: transformation by Agrobacterium and transformation by direct DNA transfer. Agrobacterium-medi&ted transformation is a commonly used method for transformation of dicotyledonous plants. The foreign DNA to be introduced into the plant.is cloned into a binary vector in between left and right border consensus sequences. This is the T-DNA region. The binary vector is transferred into an Agrobacterium cell, which is subsequently used to infect plant tissue. The T-DNA region of the vector comprising the foreign DNA is inserted into the plant genome. The marker gene cassette and trait gene cassette may be present on the same T-DNA region, different T-DNA regions in the same vector, or even different T-DNA regions in different vectors. In one embodiment of the present invention, the cassettes are present on different T-DNA regions in the same vector.
Alternatively, direct DNA transfer can be used to introduce the DNA directly into a plant cell. One suitable method of direct transfer may be bombardment of plant cells with a vector comprising the DNA for insertion using a particle gun (particle-mediated biolistic transformation); another established method, 'whiskers', involves coating the DNA onto silicon carbide fibres onto which cells are impaled. Other methods for transforming plant cells include protoplast transformation (optionally in the presence of polyethylene glycols); sonication of plant tissues, cells or protoplasts in a medium comprising the polynucleotide or vector; micro-insertion of the polynucleotide or vector into plant material (optionally employing the known silicon carbide "whiskers" technique), electroporation and the like.
Following transformation, transgenic plants must be regenerated from the transformed plant tissue, and progeny possessing the foreign DNA selected using an appropriate marker such as resistance to hygromycin. The skilled man is familiar with the composition of suitable regeneration media. The selectable marker can be segregated away from transgenic events by conventional plant breeding methods, thus resulting in, for example, the COT202 event.
A plant of the invention, as described herein, has an insecticidal effect on insects from one or more species from the group comprising Heliothis sp., Helicoverpa sp. and Spodoptera sp. which may infest it. "Infest" as used herein refers to attack, colonisation, feeding or damage in any way by one or more insects. Thus, for example, the plant of the present invention will provide a self-defence mechanism against infestation by pest insects such as Helicoverpa zea (cotton boll worm). As a result, a reduced number of insecticide sprays are required during the cultivation of said plant compared to a non-transgenic cotton plant of the same variety and yield loss through insect pests is kept at a minimal level.
The present invention is not limited to the COT202 event itself, but is further extended to include any plant material derived therefrom, including seeds in so far as they contain at least one of the present inventive polynucleotides. The present invention includes, but is not limited to plants that are derived from a breeding cross with the COT202 event or a derivative therefrom by conventional breeding or other methods. The invention also includes plant material derived from the COT202 event that may comprise additional, modified or fewer polynucleotide sequences compared to the COT202 event or exhibit other phenotypic characteristics. For example it may be desirable to transform plant material derived from the COT202 event to generate a new event that possesses an additional trait, such as a second insect resistance gene. This process is known as gene stacking. The second insect resistance gene may encode, for example insecticidal lectins, insecticidal protease inhibitors and insecticidal proteins derived from species of the
Bacillus thuringiensis, Xenorhabdus nematophilus, or Photorabdus luminescens. In one aspect, the second insect resistance gene encodes an insecticidal gene from Bacillus thuringiensis. Preferably, the second insect resistance gene encodes a Cry gene from the bacterium Bacillus thuringiensis, which Cry gene produces a toxin with a different mode of action or binding site in the insect gut to VIP for the control of different insect species. The Cry gene may, for example, be Cryl Ab.
The present invention further provides plant material derived from the COT202 event which possesses an additional trait such as herbicide resistance, nematode resistance or fungal resistance. In one embodiment, said additional trait is herbicide resistance. The herbicide resistance trait may be provided, for example, by a herbicide degradation enzyme, or a target-site specific resistant enzyme. In a further embodiment, said herbicide resistance trait provides resistance to a herbicide which comprises glyphosate acid or an agriculturally acceptable salt thereof. In a further embodiment still, said herbicide resistance trait is provided by a gene encoding EPSP synthase or a mutant thereof.
The present invention further provides a method of controlling insects comprising providing the COT202 event or plant material derived from the COT202 event at a locus where said insects feed. The invention yet further provides a method of controlling insects comprising providing the COT202 event or plant material derived from the COT202 event at a locus where said insects feed, and applying other agrochemicals to said plant material such as herbicides, fungicides and other insecticidal compounds including other insecticidal proteins. Examples of possible insecticidal compounds include insecticidal lectins, insecticidal protease inhibitors and insecticidal proteins derived from species of the Bacillus thuringiensis, Xenorhabdus nematophilύs, or Photorabdus luminescens. Examples of possible chemicals include pyrethroids, carbamates, imidacloprid, organochlorines, and macromolecules such as spinosad, abamectin or emamectin.
According to yet a further aspect of the present invention, there is provided a method of detecting the COT202 event or plant material derived from the COT202 transgenic event comprising obtaining a sample for analysis; extracting DNA from the sample; providing a pair of primers designed to bind to a polynucleotide comprising at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2; amplifying the region which lies between the sites at which the primers bind; and detecting the presence of the amplification product. Suitable pairs of primers for use in this method of detection can be designed using parameters well known to those skilled in the art of molecular biology now that SEQ ID NOs 1 and 2 are made available. For example, one or both primers of the pair may be designed to be vector-specific, trait gene specific, promoter specific, and/or specific to the sequence of the junction between the inserted DNA and the genomic DNA. Preferably one of the primers is designed to be specific to the inserted sequence, and the other primer specific to the genomic DNA upstream or downstream of the insertion site. In one embodiment, the sequence of said primers is depicted as SEQ ID NO: 3 and SEQ ID NO: 4.
In an embodiment of the present invention, the region amplified by said method (the 'amplicon') is between 100 and 1000 base pairs in length. In a -further embodiment the amplicon is between 100 and 400 base pairs in length. In a still further embodiment the amplicon is 181 base pairs in length. In a further embodiment the amplicon is produced using the above method in conjunction with the primers of the sequence of SEQ ID NO: 3 and SEQ ID NO: 4, and is 181 base pairs, in length. These primers are specific for the COT202 event. Alternative primers which may be used in combination to detect the COT202 event include SEQ ID NOs 13 and 14 which are specific for the COT202 event and produce an 86 bp amplicon, and SEQ ID NOs 5 and 6 which are specific for the VIP gene and produce a 556bp amplicon.
There are many amplification methods that may be used in accordance with this aspect of the invention. The underlying principle, a known technique to those skilled in the art, is the polymerase chain reaction (PCR). The amplification product from a PCR reaction may be visualised by staining with ethidium bromide and excitation with UV light, typically after size separation using agarose gel electrophoresis.
An embodiment of the present invention employs variations of the PCR principle such as TaqMan™. This involves labelling at least one of the primers involved in the amplification process with a fluorescent dye. When unbound, the primer adopts a conformation such that no fluorescence can be detected. However, when the primer is bound to a piece of DNA, the conformation changes and fluorescence can be detected. In this way, the amplification process can be monitored in real-time, the intensity of fluorescence corresponding directly to the level of amplification. Suitable primers for use in TaqMan™ PCR are depicted as SEQ ID NOs 13 to 15. These may be used in conjunction with internal control primers such as those depicted as SEQ ID NOs 10 to 12. TaqMan™ analysis may be useful for example, for detecting the presence of the COT202 event in a background of wild type cotton, or for detecting the adventitious presence of COT202 in other germplasm. Further embodiments of the present invention include, but are not limited to, RACE PCR.
A further embodiment of the present invention involves the use of multiplex PCR for distinguishing between homozygous COT202 plant material and heterozygous COT202 plant material. This is known to those skilled in the art as zygosity testing, and involves the use of three PCR primers which bind to specific parts of the cotton genome and / or inserted DNA. The presence or absence of each of two amplification products of particular sizes indicates whether the test sample is heterozygous or homozygous for COT202. Suitable primers for use in such a zygosity test are depicted as SEQ ID NOs 16 to 18. - l i ¬
ft! another aspect of the invention there is provided a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; providing a probe designed to bind to the complement of a polynucleotide which comprises at least 17 contiguous nucleotides of SEQ ID NO: 1 and / or SEQ ID NO: 2 when said polynucleotide is single stranded; hybridising said probe with the sample; and detecting whether the probe has hybridised, fti one embodiment, said probe comprises the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2. In an embodiment of the present invention there is provided a method of detecting plant material derived from the COT202 event using a probe comprising SED ID NO: 7 or SEQ ID NO: 8. In one embocliment, said probe comprises SEQ ID NO: 7. In a further embodiment, said probe consists of SEQ ID NO: 7. In one embodiment, said probe comprises SEQ ID NO: 8. In a further embodiment, said probe consists of SEQ ID NO: 8. The probe may be, for example, a PCR product or restriction digestion fragment. In a further embodiment, the probe as described herein may be tagged with a fluorescent, radioactive, enzymatic or other suitable label to enable hybridisation to be detected. The skilled man will know how to design suitable probes, now that he has the benefit of the present disclosure.
In a further embodiment of the present invention, there is provided a method of hybridising a probe to the sample under stringent conditions and detecting whether the probe has hybridised. Stringent hybridisation conditions are well known to the skilled man and comprise, for example: hybridisation at a temperature of about 60°C in a solution containing 6 x SSC, 0.01% SDS and 0.25% skimmed milk powder, followed by rinsing at the same temperature in a solution containing 1 x SSC and 0.1% SDS. More stringent hybridisation conditions may comprise: hybridisation at a temperature of about 65°C in a solution containing 6 x SSC, 0.01% SDS and 0.25% skimmed milk powder, followed by rinsing at the same temperature in a solution containing 0.2 x SSC and 0.1% SDS.
Suitable techniques for detecting plant material derived from the COT202 event based on the hybridisation principle include, but are not limited to Southern Blots, Northern Blots and in-situ hybridisation. The skilled man is familiar with techniques such as these. Typically, they involve incubating a probe with a sample, washing to remove unbound probe, and detecting whether the probe has hybridised. Said detection method is dependent on the type of tag attached to the probe - for example, a radioactively labelled probe can be detected by exposure to and development of x-ray film. Alternatively, an enzymatically labelled probe may be detected by conversion of a substrate to effect a colour change.
In a further aspect of the invention there is provided a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; providing an antibody or binding protein designed to bind to a VIP protein contained within a plant comprising at least 17 contiguous nucleotides from SEQ ID NO: 1 and / or SEQ ID NO: 2; incubating said antibody or binding protein with the sample; and detecting whether the antibody or binding protein has bound. In one embodiment of the present invention said VIP protein comprises the sequence of SEQ ID NO: 9.
Suitable methods of detecting plant material derived from the COT202 event based on said antibody binding include, but are not limited to Western Blots, Enzyme-Linked lmmunoSorbent Assays (ELISA) and SELDI mass spectrometry. The skilled man is familiar with these immunological techniques. Typical steps include incubating a sample with an antibody that binds to the VIP protein, washing to remove unbound antibody, and detecting whether the antibody has bound. Many such detection methods are based on enzymatic reactions - for example the antibody may be tagged with an enzyme such as horse radish peroxidase, and on application of a suitable substrate, a colour change detected. Suitable antibodies may be monoclonal or polyclonal.
fti another aspect of the invention there is provided a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; making a protein extract of the sample; providing a test strip designed to detect the presence of a VIP protein present within the sample; incubating the test strip with the sample; and detecting whether VIP protein is present. In one embodiment of the present invention said VIP protein comprises the sequence of SEQ ID NO: 9.
An alternative antibody-based detection method for COT202 uses of dipsticks or test strips. Typical steps include incubating a test strip with a sample and observing the presence or absence of coloured bands on the test strip. The coloured bands are indicative of the presence of a protein in the sample. Such dipstick or test strip tests are protein specific, and may be used for rapid testing of samples in the field. fti a further aspect of the present invention there is provided a method of detecting plant material derived from the COT202 event comprising obtaining a sample for analysis; subjecting one or more insects of the species Spodoptera frugiperda (susceptible to VTP3A) to the sample; subjecting one or more insects of species Ostrinia nubilalis (not susceptible to VD?3 A) to the sample as a control; detecting whether the sample has an insecticidal effect on insects from each species; and comparing the results with an authentic COT202 bioassay profile. The results are compared against an authentic
COT202 bioassay profile that is produced using insects of the same condition (including insect age and culture conditions) which have been subjected to the same dose and type of COT202 plant material (including plant age, plant variety and tissue type) and where the insecticidal effect is detected the same length of time after subjecting the insects to the COT202 sample. Detection of an insecticidal effect may be, for example, an assessment of insect mortality, or of the growth stage of the insects. Spodoptera frugiperda is a positive control for COT202 as it is susceptible to a suitable dose of VTP3A, while Ostrinia nubilalis is a negative control for COT202 as it is not susceptible to a suitable dose of VIP3A. Alternative insect species that are either susceptible or not susceptible to VIP3A may be substituted in an assay as described above as appropriate, provided that the results are compared against an authentic profile generated using the same insect species.
