WO2014159836A1 - Insecticidal proteins with activity against hemiptera and methods of use - Google Patents
Insecticidal proteins with activity against hemiptera and methods of use Download PDFInfo
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- WO2014159836A1 WO2014159836A1 PCT/US2014/025286 US2014025286W WO2014159836A1 WO 2014159836 A1 WO2014159836 A1 WO 2014159836A1 US 2014025286 W US2014025286 W US 2014025286W WO 2014159836 A1 WO2014159836 A1 WO 2014159836A1
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
- C12N15/8271—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance
- C12N15/8279—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance for biotic stress resistance, pathogen resistance, disease resistance
- C12N15/8286—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for stress resistance, e.g. heavy metal resistance for biotic stress resistance, pathogen resistance, disease resistance for insect resistance
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N37/00—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids
- A01N37/44—Biocides, pest repellants or attractants, or plant growth regulators containing organic compounds containing a carbon atom having three bonds to hetero atoms with at the most two bonds to halogen, e.g. carboxylic acids containing at least one carboxylic group or a thio analogue, or a derivative thereof, and a nitrogen atom attached to the same carbon skeleton by a single or double bond, this nitrogen atom not being a member of a derivative or of a thio analogue of a carboxylic group, e.g. amino-carboxylic acids
- A01N37/46—N-acyl derivatives
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N63/00—Biocides, pest repellants or attractants, or plant growth regulators containing microorganisms, viruses, microbial fungi, animals or substances produced by, or obtained from, microorganisms, viruses, microbial fungi or animals, e.g. enzymes or fermentates
- A01N63/50—Isolated enzymes; Isolated proteins
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/195—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from bacteria
- C07K14/32—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from bacteria from Bacillus (G)
- C07K14/325—Bacillus thuringiensis crystal peptides, i.e. delta-endotoxins
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A40/00—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
- Y02A40/10—Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
- Y02A40/146—Genetically Modified [GMO] plants, e.g. transgenic plants
Definitions
- sequence listing is submitted electronically as an ASCII formatted sequence listing with a file named "5264WOPCT_Sequence_Listing.TXT" and is filed concurrently with the specification.
- sequence listing contained in this ASCII formatted document is part of the specification and is herein incorporated by reference in its entirety.
- compositions and methods of the disclosure utilize the disclosed nucleic acids and their encoded pesticidal polypeptides to control plant pests.
- Insect pests are a major factor in the loss of the world's agricultural crops. For example, armyworm feeding, black cutworm damage, or European corn borer damage can be economically devastating to agricultural producers. Insect pest-related crop loss from European corn borer attacks on field and sweet corn alone has reached about one billion dollars a year in damage and control expenses.
- biopesticides Biological control of insect pests of agricultural significance using a microbial agent, such as fungi, bacteria, or another species of insect affords an environmentally friendly and commercially attractive alternative to synthetic chemical pesticides.
- a microbial agent such as fungi, bacteria, or another species of insect affords an environmentally friendly and commercially attractive alternative to synthetic chemical pesticides.
- biopesticides present a lower risk of pollution and environmental hazards, and biopesticides provide greater target specificity than is characteristic of traditional broad-spectrum chemical insecticides.
- biopesticides often cost less to produce and thus improve economic yield for a wide variety of crops.
- Bacillus Certain species of microorganisms of the genus Bacillus are known to possess pesticidal activity against a broad range of insect pests including Lepidoptera, Diptera, Coleoptera, Hemiptera, and others.
- Bacillus thuringiensis (Bt) and Bacillus papilliae are among the most successful biocontrol agents discovered to date. Insect pathogenicity has also been attributed to strains of B. larvae, B. lentimorbus, B. sphaericus and B. cereus.
- Microbial insecticides particularly those obtained from Bacillus strains, have played an important role in agriculture as alternatives to chemical pest control.