In one embodiment of the invention, the method of detecting plant material derived from the COT202 event includes but is not limited to leaf-feeding bioassays in which a leaf or other suitable plant part from the COT202 event or any plant material derived from the COT202 event, is infested with one or more pest insects. Detection may be through assessment of damage to the leaf or plant part after set time periods, assessment of mortality or another insecticidal effect on the insects. Alternative plant parts which may be used for such bioassays include bolls and squares. Such bioassays may, for example, be carried out in the laboratory, field, or glasshouse, and may be subject to natural or artificial insect infestation. In another aspect of the invention, there is provided a kit of parts comprising a means for detecting the presence in a sample of plant material derived from the COT202 event. . Preferably, said kit of parts comprises a means for detecting the presence in a sample of a polynucleotide comprising at least 17 contiguous nucleotides from the sequence of SEQ ID NO: 1 and / or SEQ ID NO: 2, or a protein encoded by a polynucleotide as described above, or a VIP protein, fti an embodiment of the present invention, said kit of parts may comprise DNA amplification-detection technology such as PCR or TaqMan™. fti a further embodiment of the present invention, said kit of parts may comprise probe hybridisation- detection technology such as Southern Blots, Northern Blots or in-situ Hybridisation. In another embodiment of the present invention, said kit of parts may comprise antibody binding-detection technology such as Western Blots, ELISA's, SELDI mass spectrometry or test strips, fti a further embodiment of the present invention, said kit of parts may comprise insect bioassay-detection technology such as leaf feeding bioassays or mortality bioassays. Each of these detection technologies may be used as described above. In a further embodiment of the present invention, said kit of parts may comprise any combination of the afore-mentioned detection technologies. In a still further embodiment, said kit of parts may comprise in the form of instructions one or more of the methods described above.
According to the present invention, there is provided the use of one or more of the polynucleotides of the invention as described above for detecting the COT202 event. In one embodiment, said polynucleotides may be used in a method for detecting the COT202 event as described above.
EXAMPLES
The invention will be further apparent from the following non-limiting examples in conjunction with the associated sequence listings as described below:
SEQ ID NO 1 : Polynucleotide sequence which extends across the junction where the 5' end of the COT202 insert is inserted into the cotton genome in event COT202. SEQ ID NO 2: Polynucleotide sequence which extends across the junction where the 3' end of the COT202 insert is inserted into the cotton genome in . event COT202. SEQ ID NOs 3 - 6: Polynucleotide sequences suitable for use as primers in the detection of the COT202 event. SEQ ID NOs 7 - 8: Polynucleotide sequences suitable for use as probes in the detection of the COT202 event. SEQ ID NO 9: Amino acid sequence of the VTP3A toxin protein. SEQ ID NOs 10 - 15: Polynucleotide sequences suitable for use as TaqMan™ primers in the detection of the COT202 event.
SEQ ID NOs 16 - 18: Polynucleotide sequences suitable for use as primers in the detection of the COT202 event via zygosity testing.
Example 1: Cloning and Transformation 1.1 Vector cloning
Standard gene cloning techniques of restriction digestion and ligation of fragments from in-house vectors were used to construct the transformation vector, pNOV103. The vector included a selectable marker cassette comprising a Ubiquitin (UBQ3) promoter, the UBQ3 intron, a gene sequence which encodes a protein conferring resistance to hygromycin, and a nos polyadenylation sequence. The vector also included the expression cassette of the target gene, which cassette comprised a Ubiquitin (UBQ3) promoter, the UBQ3 intron, a sequence encoding the VTP3A gene that had been codon optimised for expression in maize, and a nos polyadenylation sequence. The selectable marker cassette and VIP3 A containing cassette were cloned between the left and right border sequences within different T-DNA regions of vector pNOVl 03. The vector also comprised a gene conferring resistance to an antibiotic, kanamycin, for prokaryotic selection.
The vector was transformed into Agrobacterium tumefaciens strain GV3101 using standard Agrobacterium transformation techniques, and transformed cells selected through their resistance to kanamycin.
1.2 Plant transformation The COT202 event was produced by Agrobacterium-mediated transformation of Gossypium hirsutum L. cv Coker 312.
Coker 312 seeds were sown in the glasshouse. Tender petioles were cut from 3 to 5 weeks old plants, and steriUzed by immersion in 70% ethanol. The petioles were then immersed in a 5% Clorox + 2ml/L Tween 20 solution for 20 minutes. Petioles were washed 3 times in ddH2O. The ends of petioles were cut off, and petioles transferred to petiole pre-culture medium (4.3g/L MS salts, 200X B5 vitamins, 30g/L glucose, 2.4g/L phytogel, pH 7.0) and allowed to pre-culture in the light at 30°C for 3 days.
2 ml cultures of Agrobacterium containing the pNOV103 construct were grown overnight in appropriate antibiotics and then diluted with liquid MMSl medium (4.3g/L MS salts, 200X B5 vitamins, 0.05mg/L 2,4-D, O.lmg/L kinetin, 30g/L glucose, pH 6.5) to an OD660 of between 0.1 and 0.2.
The ends were cut off the petioles and placed in 3 to 5ml of bacterial solution in a sterile petri dish. Once in the solution, the petioles were cut lengthwise and then cut into 2cm sections. After the petiole explants had soaked in bacterial solution for 5 to 10 minutes, they were transferred to co-culture plates, and allowed to co-culture at 24°C for 48 hours under low light intensity. Co-cultured explants were transfeπed to MMSl medium (recipe as for MMSl liquid medium, additionally with 2.4g/L phytogel) containing 500mg/L Cefotaxime and lOmg/L Hygromycin, and incubated at 30 °C under a light cycle of 16 hours light and 8 hours dark. Explants were transfeπed to fresh medium after 2 weeks, and every 4 to 6 weeks thereafter until callus was formed.
Once calli were the size of a garden pea, they were removed from the explants and transfeπed to fresh MMSl medium containing 500mg/L Cefotaxime and lOmg/L Hygromycin, and maintained in tissue culture by subculturing every 4 weeks as appropriate.
1.5g callus tissue was broken up thoroughly and placed in a 50 ml Erlenmeyer flask containing 10 ml of liquid MMS2 medium (4.3g/L MS salts, 200X B5 vitamins, 1.9g/L KNO3, 30 g/L glucose, pH 6.5). The suspended callus was shaken at 100 rpm in the light at 30°C until small white slightly round cell clusters were visible. These clusters indicate that the tissue is embryogenic. The suspension culture cells were rinsed 3 times in MMS2 liquid medium, resuspended and plated- onto solid MMS2 medium (recipe as per liquid MMS2 medium, additionally with 2.4g/L phytogel). Once plated, excess liquid MMS2 medium was removed, and the plates incubated at 30°C in the light. Plates were checked for somatic embryo development each week. Somatic embryos formed within 1 to 2 months. Somatic embryos were transfeπed to EG (embryoid germimation) medium (10X EG stock (consisting of lx 10L pack of Musashige and Skoog Modified Basal Salt Mixture (Sigma), 19g KNO3, 50ml 200X B5 vitamins, water to 1L), lg/L glutamine, 0.5g/L asparagine, recipe), and sub-cultured to fresh EG medium every 3 to 4 weeks.
Once somatic embryos turned green and were larger than 2cm, they were plated root down in EG medium. At all stages of regeneration, growing plantlets were prevented from reaching the lids or sides of their containers. Germinated embryos with 1 to 2 true leaves were transfeπed to EG medium in 175ml Greiners: Strong plantlets with true leaves were transfeπed to sterile peat plugs expanded with dH2O in 175ml Greiners and transfeπed to a growth cabinet under conditions of 14 hours daylight at 30°C and 10 hours darkness at 20°C. Thereafter, plantlets were transplanted into pots and grown in the glasshouse.
1.3 Identification and selection of transgenics
Putative transgenic plants were screened by PCR for the presence of the VIP3A gene. Positive events were identified and screened using insect bioassays for insecticidal activity against Fall Armyworm (Spodoptera frugiperda) (see Example 7). Insecticidal lines were characterized for copy number by TaqMan™ analysis (see Example 2). Tl seed from several events were observed in a field trial for insect resistance and agronomic quality. Two events, COT202 and COT203, were chosen based on having a single copy of the transgene, good protein expression as identified by ELISA (see Example 4), good insecticidal activity against Cotton Boll Worm (Helicoverpa zed) and field performance. The hygromycin selectable marker cassette was segregated away using conventional plant breeding to result in the COT202 event and the COT203 event.
1.4 Verification of sequence ofCOT202 Genomic DNA was isolated from the COT202 event. This was used in the sequencing of the junctions of the DNA insertion site with the cotton genomic DNA in the COT202 event, using standard DNA sequencing techniques. Example 2: COT202 event specific Detection via TaqMan™ 2.1 DNA extraction DNA was extracted from leaf tissue using the Wizard™ Magnetic 96 DNA Plant System (Promega, #FF3760), according to the manufacturers instructions, with an additional step at the beginning of the protocol: following grinding of the leaf material, 0.9ml Cotton Extraction Buffer (0.2M Tris pH 8.0, 50mM EDTA, 0.25M NaCl, 0.1% v/v 2- mercaptoethanol, 2.5% w/v polyvinyl-pyrrolidone) was added to each well, the plant tissue resuspended and the plate centrifuged at 4,000 rpm (2755g) for 10 minutes. After aspirating and discarding the supernatant, 300ul Lysis Buffer A (Promega) was added and the manufacturers protocol was followed from this point. This procedure resulted in approximately 85ul of purified genomic DNA at a concentration of approximately 1 Ong ul.
2.2 TaqMan ™PCR reactions
TaqMan™ PCR reactions were setup using a standard reaction mix comprising: 5ul 2x Jumpstart Master Mix for Q-PCR (Sigma, #P2893), supplemented with 15mM MgCl2 and 200nM Strata-ROX 0.2ul 50x FAM primer / probe mix 0.2ul 50x VIC primer / probe mix 1.6ul Water.
50x primer / probe mixes comprised 45ul of each primer at a concentration of ImM, 50ul of the probe at a concentration of lOOuM and 860ul nuclease free water, and were stored in an amber tube at 4°C. Examples of suitable primer / probe sequence combinations which were used are:
Primer Name Primer Sequence 5'-3' SEQ ID
GhCHI2b-F GGTCCCTGGATACGGTGTCA SEQ ID NO: 10
Forward GhCHI2b-R TTGAGGGTTGGATCCTTTGC . SEQ ID NO: 11 Reverse GhCHI2bNEW-VIC CACCAACATCATCAATGGTGGCATCG SEQ ID NO: 12 Probe (5 ' label = VIC, 3 ' label = TAMRA)
COT202-F GGAATGTGGCGAATGGTGAT SEQ ID NO: 13
Forward
COT202-R TGTCGTTTCCCGCCTTCA SEQIDNO: 14
Reverse
COT202-FAM CAAATTGCCCATTTCATTCATCCAAA SEQID NO: 15
Probe AGC (5' label = FAM, 3' label = TAMRA)
7ul of master mix was dispensed into each well of a 384-well TaqMan™ assay plate. 3ul DNA template was added to the appropriate wells. 3ul of copy control dilution series was added to specific wells as a control. The reactions were run in an ABI7900HT (Applied Biosystems) using the following cycling conditions:
Step Temperature Time 1 50°C 2 min 2 95°C lO min 3 95°C 15 sec 4 60°C 1 min 5 Goto ste ;p 3, repeat 40
Data was analysed using SDS2.0 version A, software (Applied Biosystems). Example 3: COT202 Detection via Multiplex PCR Zygosity Test 3.1 Genomic DNA extraction Genomic DNA from COT202 was extracted as described in Example 2.1. 3.2 Multiplex PCR PCR primers were designed to bind to cotton genomic DNA sequence upstream of the site at which the COT202 cassette inserted (SEQ ID NO: 16); the cotton genomic DNA sequence downstream of the site at which the COT202 cassette inserted (SEQ ID NO: 17); and the COT202 cassette sequence itself (SEQ ID NO: 18). A 25ul PCR reaction was set up for each sample to be tested as follows: lx JumpState ReadyMix REDTaq PCR (Sigma P-l 107) 0.5uM primer 1 (SEQ ID NO: 16) 0.5uM primer 2 (SEQ ID NO: 17) 0.5uM primer 3 (SEQ ID NO: 18) 0.2% BSA 20 ng genomic DNA ddH2O to 25ul
The PCR reactions were heated in a thermocycler at 94°C for 5 minutes, followed by 30 cycles as follows: 94°C for 30 seconds, 55°C for 45 seconds, 72°C for 1 minute. The reaction was completed by heating at 72°C for 5 minutes.
3.3 Analysis PCR reactions were run on an agarose gel, and DNA bands visualised under UV light after staining with ethidium bromide. The presence of 2 bands indicated that the sample was from a COT202 heterozygote plant; 1 band of 181bp in size indicated that the sample was from a COT202 homozygote plant; and 1 band of approximately 400bp in size indicated that the sample was from a homozygote wild type cotton plant.
3.4 COT202 Detection via Standard PCR
As an alternative to the multiplex PCR, the COT202 event can be detected in a simple PCR reaction using the primers depicted as SEQ ID NO: 3 and 4, SEQ LD NO: 13 and 14, or SEQ ID NO: 16 and 18. The composition of the PCR reaction mixture is the same as described in example 3.2 above. The PCR reactions are heated in a thermocycler at 94°C for 5 minutes, followed by 30 cycles as follows: 94°C for 30 seconds, 55°C for 30 seconds, 72°C for 20 seconds. The reaction is completed by heating at 72°C for 5 minutes. A DNA fragment of 18 lbp, 86bp or 18 lbp in size respectively indicates the presence of the COT202 event.
Example 4: COT202 Detection via Southern Blot
4.1 DNA extraction for use in Southern Blotting Approximately 2 to 3g fresh weight of young leaf tissue was ground in a chilled mortar and pestle to a fine powder and added to 15 ml of ice-cold Nuclei extraction buffer (0.35M glucose, 0.1M Tris-HCl pH8, 50mM Na2EDTA, 2% Polyvinyl-pyπolidone-10, 0.1% ascorbic acid, 0.2% B-rnercaptoethanόi) in a labelled tube. The sample was incubated on ice for 15-20 minutes. The tube was mixed gently and centrifuged at 2700g for 20 minutes at 4°C. The supernatant was discarded and 8ml of nuclei lysis buffer (0.14M sorbitol, 0.22M Tris-Cl pH8, 0.8M NaCl, 0.22M Na2EDTA, 0.8%w/v CTAB, 1% Sarkosyl, 1% Polyvinyl-pyπolidone-10, 0.1% ascorbic acid, 0.2% B-mercaptoethanol, 5μg/ml proteinase K) was added. After mixing, the tubes were incubated at 65°C for 30 minutes. 10ml chloroform was added, and the tube mixed gently by inversion until an emulsion formed followed by centrifugation at 4600rpm for 10 minutes at room temperature.
The aqueous layer was removed into a new tube containing lOμl RNase A (lOmg sigma R4642), and the tube incubated for 30 minutes at 37°C. The chloroform and centrifugation steps were repeated once. The aqueous layer was removed into a new tube containing 10ml propan-2-ol. After approximately 15 minutes incubation at room temperature, a gelatinous precipitate was observed in the middle of the tube. The tube was mixed gently to precipitate out the DNA. The DNA was spooled out using a sterile loop into a falcon tube containing 70% ethanol. The DNA was air-dried to remove the ethanol and resuspended in 200-400μl TE.
4.2 Alternative method for DNA extraction
2-3 young cotton leaves (approximately lg fresh weight) are ground to a paste in a mortar. and pestle at room temperature, with 2ml of grinding buffer (lOOmM NaOAc pH 4.8, 50mM EDTA pH8.0, 500mM NaCl, 2% PVP (10,000 MW), 1.4 % SDS) and a little sand. The ground tissue is transfeπed to a 15ml falcon tube, and the remnants in the mortar rinsed with 1 ml of grinding buffer into the tube. The sample is incubated at 65°C for 15 minutes, shaking occasionally. 4ml 10M ammonium acetate is added, and the sample 5 mixed well and incubated at 65 °C for 10 minutes to precipitate proteins. The samples are incubated at room temperature at 4600 rpm for 10 minutes. The aqueous phase is transfeπed to a fresh 15ml tube.
0.6 volumes of cold isopropanol are added and the sample is incubated at room 10 temperature for approximately 30 minutes. After mixing by slowly inverting the tube several times, the DNA is spooled out and dissolved in 500ul TE. lOul of lOmg/ml RNAse are added and incubated for 15 minutes at room temperature. Following extraction with 500ul of phenol: chloroform: isoamyl alcohol (25:24:1), the sample is mixed gently and centrifuged at 13000rpm for 5 min. , 15 The supernatant is transfeπed to a fresh tube using a fine Pasteur pipette and re-extracted with chloroform: isoamyl alcohol (24:1) as above. The supernatant is transfeπed to fresh tubes, 1/10 volume 3M NaOAc (pH4.8) added and mixed, and then one volume cold isopropanol is added. The sample may be incubated at room temperature for up to 30 20 minutes to precipitate the DNA. The DNA is spooled out and resuspended in 70% ethanol. The DNA is air-dried to remove the ethanol and resuspended in 200ul water.
4.3 Restriction enzyme digests The DNA was quantified using a spectrophotometer and running out on a gel. Suitable 25 enzyme digests were prepared using 5ug DNA per digest in a total volume of 40ul. Digests included Hindlll, Xmal, BamHI, Nhel, and Sad, both alone and in combination. In particular, a Hindlll and Xmal double digest was used to detect the intactness of the VIP3 A gene; a Nhel digest was used to detect ND?3 A locus number. Digests were incubated for 6 hours at the appropriate temperature for each enzyme.
30 4.4 Gel electrophoresis Bromophenol blue loading dye was added to each sample from 4.2 above, and each sample loaded on a 0.8% TBE agarose gel. The gel was run at 50 volts overnight. After running, the gel was washed in 0.25M HC1 for 10 minutes to depurinate the DNA, incubated in denaturing solution (0.5M NaOH, 1.5M NaCl) with gentle agitation for 30 minutes, rinsed with distilled water and then incubated in neutralising solution (0.5M Tris, 1.5M NaCl) for 30 minutes.
A Southern Blot was prepared as follows: A glass plate was placed over a tray containing 20X SSC and a strip of 3M paper was placed onto the glass plate such that both ends dipped into the 20X SSC solution (to act as a wick). A piece of 3M paper the same size as the gel was placed on the wick, and the gel placed on this. Strips of nescofiftn were laid around the edges of the gel to form a seal. A Hybond membrane was placed on top of the gel, followed by two further pieces of 3M paper. Throughout the assembly of the blot, care was taken to ensure that no air bubbles were trapped between the membrane, gel and 3M paper. A 5cm-10cm stack of absorbent paper towels was placed on top of the 3M paper and held in place with a weight.
The DNA was allowed to transfer to the Hybond membrane overnight. After transfer the Southern Blot stack was disassembled and the DNA was bound to the membrane via UV cross-linking.
4.5 Hybridisation
A suitable DNA probe was prepared by PCR or restriction digest of binary plasmid. 25ng probe DNA in 45ul TE was boiled for 5 minutes, placed on ice for 5 minutes then transfeπed to a Rediprime II (Amersham Pharmacia Biotech, #RPN1633) tube. After addition of 5ul P32-labelled dCTP to the Rediprime tube, the probe was incubated at 37°C for 1 hour . The probe was purified by centrifugation through a microspin G-50 column (Amersham Pharmacia Biotech, #27-5330-01) according to the manufacturers instructions to remove unincorporated dNTPs. The activity of the probe was measured roughly by comparing the amount of radioactive component remaining in the column to the amount in the sample tube, with a ratio of at least 50:50 being acceptable. The Hybond membrane was pre-hybridised by wetting with 40 ml pre-warmed Rapid-Hyb buffer (Amersham- Pharmacia), at 65°C for 30 minutes. The labelled probe was boiled for 5 minutes, and placed on ice for 5 minutes. An appropriate amount of probe (1 million counts per 1ml pre-hybridisation buffer) was added to the pre-hybridisation buffer and hybridisation occurred at 65°C overnight. The following day, the hybridisation buffer was discarded, and following a rinse with 50ml 2xSSC/l%SDS solution the membrane washed in 150ml 2xSSC/l%SDS solution at 65°C for 30-45 minutes. This process was repeated twice with 0.1xSSC/l%SDS solution .The membrane was exposed to a phosphor screen or X-ray film to detect where the probe had bound.
Example 5: COT202 Detection via ELISA
5.1 Protein extraction Cotton tissue for analysis was harvested and frozen at -70°C. Fresh tissue was ground to a fine powder and weighed into a labelled polypropylene tube. Extraction buffer (lOOmM Tris, lOOmM Sodium Borate, 5mM MgCl, 0.05% Tween 20, 0.2% Sodium Ascorbate, Water, pH 7.8, ImM AEBSF, O.OOlmM Leupeptin) was added to the sample in a ratio of 2:1 (volume extraction buffer : sample fresh weight) for fresh tissue or 30:1 (volume extraction buffer : sample dry weight) for lyophilised tissue. The sample was vortexed and homogenised using a Brinkman PT 10/35 Polytron equipped with a PTA 10TS foam- reducing generator, until the mixture became liquefied. Extracts were centrifuged at 10,000 x g for 15 minutes. The protein extract supernatant was stored at 2-8°C.
5.2 ELISA protocol
The ELISA procedure used standard techniques as follows. A 96-well plate was soaked in ethanol for 2 hours, and air-dried. The plate was coated with 50ul goat anti-VTP3 A antibody per well and incubated overnight at 2-8°C. After washing three times with IX ELISA wash solution (lOOmM Tris, 0.5% Tween-20, 75mM NaCl, ρH8.5), the plate was dried briefly by tapping upside down on a paper towel. 150ul blocking solution (1 OmM NaPO4, 140mM NaCl, 1% BSA, 0.02% Sodium Azide, titrated to pH7.4 with monobasic NaPi and dibasic NaPi) was added to each well followed by incubation at room temperature for 45 minutes. The plate was washed 3 times as described above.
VIP3A standards and protein extract samples were applied to appropriate wells of the plate in triplicate, 50ul total volume per well. The plate was incubated at 2-8°C for 1 hour 30 minutes, followed by room temperature for a further 30 minutes. The plate was washed three times with ELISA wash solution, and then incubated at 35-39°C for 1 hour with 50ul rabbit anti-VTP3 A antibody per well. The plate was washed three times with ELISA wash solution, and incubated at room temperature for 30 minutes with 50ul donkey anti-rabbit alkaline phosphatase per well. Following a further three washes with ELISA wash solution, 50ul phosphatase substrate solution was added per well and the plate incubated for 30 minutes at room temperature. The reaction was stopped by addition of 50ul 3M NaOH per well. The absorbance of the solution in each well was measured at 405mn using a Ceres 900C multiwell plate reader and the results analysed using KC3 Curve fitting software (Bio-Tek Instruments Inc.). The concentration of VIP3A in the samples was calculated by reference to the VIP3A protein standards.
Example 6: COT202 detection via DipStick
6.1 Protein extraction
A piece of leaf tissue approximately 2 cm2 was placed in a tube containing extraction buffer. A plastic stirrer was used to extract protein from the tissue, by cutting into and mascerating the tissue.
6.2 Dipstick test
A test strip was placed into the tube and incubated for 5 to 10 minutes for the result to develop. The test strip comprised a first band at which anti-VIP3A antibody was bound, and a second band at which a control antibody was bound. After incubation, a double red line in the result window of the test strip indicated that VTP3A was present. The lower line indicated the presence of VTP3A protein while the upper line was a control indicating that the assay was working coπectly.