- Crop plants have been developed with enhanced insect resistance by genetically engineering crop plants to produce pesticidal proteins from Bacillus. These genetically engineered crops are now widely used in American agriculture and have provided producers with an environmentally friendly alternative to traditional insect-control methods. While they have proven to be very successful commercially, these genetically engineered, insect-resistant crop plants typically provide resistance to only a narrow range of economically important pests. Some insects have developed resistance to some insecticidal polypeptides in these genetically engineered crops.
- pesticidal proteins with a broader range of insecticidal activity against insect pests, e.g., toxins which are active against a greater variety of insects from the order Lepidoptera, Coleoptera, Hemiptera, and others.
- biopesticides having improved insecticidal activity, and activity against insects that have developed resistance to existing pesticides and pesticidal proteins.
- compositions and methods for conferring pesticidal activity to bacteria, plants, plant cells, tissues and seeds include nucleic acid molecules encoding sequences for pesticidal and insecticidal polypeptides, vectors comprising those nucleic acid molecules, and host cells comprising the vectors. Compositions also include the pesticidal polypeptide sequences and antibodies to those polypeptides.
- the nucleic acid sequences can be used in DNA constructs or expression cassettes for transformation and expression in organisms, including microorganisms and plants.
- the nucleotide or amino acid sequences may be synthetic sequences that have been designed for expression in an organism including, but not limited to, a microorganism or a plant.
- Compositions also comprise transformed bacteria, plants, plant cells, tissues and seeds.
- isolated or recombinant nucleic acid molecules are provided encoding MP467 or MP812 polypeptides, including amino acid substitutions, deletions, insertions, fragments of SEQ ID NO: 2 or SEQ ID NO: 24.
- amino acid sequences corresponding to the MP467 or MP812 polypeptides are encompassed.
- isolated or recombinant nucleic acid molecules of SEQ ID NO: 1 or SEQ ID NO: 23 capable of encoding MP467 or MP812 polypeptides as well as amino acid substitutions, deletions, insertions, fragments thereof, and combinations thereof.
- Nucleic acid sequences that are complementary to a nucleic acid sequence of the embodiments or that hybridize to a sequence of the embodiments are also encompassed.
- transgenic plants of the embodiments express one or more of the pesticidal sequences disclosed herein.
- the transgenic plant further comprises one or more additional genes for insect resistance, for example, one or more additional genes for controlling Coleopteran, Lepidopteran, Hemipteran or nematode pests. It will be understood by one of skill in the art that the transgenic plant may comprise any gene imparting an agronomic trait of interest.
- kits for detecting the presence of a MP467 polypeptide or a MP812 polypeptide or detecting the presence of a polynucleotide encoding a MP467 polypeptide and/or a MP812 polypeptide in a sample is provided.
- the kit may be provided along with all reagents and control samples necessary for carrying out a method for detecting the intended agent, as well as instructions for use.
- compositions and methods of the embodiments are useful for the production of organisms with enhanced pest resistance or tolerance. These organisms and compositions comprising the organisms are desirable for agricultural purposes.
- compositions of the embodiments are also useful for generating altered or improved proteins that have pesticidal activity or for detecting the presence of MP467 polypeptides or nucleic acids and MP812 polypeptides or nucleic acids in products or organisms.
- similar). The residues (Phe26, Val48, Pro50, Ile52, Tyr56, Met193, Val202, His205, Tyr206, Phe207, Trp208, Phe209, and Leu210) constituting the hydrophobic patch of MP467 (SEQ ID NO: 2) are indicated by a " * " below the sequence.
- Figure 3 shows an amino acid sequence alignment of MP467 (SEQ ID NO: 2) with a parasporin 2/Cry46Aa protein (SEQ ID NO: 10) from Bacillus thuringiensis. Identical and similar amino acids between MP467 (SEQ ID NO: 2) and Cry46Aa (SEQ ID NO: 10) are highlighted (
- identical;
- similar). The residues (Phe26, Val48, Pro50, Ile52, Tyr56, Met193, Val202, His205, Tyr206, Phe207, Trp208, Phe209, and Leu210) constituting the hydrophobic patch of MP467 (SEQ ID NO: 2) are indicated by a " * " below the sequence.