Example 7: COT202 Detection via Insect Bioassay
7.1 Leaf biosassays
Leaf assays were performed on Fall Army Worm (Spodoptera frugiperda), Cotton Boll Worm (Helicoverpa zed) and Tobacco Budworm (Heliothis virescens) as follows: Pads were soaked with 300ul to 500ul distilled water and placed into Gelman dishes. Leaf pieces measuring between approximately 0.5 square inches and 0.75 square inches were excised from cotton plants 8 to 12 inches in height, and placed on the pads. Between 8 and 10 insect larvae were placed in each dish and a lid fitted. The dishes were incubated at 28°C. On the third and sixth days after infestation, damage to the leaf in each dish was scored and compared with the control plants.
7.2 Boll bioassays Four absorbent pads were saturated with water and placed inside a large plastic cup. Three extra thick glass filters, each soaked with lOOul distilled water, were placed in a smaller plastic cup, which was then seated inside the larger cup. A 1.25 inch long boll was excised, immersed in lOmg/ml to 20mg/ml Nystatin and placed on the filters in the small cup. 50 insect larvae were placed on the square or boll and a lid attached to the larger cup. The squares or bolls were re-infested with 50 more larvae after 7 days.
The experiment was incubated at room temperature for approximately 3 weeks. The bolls were then cut open to determine damage. Damage to the boll was compared to the control samples.
7.3 Lyophilised leaf bioassays
Bioassays using freeze-dried leaf tissue were performed on Heliothis virescens as follows:
Terminal leaves were snap-frozen on dry-ice at time of picking and lyophilised overnight. The freeze dried tissue was ground in a mortar and pestle to a fine powder and resuspended in 0.2% agar solution to make an 8% (0.08g/ml) suspension of leaf powder. The suspension was overlaid on top of artificial insect diet in 96-well plates and left to dry. A single neonate insect larva was introduced into each well and the plates sealed. The plates were incubated at 28°C. On the sixth day after infestation, larval mortality was scored and compared with control samples.
Example 8: COT202 Field Trials
8.1 Field trial design The efficacy of the COT202 event against Heliothis virescens (Tobacco Bud Worm) and Helicoverpa zea (Cotton Boll Worm) was tested by conducting field trials at three locations in the US, namely Leland (MS), Quitman (GA) and Beasley (TX). Trials in each location were set up using a randomised complete block design, with four entry plots comprising four rows of 40 feet in length and four repetitions per trial. Seed was planted to obtain a plant stand of approximately 3 plants per foot of row length. Each field trial included non transgenic Coker 312 plants for control purposes, and two other transgenic events designated event A and event B for comparison purposes.
8.2 Field trial assessment An assessment of the natural insect populations was made at each trial location at the first white flower stage, approximately 80 days after planting. Where insect pressure was below the US economic threshold of 10% damage, artificial infestation of Cotton Boll Worm and Tobacco Bud Worm was made. The artificial infestation method was designed to obtain a rate of 10 eggs per foot per insect species. Assessment of damage to cotton squares and bolls was made by visual inspection of 50 fruiting forms per plot at 5 - 7 days after artificial infestation. When relying on a natural infestation, damage ratings were made when the non transgenic Coker 312 control plants showed fruiting form damage above the economic threshold level of 10% in all control plots.
8.3 Field trial results The results presented below show percentage damage to cotton squares and bolls at each field trial location, for each plant category. The data below represents an average of 200 fruiting forms (squares or bolls) per event per trial.
Location: Leland, MS
Figure imgf000028_0001
Location: Quitman, GA
Figure imgf000029_0001
Location: Beasley, TX, USA
Figure imgf000029_0002

Claims

CLAΠMS
1. A polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 1.
2. A polynucleotide according to claim 1 comprising at least 18 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 1.
3. A polynucleotide according to claim 1 comprising at least 20 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 1.
4. A polynucleotide according to claim 1 comprising the sequence of SEQ ID NO: 1.
5. A polynucleotide comprising at least 17 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 2.
6. A polynucleotide according to claim 5 comprising at least 18 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 2.
7. A polynucleotide according to claim 5 comprising at least 20 contiguous nucleotides from the 26-nucleotide sequence of SEQ ID NO: 2.
8. A polynucleotide according to claim 5 comprising the sequence of SEQ ID NO: 2.
9. A polynucleotide according to any of the preceding claims comprising the sequence of SEQ ID NO: 8.
10. An insect resistant plant comprising a VTJP3A protein and a polynucleotide according to any of claims 1 to 9.
11. A plant according to claim 10 which is a cotton plant.
12. An insecticidal cotton plant according to claim 11 which is derived from the COT202 event.
13. A method of detecting plant material derived from the COT202 event comprising: (a) obtaining a sample for analysis; (b) providing DNA from the sample; (c) providing a pair of primers designed to bind to a polynucleotide as claimed in claims 1 to 9 when said polynucleotide is single stranded; (d) amplifying the region which lies between the sites at which the primers bind; and (e) detecting the presence of the amplification product; whereby the presence of the amplification product is indicative that the sample is derived from the COT202 event.
14. A method according to claim 13 wherein the first primer has the sequence of SEQ ID NO: 3 and the second primer has the sequence of SEQ ID NO: 4.
15. A method of detecting plant material derived from the COT202 event comprising: (a) obtaining a sample for analysis; (b) providing a probe designed to bind to the complement of a polynucleotide as claimed in claims 1 to 9 when said polynucleotide is single stranded; (c) hybridising said probe with the sample; and (d) detecting whether the probe has hybridised; whereby the hybridisation of the probe is indicative that the sample is derived from the COT202 event.
16. A method according to claim 15 wherein the sequence of the probe is selected from the group comprising SEQ ID NO: 7 and SEQ ID NO: 8.
17. A method according to claims 15 or 16 wherein the probe hybridises to the sample under stringent hybridisation conditions.
18. A method of detecting plant material derived from the COT202 event comprising: (a) obtaining a sample for analysis; (b) providing an antibody designed to bind to a VIP protein contained within a plant according to claims 10 to 12; (c) incubating said antibody with the sample; and (d) detecting whether the antibody has bound; whereby the presence of antibody which has bound is indicative that the sample is derived from the COT202 event.
19. A method of detecting plant material derived from the COT202 event comprising: (a) obtaining a sample for analysis; (b) making a protein extract of the sample; (c) providing a test strip designed to detect the presence of a VIP protein present within the sample; (d) incubating the test strip with the sample; and (e) detecting whether VIP protein is present; wherein the presence of VIP protein is indicative that the sample is derived from the COT202 event.
20. A method according to claim 18 or 19 wherein the VIP protein has the sequence of SEQ ID NO: 9.
21. A method of detecting plant material derived from the COT202 event comprising: (a) obtaining a sample for analysis; (b) subjecting one or more insects of the species Spodoptera frugiperda to the sample; (c) subjecting one or more insects of species Ostrinia nubilalis to the sample as a control; (d) detecting whether the sample has an insecticidal effect on insects from each species; and (e) comparing the results with an authentic COT202 bioassay profile.
22. A kit of parts comprising a means for detecting the presence in a sample of plant material derived from the COT202 event.
23. A kit of parts according to claim 22 comprising a means for detecting the presence in a sample of a polynucleotide according to claims 1 to 9, or a protein encoded by a polynucleotide according to claims 1 to 9, or a VP protein.
24. A kit of parts according to claims 22 or 23 comprising in the form of instructions one or more of the methods according to claims 13 to 21.
25. Use of the nucleotide sequences according to any one of claims 1 to 9 in a method of detecting the COT202 event.
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Cited By (208)

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Publication number Priority date Publication date Assignee Title
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WO2018136611A1 (en) 2017-01-18 2018-07-26 Bayer Cropscience Lp Use of bp005 for the control of plant pathogens
WO2018136604A1 (en) 2017-01-18 2018-07-26 Bayer Cropscience Lp Bp005 toxin gene and methods for its use
EP3360418A1 (en) 2012-05-30 2018-08-15 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3363289A2 (en) 2012-05-30 2018-08-22 Bayer CropScience Aktiengesellschaft Compositions comprising a biological control agent and an insecticide
WO2018165091A1 (en) 2017-03-07 2018-09-13 Bayer Cropscience Lp Hppd variants and methods of use
WO2018195256A1 (en) 2017-04-21 2018-10-25 Bayer Cropscience Lp Method of improving crop safety
WO2019068811A1 (en) 2017-10-06 2019-04-11 Bayer Aktiengesellschaft Compositions comprising fluopyram and tioxazafen
WO2019083808A1 (en) 2017-10-24 2019-05-02 Basf Se Improvement of herbicide tolerance to hppd inhibitors by down-regulation of putative 4-hydroxyphenylpyruvate reductases in soybean
WO2019083810A1 (en) 2017-10-24 2019-05-02 Basf Se Improvement of herbicide tolerance to 4-hydroxyphenylpyruvate dioxygenase (hppd) inhibitors by down-regulation of hppd expression in soybean
WO2019233863A1 (en) 2018-06-04 2019-12-12 Bayer Aktiengesellschaft Herbicidally active bicyclic benzoylpyrazoles
EP3701796A1 (en) 2019-08-08 2020-09-02 Bayer AG Active compound combinations
EP3708565A1 (en) 2020-03-04 2020-09-16 Bayer AG Pyrimidinyloxyphenylamidines and the use thereof as fungicides
WO2020231751A1 (en) 2019-05-10 2020-11-19 Bayer Cropscience Lp Active compound combinations
WO2021013719A1 (en) 2019-07-23 2021-01-28 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021013721A1 (en) 2019-07-22 2021-01-28 Bayer Aktiengesellschaft 5-amino substituted pyrazoles and triazoles as pest control agents
WO2021013720A1 (en) 2019-07-23 2021-01-28 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021022069A1 (en) 2019-08-01 2021-02-04 Bayer Cropscience Lp Method of improving cold stress tolerance and crop safety
WO2021058659A1 (en) 2019-09-26 2021-04-01 Bayer Aktiengesellschaft Rnai-mediated pest control
WO2021064075A1 (en) 2019-10-02 2021-04-08 Bayer Aktiengesellschaft Active compound combinations comprising fatty acids
WO2021069569A1 (en) 2019-10-09 2021-04-15 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021069567A1 (en) 2019-10-09 2021-04-15 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021089673A1 (en) 2019-11-07 2021-05-14 Bayer Aktiengesellschaft Substituted sulfonyl amides for controlling animal pests
WO2021097162A1 (en) 2019-11-13 2021-05-20 Bayer Cropscience Lp Beneficial combinations with paenibacillus
WO2021099271A1 (en) 2019-11-18 2021-05-27 Bayer Aktiengesellschaft Active compound combinations comprising fatty acids
WO2021099303A1 (en) 2019-11-18 2021-05-27 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021105091A1 (en) 2019-11-25 2021-06-03 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021155084A1 (en) 2020-01-31 2021-08-05 Pairwise Plants Services, Inc. Suppression of shade avoidance response in plants
WO2021165195A1 (en) 2020-02-18 2021-08-26 Bayer Aktiengesellschaft Heteroaryl-triazole compounds as pesticides
WO2021209490A1 (en) 2020-04-16 2021-10-21 Bayer Aktiengesellschaft Cyclaminephenylaminoquinolines as fungicides
WO2021211926A1 (en) 2020-04-16 2021-10-21 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
WO2021213978A1 (en) 2020-04-21 2021-10-28 Bayer Aktiengesellschaft 2-(het)aryl-substituted condensed heterocyclic derivatives as pest control agents
WO2021224323A1 (en) 2020-05-06 2021-11-11 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021224220A1 (en) 2020-05-06 2021-11-11 Bayer Aktiengesellschaft Pyridine (thio)amides as fungicidal compounds
WO2021228734A1 (en) 2020-05-12 2021-11-18 Bayer Aktiengesellschaft Triazine and pyrimidine (thio)amides as fungicidal compounds
WO2021233861A1 (en) 2020-05-19 2021-11-25 Bayer Aktiengesellschaft Azabicyclic(thio)amides as fungicidal compounds
EP3915971A1 (en) 2020-12-16 2021-12-01 Bayer Aktiengesellschaft Phenyl-s(o)n-phenylamidines and the use thereof as fungicides
WO2021245087A1 (en) 2020-06-04 2021-12-09 Bayer Aktiengesellschaft Heterocyclyl pyrimidines and triazines as novel fungicides
WO2021247477A1 (en) 2020-06-02 2021-12-09 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
WO2021249995A1 (en) 2020-06-10 2021-12-16 Bayer Aktiengesellschaft Azabicyclyl-substituted heterocycles as fungicides
WO2021255169A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines as fungicides
WO2021255118A1 (en) 2020-06-18 2021-12-23 Bayer Aktiengesellschaft Composition for use in agriculture
WO2021255089A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines and 1,3,4-oxadiazole pyridines as fungicides
WO2021255091A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazoles and their derivatives as fungicides
WO2021255071A1 (en) 2020-06-18 2021-12-23 Bayer Aktiengesellschaft 3-(pyridazin-4-yl)-5,6-dihydro-4h-1,2,4-oxadiazine derivatives as fungicides for crop protection
WO2021255170A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines as fungicides
WO2021257775A1 (en) 2020-06-17 2021-12-23 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
EP3929189A1 (en) 2020-06-25 2021-12-29 Bayer Animal Health GmbH Novel heteroaryl-substituted pyrazine derivatives as pesticides
WO2022002818A1 (en) 2020-07-02 2022-01-06 Bayer Aktiengesellschaft Heterocyclene derivatives as pest control agents
WO2022033991A1 (en) 2020-08-13 2022-02-17 Bayer Aktiengesellschaft 5-amino substituted triazoles as pest control agents
WO2022053453A1 (en) 2020-09-09 2022-03-17 Bayer Aktiengesellschaft Azole carboxamide as pest control agents
WO2022058327A1 (en) 2020-09-15 2022-03-24 Bayer Aktiengesellschaft Substituted ureas and derivatives as new antifungal agents
EP3974414A1 (en) 2020-09-25 2022-03-30 Bayer AG 5-amino substituted pyrazoles and triazoles as pesticides
WO2022129200A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft Use of dhodh inhibitor for controlling resistant phytopathogenic fungi in crops
WO2022129190A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft (hetero)aryl substituted 1,2,4-oxadiazoles as fungicides
WO2022129188A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft 1,2,4-oxadiazol-3-yl pyrimidines as fungicides
WO2022129196A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft Heterobicycle substituted 1,2,4-oxadiazoles as fungicides
EP4036083A1 (en) 2021-02-02 2022-08-03 Bayer Aktiengesellschaft 5-oxy substituted heterocycles as pesticides
WO2022173885A1 (en) 2021-02-11 2022-08-18 Pairwise Plants Services, Inc. Methods and compositions for modifying cytokinin oxidase levels in plants
WO2022182834A1 (en) 2021-02-25 2022-09-01 Pairwise Plants Services, Inc. Methods and compositions for modifying root architecture in plants
WO2022207494A1 (en) 2021-03-30 2022-10-06 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2022207496A1 (en) 2021-03-30 2022-10-06 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2022233777A1 (en) 2021-05-06 2022-11-10 Bayer Aktiengesellschaft Alkylamide substituted, annulated imidazoles and use thereof as insecticides
WO2022238391A1 (en) 2021-05-12 2022-11-17 Bayer Aktiengesellschaft 2-(het)aryl-substituted condensed heterocycle derivatives as pest control agents
WO2022266271A1 (en) 2021-06-17 2022-12-22 Pairwise Plants Services, Inc. Modification of growth regulating factor family transcription factors in soybean
WO2022271892A1 (en) 2021-06-24 2022-12-29 Pairwise Plants Services, Inc. Modification of hect e3 ubiquitin ligase genes to improve yield traits
WO2023278651A1 (en) 2021-07-01 2023-01-05 Pairwise Plants Services, Inc. Methods and compositions for enhancing root system development
WO2023017120A1 (en) 2021-08-13 2023-02-16 Bayer Aktiengesellschaft Active compound combinations and fungicide compositions comprising those
WO2023019188A1 (en) 2021-08-12 2023-02-16 Pairwise Plants Services, Inc. Modification of brassinosteroid receptor genes to improve yield traits
WO2023023496A1 (en) 2021-08-17 2023-02-23 Pairwise Plants Services, Inc. Methods and compositions for modifying cytokinin receptor histidine kinase genes in plants
WO2023025682A1 (en) 2021-08-25 2023-03-02 Bayer Aktiengesellschaft Novel pyrazinyl-triazole compounds as pesticides
EP4144739A1 (en) 2021-09-02 2023-03-08 Bayer Aktiengesellschaft Anellated pyrazoles as parasiticides
WO2023034731A1 (en) 2021-08-30 2023-03-09 Pairwise Plants Services, Inc. Modification of ubiquitin binding peptidase genes in plants for yield trait improvement
WO2023034891A1 (en) 2021-09-02 2023-03-09 Pairwise Plants Services, Inc. Methods and compositions for improving plant architecture and yield traits
WO2023049720A1 (en) 2021-09-21 2023-03-30 Pairwise Plants Services, Inc. Methods and compositions for reducing pod shatter in canola
WO2023060152A2 (en) 2021-10-07 2023-04-13 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023060028A1 (en) 2021-10-04 2023-04-13 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023078915A1 (en) 2021-11-03 2023-05-11 Bayer Aktiengesellschaft Bis(hetero)aryl thioether (thio)amides as fungicidal compounds
WO2023099445A1 (en) 2021-11-30 2023-06-08 Bayer Aktiengesellschaft Bis(hetero)aryl thioether oxadiazines as fungicidal compounds
WO2023108035A1 (en) 2021-12-09 2023-06-15 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023147526A1 (en) 2022-01-31 2023-08-03 Pairwise Plants Services, Inc. Suppression of shade avoidance response in plants
WO2023148031A1 (en) 2022-02-01 2023-08-10 Globachem Nv Methods and compositions for controlling pests in cotton
WO2023148028A1 (en) 2022-02-01 2023-08-10 Globachem Nv Methods and compositions for controlling pests
WO2023168217A1 (en) 2022-03-02 2023-09-07 Pairwise Plants Services, Inc. Modification of brassinosteroid receptor genes to improve yield traits
WO2023192838A1 (en) 2022-03-31 2023-10-05 Pairwise Plants Services, Inc. Early flowering rosaceae plants with improved characteristics
WO2023196886A1 (en) 2022-04-07 2023-10-12 Pairwise Plants Services, Inc. Methods and compositions for improving resistance to fusarium head blight
WO2023205714A1 (en) 2022-04-21 2023-10-26 Pairwise Plants Services, Inc. Methods and compositions for improving yield traits
WO2023215809A1 (en) 2022-05-05 2023-11-09 Pairwise Plants Services, Inc. Methods and compositions for modifying root architecture and/or improving plant yield traits
WO2023213626A1 (en) 2022-05-03 2023-11-09 Bayer Aktiengesellschaft Use of (5s)-3-[3-(3-chloro-2-fluorophenoxy)-6-methylpyridazin-4-yl]-5-(2-chloro-4-methylbenzyl)-5,6-dihydro-4h-1,2,4-oxadiazine for controlling unwanted microorganisms
WO2023213670A1 (en) 2022-05-03 2023-11-09 Bayer Aktiengesellschaft Crystalline forms of (5s)-3-[3-(3-chloro-2-fluorophenoxy)-6-methylpyridazin-4-yl]-5-(2-chloro-4-methylbenzyl)-5,6-dihydro-4h-1,2,4-oxadiazine
WO2023215704A1 (en) 2022-05-02 2023-11-09 Pairwise Plants Services, Inc. Methods and compositions for enhancing yield and disease resistance
EP4295688A1 (en) 2022-09-28 2023-12-27 Bayer Aktiengesellschaft Active compound combination
WO2024006679A1 (en) 2022-06-27 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024006791A1 (en) 2022-06-29 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024006792A1 (en) 2022-06-29 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024030984A1 (en) 2022-08-04 2024-02-08 Pairwise Plants Services, Inc. Methods and compositions for improving yield traits
WO2024036240A1 (en) 2022-08-11 2024-02-15 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024054880A1 (en) 2022-09-08 2024-03-14 Pairwise Plants Services, Inc. Methods and compositions for improving yield characteristics in plants
WO2024068520A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2024068517A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2024068518A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-heteroaryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2024068519A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
EP4385327A1 (en) 2022-12-15 2024-06-19 Kimitec Group S.L. Biopesticide composition and method for controlling and treating broad spectrum of pests and diseases in plants
WO2024137438A2 (en) 2022-12-19 2024-06-27 BASF Agricultural Solutions Seed US LLC Insect toxin genes and methods for their use
WO2024137445A1 (en) 2022-12-20 2024-06-27 BASF Agricultural Solutions Seed US LLC Methods of identifying and evaluating genes for insect control
WO2024137446A1 (en) 2022-12-19 2024-06-27 BASF Agricultural Solutions Seed US LLC Methods of identifying and evaluating genes for insect control
WO2024173622A1 (en) 2023-02-16 2024-08-22 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024182658A1 (en) 2023-03-02 2024-09-06 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024186950A1 (en) 2023-03-09 2024-09-12 Pairwise Plants Services, Inc. Modification of brassinosteroid signaling pathway genes for improving yield traits in plants

Families Citing this family (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1699929A1 (en) * 2003-12-01 2006-09-13 Syngeta Participations AG Insect resistant cotton plants and methods of detecting the same
EP2113172A1 (en) * 2008-04-28 2009-11-04 Bayer CropScience AG Method for improved utilisation of the production potential of transgene plants
AR075126A1 (en) * 2009-01-29 2011-03-09 Bayer Cropscience Ag METHOD FOR THE BEST USE OF THE TRANSGENIC PLANTS PRODUCTION POTENTIAL
BR112012018108A2 (en) 2010-01-22 2015-10-20 Bayer Ip Gmbh acaricidal and / or insecticidal combinations of active ingredients
US9206137B2 (en) 2010-11-15 2015-12-08 Bayer Intellectual Property Gmbh N-Aryl pyrazole(thio)carboxamides
CN103717076B (en) 2011-08-10 2016-04-13 拜耳知识产权股份有限公司 Active compound combinations containing specific tetramic acid derivatives
CN104531679A (en) * 2014-12-26 2015-04-22 塔里木大学 Method for extracting DNA from dry apricot leaf