- Figure 4 shows an amino acid sequence alignment of MP467 (SEQ ID NO: 2) with the insecticidal inactive homologs MP543 (SEQ ID NO: 6) and MP544 (SEQ ID NO: 8).
- the sequence diversity between MP543 (SEQ ID NO: 6) and MP544 (SEQ ID NO: 8) compared to MP467 (SEQ ID NO: 2) is highlighted
- the residues (Phe26, Val48, Pro50, Ile52, Tyr56, Met193, Val202, His205, Tyr206, Phe207, Trp208, Phe209, and Leu210) constituting the hydrophobic patch of MP467 (SEQ ID NO: 2) are indicated by a " * " below the sequence.
- the alternating residues in the ⁇ hairpins are underlined and indicated by a "+” below the sequence.
- Figure 5 shows an amino acid sequence alignment of Beta hairpin structure regions from MP467 (467) (SEQ ID NO: 14) and homologs: parasporin-2 (Ps2) (SEQ ID NO: 15); hydralysin (Hdr) (SEQ ID NO: 16); alpha toxin (ApT) (SEQ ID NO: 17); aerolysin (Aer) (SEQ ID NO: 18); ⁇ -toxin (Epn) (SEQ ID NO: 19); hemolytic lectin (LSL) (SEQ ID NO: 20); enterotoxin (CPE) (SEQ ID NO: 21 ); and alpha-hemolysin (Aph) (SEQ ID NO: 22).
- Ps2 parasporin-2
- Hdr hydralysin
- ApT alpha toxin
- Amer aerolysin
- Epn ⁇ -toxin
- LSL hemolytic lectin
- CPE enterotoxin
- SEQ ID NO: 21
- Figure 6 shows the structure of the pore stem of ohemolysin indicating the ⁇ - hairpin region.
- Figure 7 shows the overall three-domain structure of MP467, MP812, and Cry
- Figure 8 shows structural comparisons between MP467 homologs.
- Figure 9 shows the structure of Domain 1 of MP467 and MP812 indicating helix 1 (H1 ), helix 2 (H2), helix 3 (H3), helix 4 (H4).
- Residues H205, Y206, F207, W208, and F209 of the ⁇ '- ⁇ -turn region of MP467 (SEQ ID NO: 2) are highlighted.
- the corresponding residues H229, H230, F231 , W232, and A233 of MP812 (SEQ ID NO: 24) are boxed.
- Figure 10 shows an amino acid sequence alignment of MP467 (SEQ ID NO: 2) and MP812 (SEQ ID NO: 24. Identical and similar amino acids between MP467 (SEQ ID NO: 2) and MP812 (SEQ ID NO: 12) are highlighted
- identical;
- similar).
- the embodiments of the disclosure are drawn to compositions and methods for controlling insect pests, particularly plant pests. More specifically, the isolated nucleic acid of the embodiments, and fragments and variants thereof, comprise nucleotide sequences that encode pesticidal polypeptides (e.g., proteins).
- pesticidal polypeptides e.g., proteins
- the disclosed pesticidal proteins are biologically active (e.g., pesticidal) against insect pests such as, but not limited to, insect pests of the order Lepidoptera, Coleoptera, and Hemiptera.
- Insect pests of interest include, but are not limited to: Ostrinia nubilalis (European Corn Borer), Spodoptera frugiperda (Fall Armyworm), Helicoverpa zea Boddie (Corn Earworm), Agrotis ipsilon Hufnagel (Black Cutworm), Pseudoplusia includens Walker (Soybean Looper), Anticarsia gemmatalis Hubner (Velvetbean Caterpillar), Diabrotica virgifera virgifera (Western Corn Rootworm), Southern Corn Rootworm (Diabrotica spp.), Northern Corn Rootworm (Diabrotica spp.), Mexican Bean Beetle (Epilachna varivestis Mulsant), Stinkbugs (family Pentatomidae) and Lygus spp.