CN104798802B (en) * 2015-03-04 2017-03-22 北京大北农科技集团股份有限公司 Application of insecticidal protein
CN105543360A (en) * 2016-01-06 2016-05-04 天津出入境检验检疫局动植物与食品检测中心 Real-time fluorescence detection method for Vip3A gene detection and kit adopted by same
CN110915761B (en) * 2019-12-05 2021-11-26 山西农业大学 Indoor artificial propagation method for Spodoptera frugiperda in full-dark condition in young stage

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996010083A1 (en) * 1994-09-28 1996-04-04 Novartis Ag Novel pesticidal proteins and strains
WO2002078437A2 (en) * 2001-03-30 2002-10-10 Syngenta Participations Ag Novel pesticidal toxins
WO2003013224A2 (en) * 2001-08-06 2003-02-20 Bayer Bioscience N.V. Herbicide tolerant cotton plants and methods for producing and identifying same
WO2004039986A1 (en) * 2002-10-29 2004-05-13 Syngenta Participations Ag Cot102 insecticidal cotton

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
BR8404834A (en) 1983-09-26 1985-08-13 Agrigenetics Res Ass METHOD TO GENETICALLY MODIFY A PLANT CELL
US4683195A (en) * 1986-01-30 1987-07-28 Cetus Corporation Process for amplifying, detecting, and/or-cloning nucleic acid sequences
BR9808483A (en) 1997-04-03 2000-05-23 Novartis Ag Plant pest control
US20100293669A2 (en) * 1999-05-06 2010-11-18 Jingdong Liu Nucleic Acid Molecules and Other Molecules Associated with Plants and Uses Thereof for Plant Improvement
US20110131679A2 (en) * 2000-04-19 2011-06-02 Thomas La Rosa Rice Nucleic Acid Molecules and Other Molecules Associated with Plants and Uses Thereof for Plant Improvement
FR2815969B1 (en) * 2000-10-30 2004-12-10 Aventis Cropscience Sa TOLERANT PLANTS WITH HERBICIDES BY METABOLIC BYPASS
EP1499176B1 (en) 2002-03-06 2010-04-28 Syngenta Participations AG Novel Vip3 toxins and methods of use
EP1699929A1 (en) * 2003-12-01 2006-09-13 Syngeta Participations AG Insect resistant cotton plants and methods of detecting the same

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996010083A1 (en) * 1994-09-28 1996-04-04 Novartis Ag Novel pesticidal proteins and strains
WO2002078437A2 (en) * 2001-03-30 2002-10-10 Syngenta Participations Ag Novel pesticidal toxins
WO2003013224A2 (en) * 2001-08-06 2003-02-20 Bayer Bioscience N.V. Herbicide tolerant cotton plants and methods for producing and identifying same
WO2004039986A1 (en) * 2002-10-29 2004-05-13 Syngenta Participations Ag Cot102 insecticidal cotton

Non-Patent Citations (6)

* Cited by examiner, † Cited by third party
Title
ANONYMOUS: "Application for licence for dealings involving an intentional release into the environment DIR 036/2003 Title: Breeding and pre-commercial evaluation of transgenic cotton expressing a vegetative insecticidal protein (VIP) and a herbicide tolerance gene", INTERNET ARTICLE, October 2003 (2003-10-01), AUSTRALIA, XP002318972, Retrieved from the Internet <URL:http://www.ogtr.gov.au/pdf/ir/dir036finalrarmp.pdf> [retrieved on 20050222] *
DATABASE EMBL [online] 25 November 2001 (2001-11-25), "Mus musculus clone RP23-182G17, LOW-PASS SEQUENCE SAMPLING.", XP002318755, retrieved from EBI accession no. EM_PRO:AC101211 Database accession no. AC101211 *
DATABASE EMBL [online] 28 August 2002 (2002-08-28), "Mus musculus BAC clone RP23-307E9 from chromosome 7, complete sequence.", XP002318982, retrieved from EBI accession no. EM_PRO:AC131669 Database accession no. AC131669 *
RICE W C: "Specific primers for the detection of Vip3A insecticidal gene within a Bacillus thuringiensis collection", LETTERS IN APPLIED MICROBIOLOGY, vol. 28, no. 5, May 1999 (1999-05-01), pages 378 - 382, XP002318971, ISSN: 0266-8254 *
SELVAPANDIYAN A ET AL: "Toxicity analysis of N- and C- terminus-deleted vegetative insecticidal protein from Bacillus thuringiensis", APPLIED AND ENVIRONMENTAL MICROBIOLOGY, WASHINGTON,DC, US, vol. 67, no. 12, December 2002 (2002-12-01), pages 5855 - 5858, XP002251845, ISSN: 0099-2240 *
YU C-G ET AL: "THE BACILLUS THURINGIENSIS VEGETATIVE INSECTICIDAL PROTEIN VIP3A LYSES MIDGUT EPITHELIM CELLS OF SUSCEPTIBLE INSECTS", APPLIED AND ENVIRONMENTAL MICROBIOLOGY, WASHINGTON,DC, US, vol. 63, no. 2, February 1997 (1997-02-01), pages 532 - 536, XP000673006, ISSN: 0099-2240 *

Cited By (246)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2468902A1 (en) * 2006-06-03 2012-06-27 Syngenta Participations AG Corn event MIR162
EP2032700A4 (en) * 2006-06-03 2009-12-23 Syngenta Participations Ag Corn event mir162
AP2726A (en) * 2006-06-03 2013-08-31 Syngenta Participations Ag Corn event MIR 162
EP2032700A2 (en) * 2006-06-03 2009-03-11 Syngeta Participations AG Corn event mir162
WO2011076885A1 (en) 2009-12-23 2011-06-30 Bayer Cropscience Ag Plants tolerant to hppd inhibitor herbicides
WO2011076877A1 (en) 2009-12-23 2011-06-30 Bayer Cropscience Ag Plants tolerant to hppd inhibitor herbicides
WO2011076889A1 (en) 2009-12-23 2011-06-30 Bayer Cropscience Ag Plants tolerant to hppd inhibitor herbicides
WO2011076892A1 (en) 2009-12-23 2011-06-30 Bayer Cropscience Ag Plants tolerant to hppd inhibitor herbicides
WO2011076882A1 (en) 2009-12-23 2011-06-30 Bayer Cropscience Ag Plants tolerant to hppd inhibitor herbicides
EP2453012A1 (en) 2010-11-10 2012-05-16 Bayer CropScience AG HPPD variants and methods of use
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EP2669372A1 (en) 2010-11-10 2013-12-04 Bayer CropScience AG HPPD variants and methods of use
WO2012072489A1 (en) 2010-11-29 2012-06-07 Bayer Cropscience Ag Alpha,beta-unsaturated imines
US9055743B2 (en) 2010-11-29 2015-06-16 Bayer Intellectual Property Gmbh Alpha, beta-unsaturated imines
WO2012072696A1 (en) 2010-12-01 2012-06-07 Bayer Cropscience Ag Active ingredient combinations comprising pyridylethylbenzamides and other active ingredients
EP3103340A1 (en) 2010-12-01 2016-12-14 Bayer Intellectual Property GmbH Agent combinations comprising pyridylethyl benzamides and other agents
WO2012072660A1 (en) 2010-12-01 2012-06-07 Bayer Cropscience Ag Use of fluopyram for controlling nematodes in crops and for increasing yield
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US9045766B2 (en) 2010-12-16 2015-06-02 Dow Agrosciences Llc Combined use of Vip3Ab and Cry1Ab for management of resistant insects
CN107937434A (en) * 2010-12-16 2018-04-20 陶氏益农公司 Vip3Ab and Cry1Ab is used for the combined use for managing resistant insects
WO2012083219A1 (en) * 2010-12-16 2012-06-21 Dow Agrosciences Llc Combined use of vip3ab and cry1ab for management of resistance insects
WO2012120105A1 (en) 2011-03-10 2012-09-13 Bayer Cropscience Ag Use of lipochito-oligosaccharide compounds for safeguarding seed safety of treated seeds
EP3292761A1 (en) 2011-03-23 2018-03-14 Bayer Intellectual Property GmbH Active compound combinations
WO2012126938A2 (en) 2011-03-23 2012-09-27 Bayer Cropscience Ag Active compound combinations
EP3295797A1 (en) 2011-03-23 2018-03-21 Bayer Intellectual Property GmbH Active compound combinations
EP3292760A1 (en) 2011-03-23 2018-03-14 Bayer Intellectual Property GmbH Active compound combinations
WO2012130685A1 (en) 2011-03-25 2012-10-04 Bayer Cropscience Ag Use of n-(tetrazol-4-yl)- or n-(triazol-3-yl)arylcarboxamides or their salts for controlling unwanted plants in areas of transgenic crop plants being tolerant to hppd inhibitor herbicides
WO2012130684A1 (en) 2011-03-25 2012-10-04 Bayer Cropscience Ag Use of n-(1,2,5-oxadiazol-3-yl)benzamides for controlling unwanted plants in areas of transgenic crop plants being tolerant to hppd inhibitor herbicides
WO2012136581A1 (en) 2011-04-08 2012-10-11 Bayer Cropscience Ag Fungicide hydroximoyl-tetrazole derivatives
EP2997825A1 (en) 2011-04-22 2016-03-23 Bayer Intellectual Property GmbH Active compound combinations comprising a (thio)carboxamide derivative and a fungicidal compound
WO2012171914A1 (en) 2011-06-14 2012-12-20 Bayer Intellectual Property Gmbh Use of an enaminocarbonyl compound in combination with a biological control agent
US9241493B2 (en) 2011-06-14 2016-01-26 Bayer Intellectual Property Gmbh Use of an enaminocarbonyl compound in combination with a biological control agent
US10538774B2 (en) 2011-08-22 2020-01-21 Basf Agricultural Solutions Seed, Us Llc Methods and means to modify a plant genome
US9670496B2 (en) 2011-08-22 2017-06-06 Bayer Cropscience N.V. Methods and means to modify a plant genome
WO2013026740A2 (en) 2011-08-22 2013-02-28 Bayer Cropscience Nv Methods and means to modify a plant genome
EP2561759A1 (en) 2011-08-26 2013-02-27 Bayer Cropscience AG Fluoroalkyl-substituted 2-amidobenzimidazoles and their effect on plant growth
WO2013037717A1 (en) 2011-09-12 2013-03-21 Bayer Intellectual Property Gmbh Fungicidal 4-substituted-3-{phenyl[(heterocyclylmethoxy)imino]methyl}-1,2,4-oxadizol-5(4h)-one derivatives
WO2013037958A1 (en) 2011-09-16 2013-03-21 Bayer Intellectual Property Gmbh Use of phenylpyrazolin-3-carboxylates for improving plant yield
WO2013037956A1 (en) 2011-09-16 2013-03-21 Bayer Intellectual Property Gmbh Use of 5-phenyl- or 5-benzyl-2 isoxazoline-3 carboxylates for improving plant yield
WO2013037955A1 (en) 2011-09-16 2013-03-21 Bayer Intellectual Property Gmbh Use of acylsulfonamides for improving plant yield
WO2013050410A1 (en) 2011-10-04 2013-04-11 Bayer Intellectual Property Gmbh RNAi FOR THE CONTROL OF FUNGI AND OOMYCETES BY INHIBITING SACCHAROPINE DEHYDROGENASE GENE
WO2013075817A1 (en) 2011-11-21 2013-05-30 Bayer Intellectual Property Gmbh Fungicide n-[(trisubstitutedsilyl)methyl]-carboxamide derivatives
WO2013079566A2 (en) 2011-11-30 2013-06-06 Bayer Intellectual Property Gmbh Fungicidal n-bicycloalkyl and n-tricycloalkyl (thio)carboxamide derivatives
WO2013092519A1 (en) 2011-12-19 2013-06-27 Bayer Cropscience Ag Use of anthranilic acid diamide derivatives for pest control in transgenic crops
WO2013098147A1 (en) 2011-12-29 2013-07-04 Bayer Intellectual Property Gmbh Fungicidal 3-[(pyridin-2-ylmethoxyimino)(phenyl)methyl]-2-substituted-1,2,4-oxadiazol-5(2h)-one derivatives
WO2013098146A1 (en) 2011-12-29 2013-07-04 Bayer Intellectual Property Gmbh Fungicidal 3-[(1,3-thiazol-4-ylmethoxyimino)(phenyl)methyl]-2-substituted-1,2,4-oxadiazol-5(2h)-one derivatives
WO2013110591A1 (en) 2012-01-25 2013-08-01 Bayer Intellectual Property Gmbh Active compounds combination containing fluopyram bacillus and biologically control agent
WO2013110594A1 (en) 2012-01-25 2013-08-01 Bayer Intellectual Property Gmbh Active compound combinations containing fluopyram and biological control agent
WO2013127704A1 (en) 2012-02-27 2013-09-06 Bayer Intellectual Property Gmbh Active compound combinations containing a thiazoylisoxazoline and a fungicide
WO2013139949A1 (en) 2012-03-23 2013-09-26 Bayer Intellectual Property Gmbh Compositions comprising a strigolactame compound for enhanced plant growth and yield
WO2013153143A1 (en) 2012-04-12 2013-10-17 Bayer Cropscience Ag N-acyl- 2 - (cyclo) alkylpyrrolidines and piperidines useful as fungicides
WO2013156560A1 (en) 2012-04-20 2013-10-24 Bayer Cropscience Ag N-cycloalkyl-n-[(trisubstitutedsilylphenyl)methylene]-(thio)carboxamide derivatives
WO2013156559A1 (en) 2012-04-20 2013-10-24 Bayer Cropscience Ag N-cycloalkyl-n-[(heterocyclylphenyl)methylene]-(thio)carboxamide derivatives
EP2662361A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG Pyrazol indanyl carboxamides
EP2662360A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG 5-Halogenopyrazole indanyl carboxamides
EP2662362A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG Pyrazole indanyl carboxamides
EP2662364A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG Pyrazole tetrahydronaphthyl carboxamides
EP2662370A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG 5-Halogenopyrazole benzofuranyl carboxamides
EP2662363A1 (en) 2012-05-09 2013-11-13 Bayer CropScience AG 5-Halogenopyrazole biphenylcarboxamides
WO2013167544A1 (en) 2012-05-09 2013-11-14 Bayer Cropscience Ag 5-halogenopyrazole indanyl carboxamides
WO2013167545A1 (en) 2012-05-09 2013-11-14 Bayer Cropscience Ag Pyrazole indanyl carboxamides
WO2013174836A1 (en) 2012-05-22 2013-11-28 Bayer Cropscience Ag Active compounds combinations comprising a lipo-chitooligosaccharide derivative and a nematicide, insecticidal or fungicidal compound
EP3281526A1 (en) 2012-05-30 2018-02-14 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3360418A1 (en) 2012-05-30 2018-08-15 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3409120A1 (en) 2012-05-30 2018-12-05 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3292764A2 (en) 2012-05-30 2018-03-14 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide selected from inhibitors of the respiratory chain at complex iii
EP3488700A1 (en) 2012-05-30 2019-05-29 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3243387A2 (en) 2012-05-30 2017-11-15 Bayer CropScience Aktiengesellschaft Compositions comprising a biological control agent and an insecticide
EP3205210A1 (en) 2012-05-30 2017-08-16 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide selected from inhibitors of the succinate dehydrogenase
EP3363289A2 (en) 2012-05-30 2018-08-22 Bayer CropScience Aktiengesellschaft Compositions comprising a biological control agent and an insecticide
EP3318128A2 (en) 2012-05-30 2018-05-09 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
EP3300603A2 (en) 2012-05-30 2018-04-04 Bayer CropScience Aktiengesellschaft Composition comprising a biological control agent and a fungicide
WO2014019983A1 (en) 2012-07-31 2014-02-06 Bayer Cropscience Ag Compositions comprising a pesticidal terpene mixture and an insecticide
EP3424322A1 (en) 2012-07-31 2019-01-09 Bayer CropScience Aktiengesellschaft Compositions comprising a pesticidal terpene mixture and an insecticide
EP3683307A2 (en) 2012-09-14 2020-07-22 BASF Agricultural Solutions Seed US LLC Hppd variants and methods of use
EP3173477A1 (en) 2012-09-14 2017-05-31 Bayer Cropscience LP Hppd variants and methods of use
WO2014043435A1 (en) 2012-09-14 2014-03-20 Bayer Cropscience Lp Hppd variants and methods of use
WO2014056956A1 (en) 2012-10-11 2014-04-17 Bayer Cropscience Ag Use of n-phenylethylpyrazole carboxamide derivatives or salts thereof for resistance management of phytopathogenic fungi
EP2719280A1 (en) 2012-10-11 2014-04-16 Bayer CropScience AG Use of N-phenylethylpyrazole carboxamide derivatives or salts thereof for resistance management of phytopathogenic fungi
WO2014060520A1 (en) 2012-10-19 2014-04-24 Bayer Cropscience Ag Method for treating plants against fungi resistant to fungicides using carboxamide or thiocarboxamide derivatives
WO2014060519A1 (en) 2012-10-19 2014-04-24 Bayer Cropscience Ag Method for enhancing tolerance to abiotic stress in plants using carboxamide or thiocarboxamide derivatives
WO2014060502A1 (en) 2012-10-19 2014-04-24 Bayer Cropscience Ag Active compound combinations comprising carboxamide derivatives
WO2014060518A1 (en) 2012-10-19 2014-04-24 Bayer Cropscience Ag Method of plant growth promotion using carboxamide derivatives
WO2014079789A1 (en) 2012-11-23 2014-05-30 Bayer Cropscience Ag Active compound combinations
EP2735231A1 (en) 2012-11-23 2014-05-28 Bayer CropScience AG Active compound combinations
WO2014083088A2 (en) 2012-11-30 2014-06-05 Bayer Cropscience Ag Binary fungicidal mixtures
WO2014083033A1 (en) 2012-11-30 2014-06-05 Bayer Cropsience Ag Binary fungicidal or pesticidal mixture
WO2014083089A1 (en) 2012-11-30 2014-06-05 Bayer Cropscience Ag Ternary fungicidal and pesticidal mixtures
WO2014082950A1 (en) 2012-11-30 2014-06-05 Bayer Cropscience Ag Ternary fungicidal mixtures
WO2014083031A2 (en) 2012-11-30 2014-06-05 Bayer Cropscience Ag Binary pesticidal and fungicidal mixtures
EP3318129A1 (en) 2012-12-03 2018-05-09 Bayer CropScience Aktiengesellschaft Method for pest control by applying a combination of paecilomyces lilacinus and fluopyram
WO2014086749A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and an insecticide
WO2014086747A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and a fungicide
WO2014086764A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and a fungicide
WO2014086759A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising biological control agents
WO2014086758A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and an insecticide
WO2014086750A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and an insecticide
WO2014086753A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising biological control agents
WO2014086748A2 (en) 2012-12-03 2014-06-12 Bayer Cropscience Ag Composition comprising a biological control agent and a fungicide
WO2014090765A1 (en) 2012-12-12 2014-06-19 Bayer Cropscience Ag Use of 1-[2-fluoro-4-methyl-5-(2,2,2-trifluoroethylsulfinyl)phenyl]-5-amino-3-trifluoromethyl)-1 h-1,2,4 tfia zole for controlling nematodes in nematode-resistant crops
WO2014095826A1 (en) 2012-12-18 2014-06-26 Bayer Cropscience Ag Binary fungicidal and bactericidal combinations
WO2014095677A1 (en) 2012-12-19 2014-06-26 Bayer Cropscience Ag Difluoromethyl-nicotinic- tetrahydronaphtyl carboxamides
WO2014124379A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising a streptomyces-based biological control agent and an insecticide
WO2014124368A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising gougerotin and a fungicide
WO2014124369A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising a streptomyces-based biological control agent and a fungicide
WO2014124373A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising gougerotin and an insecticide
WO2014124375A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising gougerotin and a biological control agent
WO2014124361A1 (en) 2013-02-11 2014-08-14 Bayer Cropscience Lp Compositions comprising a streptomyces-based biological control agent and another biological control agent
WO2014138339A2 (en) 2013-03-07 2014-09-12 Athenix Corp. Toxin genes and methods for their use
EP3626828A2 (en) 2013-03-07 2020-03-25 BASF Agricultural Solutions Seed US LLC Toxin genes and methods for their use
WO2014170364A1 (en) 2013-04-19 2014-10-23 Bayer Cropscience Ag Binary insecticidal or pesticidal mixture
WO2014170345A2 (en) 2013-04-19 2014-10-23 Bayer Cropscience Ag Method for improved utilization of the production potential of transgenic plants
WO2014177582A1 (en) 2013-04-30 2014-11-06 Bayer Cropscience Ag N-(2-fluoro-2-phenethyl)carboxamides as nematicides and endoparasiticides
WO2014177514A1 (en) 2013-04-30 2014-11-06 Bayer Cropscience Ag Nematicidal n-substituted phenethylcarboxamides
WO2014206953A1 (en) 2013-06-26 2014-12-31 Bayer Cropscience Ag N-cycloalkyl-n-[(bicyclylphenyl)methylene]-(thio)carboxamide derivatives
WO2015082586A1 (en) 2013-12-05 2015-06-11 Bayer Cropscience Ag N-cycloalkyl-n-{[2-(1-substitutedcycloalkyl)phenyl]methylene}-(thio)carboxamide derivatives
WO2015082587A1 (en) 2013-12-05 2015-06-11 Bayer Cropscience Ag N-cycloalkyl-n-{[2-(1-substitutedcycloalkyl)phenyl]methylene}-(thio)carboxamide derivatives
EP2885970A1 (en) 2013-12-21 2015-06-24 Bayer CropScience AG Fungicide compositions comprising compound I, at least one succinate dehydrogenase (SDH) inhibitor and at least one triazole fungicide
WO2015138394A2 (en) 2014-03-11 2015-09-17 Bayer Cropscience Lp Hppd variants and methods of use
WO2015160620A1 (en) 2014-04-16 2015-10-22 Bayer Cropscience Lp Compositions comprising ningnanmycin and an insecticide
WO2015160618A1 (en) 2014-04-16 2015-10-22 Bayer Cropscience Lp Compositions comprising ningnanmycin and a biological control agent
WO2015160619A1 (en) 2014-04-16 2015-10-22 Bayer Cropscience Lp Compositions comprising ningnanmycin and a fungicide
WO2016166077A1 (en) 2015-04-13 2016-10-20 Bayer Cropscience Aktiengesellschaft N-cycloalkyl-n-(biheterocyclyethylene)-(thio)carboxamide derivatives
EP3081085A1 (en) 2015-04-14 2016-10-19 Bayer CropScience AG Method for improving earliness in cotton
EP3097782A1 (en) 2015-05-29 2016-11-30 Bayer CropScience Aktiengesellschaft Methods for controlling phytopathogenic nematodes by combination of fluopyram and biological control agents
WO2016193073A1 (en) 2015-05-29 2016-12-08 Bayer Cropscience Aktiengesellschaft Methods for controlling phytopathogenic nematodes by combination of fluopyram and biological control agents
WO2017042259A1 (en) 2015-09-11 2017-03-16 Bayer Cropscience Aktiengesellschaft Hppd variants and methods of use
WO2017182420A1 (en) 2016-04-20 2017-10-26 Bayer Cropscience Nv Elite event ee-gh7 and methods and kits for identifying such event in biological samples
WO2018019676A1 (en) 2016-07-29 2018-02-01 Bayer Cropscience Aktiengesellschaft Active compound combinations and methods to protect the propagation material of plants
WO2018098214A1 (en) 2016-11-23 2018-05-31 Bayer Cropscience Lp Axmi669 and axmi991 toxin genes and methods for their use
WO2018119336A1 (en) 2016-12-22 2018-06-28 Athenix Corp. Use of cry14 for the control of nematode pests
WO2018136604A1 (en) 2017-01-18 2018-07-26 Bayer Cropscience Lp Bp005 toxin gene and methods for its use
WO2018136611A1 (en) 2017-01-18 2018-07-26 Bayer Cropscience Lp Use of bp005 for the control of plant pathogens
WO2018165091A1 (en) 2017-03-07 2018-09-13 Bayer Cropscience Lp Hppd variants and methods of use
WO2018195256A1 (en) 2017-04-21 2018-10-25 Bayer Cropscience Lp Method of improving crop safety
WO2019068811A1 (en) 2017-10-06 2019-04-11 Bayer Aktiengesellschaft Compositions comprising fluopyram and tioxazafen
WO2019083810A1 (en) 2017-10-24 2019-05-02 Basf Se Improvement of herbicide tolerance to 4-hydroxyphenylpyruvate dioxygenase (hppd) inhibitors by down-regulation of hppd expression in soybean
WO2019083808A1 (en) 2017-10-24 2019-05-02 Basf Se Improvement of herbicide tolerance to hppd inhibitors by down-regulation of putative 4-hydroxyphenylpyruvate reductases in soybean
WO2019233863A1 (en) 2018-06-04 2019-12-12 Bayer Aktiengesellschaft Herbicidally active bicyclic benzoylpyrazoles
WO2020231751A1 (en) 2019-05-10 2020-11-19 Bayer Cropscience Lp Active compound combinations
WO2021013721A1 (en) 2019-07-22 2021-01-28 Bayer Aktiengesellschaft 5-amino substituted pyrazoles and triazoles as pest control agents
WO2021013719A1 (en) 2019-07-23 2021-01-28 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021013720A1 (en) 2019-07-23 2021-01-28 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021022069A1 (en) 2019-08-01 2021-02-04 Bayer Cropscience Lp Method of improving cold stress tolerance and crop safety
EP3701796A1 (en) 2019-08-08 2020-09-02 Bayer AG Active compound combinations
WO2021058659A1 (en) 2019-09-26 2021-04-01 Bayer Aktiengesellschaft Rnai-mediated pest control
WO2021064075A1 (en) 2019-10-02 2021-04-08 Bayer Aktiengesellschaft Active compound combinations comprising fatty acids
WO2021069569A1 (en) 2019-10-09 2021-04-15 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021069567A1 (en) 2019-10-09 2021-04-15 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021089673A1 (en) 2019-11-07 2021-05-14 Bayer Aktiengesellschaft Substituted sulfonyl amides for controlling animal pests
WO2021097162A1 (en) 2019-11-13 2021-05-20 Bayer Cropscience Lp Beneficial combinations with paenibacillus
WO2021099271A1 (en) 2019-11-18 2021-05-27 Bayer Aktiengesellschaft Active compound combinations comprising fatty acids
WO2021099303A1 (en) 2019-11-18 2021-05-27 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021105091A1 (en) 2019-11-25 2021-06-03 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021155084A1 (en) 2020-01-31 2021-08-05 Pairwise Plants Services, Inc. Suppression of shade avoidance response in plants
WO2021165195A1 (en) 2020-02-18 2021-08-26 Bayer Aktiengesellschaft Heteroaryl-triazole compounds as pesticides
EP3708565A1 (en) 2020-03-04 2020-09-16 Bayer AG Pyrimidinyloxyphenylamidines and the use thereof as fungicides
WO2021211926A1 (en) 2020-04-16 2021-10-21 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
WO2021209490A1 (en) 2020-04-16 2021-10-21 Bayer Aktiengesellschaft Cyclaminephenylaminoquinolines as fungicides
WO2021213978A1 (en) 2020-04-21 2021-10-28 Bayer Aktiengesellschaft 2-(het)aryl-substituted condensed heterocyclic derivatives as pest control agents
WO2021224323A1 (en) 2020-05-06 2021-11-11 Bayer Aktiengesellschaft Novel heteroaryl-triazole compounds as pesticides
WO2021224220A1 (en) 2020-05-06 2021-11-11 Bayer Aktiengesellschaft Pyridine (thio)amides as fungicidal compounds
WO2021228734A1 (en) 2020-05-12 2021-11-18 Bayer Aktiengesellschaft Triazine and pyrimidine (thio)amides as fungicidal compounds
WO2021233861A1 (en) 2020-05-19 2021-11-25 Bayer Aktiengesellschaft Azabicyclic(thio)amides as fungicidal compounds
WO2021247477A1 (en) 2020-06-02 2021-12-09 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
WO2021245087A1 (en) 2020-06-04 2021-12-09 Bayer Aktiengesellschaft Heterocyclyl pyrimidines and triazines as novel fungicides
WO2021249995A1 (en) 2020-06-10 2021-12-16 Bayer Aktiengesellschaft Azabicyclyl-substituted heterocycles as fungicides
WO2021257775A1 (en) 2020-06-17 2021-12-23 Pairwise Plants Services, Inc. Methods for controlling meristem size for crop improvement
WO2021255118A1 (en) 2020-06-18 2021-12-23 Bayer Aktiengesellschaft Composition for use in agriculture
WO2021255071A1 (en) 2020-06-18 2021-12-23 Bayer Aktiengesellschaft 3-(pyridazin-4-yl)-5,6-dihydro-4h-1,2,4-oxadiazine derivatives as fungicides for crop protection
WO2021255169A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines as fungicides
WO2021255089A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines and 1,3,4-oxadiazole pyridines as fungicides
WO2021255091A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazoles and their derivatives as fungicides
WO2021255170A1 (en) 2020-06-19 2021-12-23 Bayer Aktiengesellschaft 1,3,4-oxadiazole pyrimidines as fungicides
EP3929189A1 (en) 2020-06-25 2021-12-29 Bayer Animal Health GmbH Novel heteroaryl-substituted pyrazine derivatives as pesticides
WO2021259997A1 (en) 2020-06-25 2021-12-30 Bayer Animal Health Gmbh Novel heteroaryl-substituted pyrazine derivatives as pesticides
WO2022002818A1 (en) 2020-07-02 2022-01-06 Bayer Aktiengesellschaft Heterocyclene derivatives as pest control agents
WO2022033991A1 (en) 2020-08-13 2022-02-17 Bayer Aktiengesellschaft 5-amino substituted triazoles as pest control agents
WO2022053453A1 (en) 2020-09-09 2022-03-17 Bayer Aktiengesellschaft Azole carboxamide as pest control agents
WO2022058327A1 (en) 2020-09-15 2022-03-24 Bayer Aktiengesellschaft Substituted ureas and derivatives as new antifungal agents
EP3974414A1 (en) 2020-09-25 2022-03-30 Bayer AG 5-amino substituted pyrazoles and triazoles as pesticides
EP3915971A1 (en) 2020-12-16 2021-12-01 Bayer Aktiengesellschaft Phenyl-s(o)n-phenylamidines and the use thereof as fungicides
WO2022129200A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft Use of dhodh inhibitor for controlling resistant phytopathogenic fungi in crops
WO2022129190A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft (hetero)aryl substituted 1,2,4-oxadiazoles as fungicides
WO2022129188A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft 1,2,4-oxadiazol-3-yl pyrimidines as fungicides
WO2022129196A1 (en) 2020-12-18 2022-06-23 Bayer Aktiengesellschaft Heterobicycle substituted 1,2,4-oxadiazoles as fungicides
EP4036083A1 (en) 2021-02-02 2022-08-03 Bayer Aktiengesellschaft 5-oxy substituted heterocycles as pesticides
WO2022173885A1 (en) 2021-02-11 2022-08-18 Pairwise Plants Services, Inc. Methods and compositions for modifying cytokinin oxidase levels in plants
WO2022182834A1 (en) 2021-02-25 2022-09-01 Pairwise Plants Services, Inc. Methods and compositions for modifying root architecture in plants
WO2022207494A1 (en) 2021-03-30 2022-10-06 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2022207496A1 (en) 2021-03-30 2022-10-06 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2022233777A1 (en) 2021-05-06 2022-11-10 Bayer Aktiengesellschaft Alkylamide substituted, annulated imidazoles and use thereof as insecticides
WO2022238391A1 (en) 2021-05-12 2022-11-17 Bayer Aktiengesellschaft 2-(het)aryl-substituted condensed heterocycle derivatives as pest control agents
WO2022266271A1 (en) 2021-06-17 2022-12-22 Pairwise Plants Services, Inc. Modification of growth regulating factor family transcription factors in soybean
WO2022271892A1 (en) 2021-06-24 2022-12-29 Pairwise Plants Services, Inc. Modification of hect e3 ubiquitin ligase genes to improve yield traits
WO2023278651A1 (en) 2021-07-01 2023-01-05 Pairwise Plants Services, Inc. Methods and compositions for enhancing root system development
WO2023019188A1 (en) 2021-08-12 2023-02-16 Pairwise Plants Services, Inc. Modification of brassinosteroid receptor genes to improve yield traits
WO2023017120A1 (en) 2021-08-13 2023-02-16 Bayer Aktiengesellschaft Active compound combinations and fungicide compositions comprising those
WO2023023496A1 (en) 2021-08-17 2023-02-23 Pairwise Plants Services, Inc. Methods and compositions for modifying cytokinin receptor histidine kinase genes in plants
WO2023025682A1 (en) 2021-08-25 2023-03-02 Bayer Aktiengesellschaft Novel pyrazinyl-triazole compounds as pesticides
WO2023034731A1 (en) 2021-08-30 2023-03-09 Pairwise Plants Services, Inc. Modification of ubiquitin binding peptidase genes in plants for yield trait improvement
EP4144739A1 (en) 2021-09-02 2023-03-08 Bayer Aktiengesellschaft Anellated pyrazoles as parasiticides
WO2023034891A1 (en) 2021-09-02 2023-03-09 Pairwise Plants Services, Inc. Methods and compositions for improving plant architecture and yield traits
WO2023049720A1 (en) 2021-09-21 2023-03-30 Pairwise Plants Services, Inc. Methods and compositions for reducing pod shatter in canola
WO2023060028A1 (en) 2021-10-04 2023-04-13 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023060152A2 (en) 2021-10-07 2023-04-13 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023078915A1 (en) 2021-11-03 2023-05-11 Bayer Aktiengesellschaft Bis(hetero)aryl thioether (thio)amides as fungicidal compounds
WO2023099445A1 (en) 2021-11-30 2023-06-08 Bayer Aktiengesellschaft Bis(hetero)aryl thioether oxadiazines as fungicidal compounds
WO2023108035A1 (en) 2021-12-09 2023-06-15 Pairwise Plants Services, Inc. Methods for improving floret fertility and seed yield
WO2023147526A1 (en) 2022-01-31 2023-08-03 Pairwise Plants Services, Inc. Suppression of shade avoidance response in plants
WO2023148031A1 (en) 2022-02-01 2023-08-10 Globachem Nv Methods and compositions for controlling pests in cotton
WO2023148028A1 (en) 2022-02-01 2023-08-10 Globachem Nv Methods and compositions for controlling pests
WO2023168217A1 (en) 2022-03-02 2023-09-07 Pairwise Plants Services, Inc. Modification of brassinosteroid receptor genes to improve yield traits
WO2023192838A1 (en) 2022-03-31 2023-10-05 Pairwise Plants Services, Inc. Early flowering rosaceae plants with improved characteristics
WO2023196886A1 (en) 2022-04-07 2023-10-12 Pairwise Plants Services, Inc. Methods and compositions for improving resistance to fusarium head blight
WO2023205714A1 (en) 2022-04-21 2023-10-26 Pairwise Plants Services, Inc. Methods and compositions for improving yield traits
WO2023215704A1 (en) 2022-05-02 2023-11-09 Pairwise Plants Services, Inc. Methods and compositions for enhancing yield and disease resistance
WO2023213670A1 (en) 2022-05-03 2023-11-09 Bayer Aktiengesellschaft Crystalline forms of (5s)-3-[3-(3-chloro-2-fluorophenoxy)-6-methylpyridazin-4-yl]-5-(2-chloro-4-methylbenzyl)-5,6-dihydro-4h-1,2,4-oxadiazine
WO2023213626A1 (en) 2022-05-03 2023-11-09 Bayer Aktiengesellschaft Use of (5s)-3-[3-(3-chloro-2-fluorophenoxy)-6-methylpyridazin-4-yl]-5-(2-chloro-4-methylbenzyl)-5,6-dihydro-4h-1,2,4-oxadiazine for controlling unwanted microorganisms
WO2023215809A1 (en) 2022-05-05 2023-11-09 Pairwise Plants Services, Inc. Methods and compositions for modifying root architecture and/or improving plant yield traits
WO2024006679A1 (en) 2022-06-27 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024006791A1 (en) 2022-06-29 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024006792A1 (en) 2022-06-29 2024-01-04 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024030984A1 (en) 2022-08-04 2024-02-08 Pairwise Plants Services, Inc. Methods and compositions for improving yield traits
WO2024036240A1 (en) 2022-08-11 2024-02-15 Pairwise Plants Services, Inc. Methods and compositions for controlling meristem size for crop improvement
WO2024054880A1 (en) 2022-09-08 2024-03-14 Pairwise Plants Services, Inc. Methods and compositions for improving yield characteristics in plants
WO2024068520A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
EP4295688A1 (en) 2022-09-28 2023-12-27 Bayer Aktiengesellschaft Active compound combination
WO2024068517A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2024068518A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-heteroaryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
WO2024068519A1 (en) 2022-09-28 2024-04-04 Bayer Aktiengesellschaft 3-(hetero)aryl-5-chlorodifluoromethyl-1,2,4-oxadiazole as fungicide
EP4385327A1 (en) 2022-12-15 2024-06-19 Kimitec Group S.L. Biopesticide composition and method for controlling and treating broad spectrum of pests and diseases in plants
WO2024126688A1 (en) 2022-12-15 2024-06-20 Kimitec Biogroup S.L Biopesticide composition and method for controlling and treating broad spectrum of pests and diseases in plants
WO2024137438A2 (en) 2022-12-19 2024-06-27 BASF Agricultural Solutions Seed US LLC Insect toxin genes and methods for their use
WO2024137446A1 (en) 2022-12-19 2024-06-27 BASF Agricultural Solutions Seed US LLC Methods of identifying and evaluating genes for insect control
WO2024137445A1 (en) 2022-12-20 2024-06-27 BASF Agricultural Solutions Seed US LLC Methods of identifying and evaluating genes for insect control
WO2024173622A1 (en) 2023-02-16 2024-08-22 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024182658A1 (en) 2023-03-02 2024-09-06 Pairwise Plants Services, Inc. Methods and compositions for modifying shade avoidance in plants
WO2024186950A1 (en) 2023-03-09 2024-09-12 Pairwise Plants Services, Inc. Modification of brassinosteroid signaling pathway genes for improving yield traits in plants

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US7521550B2 (en) 2009-04-21
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