- compositions of the embodiments comprise isolated nucleic acids, and fragments and variants thereof that encode pesticidal polypeptides, expression cassettes comprising nucleotide sequences of the embodiments, isolated pesticidal proteins and variants and fragments thereof, and pesticidal compositions.
- An isolated three-domain insecticidal protein having a structure comprising:
- a Domain I comprising a surface hydrophobic patch and a type V ⁇ -turn
- b. a Domain II comprising a surface hydrophobic patch and a type V ⁇ -turn
- a Domain III wherein the surface of Domain II and Domain III comprise a stripe of solvent exposed serine and threonine residues.
- Domain I further comprises an anti-parallel ⁇ -sheet with four short strands and four ohelices designated as helix 1 , helix 2, helix 3, and helix 4.
- Domain II comprises about residue 66 to about residue 79; about residue 104 to about residue 154; about residue 175 to about residue 186; and about residue 224 to about residue 234 corresponding to the residues of SEQ ID NO: 2. 13.
- Domain III comprises the same five ⁇ -strands of Domain II which extend and refold into domain III with a beta-sandwich structure, wherein the three strands ⁇ 5/ ⁇ 6, ⁇ 1 1 , and ⁇ 13 make a180° twist in the middle forming a new 3 stranded ⁇ -sheet as one side of a ⁇ -sandwich and ⁇ 7 and ⁇ 10 spray from the central sheet, twist in middle, and hydrophobically pack against strands ⁇ 5/ ⁇ 6, ⁇ 1 1 , and ⁇ 13.
- Domain III comprises from about residue 80 to about residue 103; about residue 155 to about residue 174; and about residue 235 to about residue 246 corresponding to the residues of SEQ ID NO: 2.
- the isolated three-domain insecticidal protein of any one of embodiments 1 to 24, wherein the three-domain insecticidal protein has at least 95% identity to SEQ ID NO: 2.
- nucleic acid molecule of embodiment 31 wherein said nucleic acid molecule is a synthetic molecule that has been designed for expression in a plant.
- 33. A DNA construct comprising the nucleic acid molecule of embodiment 31 or 32.
- DNA construct of embodiment 33 wherein the DNA construct further comprises a heterologous promoter operably linked to the nucleic acid molecule encoding the three-domain insecticidal protein.
- a host cell comprising the DNA construct of embodiment 33 or 34.
- a transgenic plant comprising the DNA construct of embodiment 33 or 34.
- transgenic plant of embodiment 38 wherein the plant is selected from the group consisting of: maize, sorghum, wheat, sunflower, tomato, cruciferous species, capsicum species, potato, cotton, rice, soybean, sugar beet, sugarcane, tobacco, barley, and oilseed rape.
- a composition comprising the three-domain insecticidal protein of any one of embodiments 1 to 30. 42. The composition of embodiment 41 , wherein said composition is selected from the group consisting of a powder, dust, pellet, granule, spray, emulsion, colloid, and solution.
- composition of embodiment 42 wherein said composition is prepared by desiccation, lyophilization, homogenization, extraction, filtration, centrifugation, sedimentation, or concentration of a culture of micro-organisms.
- a method for controlling a pest population comprising contacting said population with an insecticidally-effective amount of the three-domain insecticidal protein of any one of embodiments 1 to 30.
- a method for killing a pest comprising contacting said pest with, or feeding to said pest, an insecticidally-effective amount of the three-domain insecticidal protein of any one of embodiment 1 to 30.
- a method for protecting a plant from a pest comprising introducing into said plant or cell thereof at least one DNA construct of embodiment 33 or 34.
- insect species is selected from Brown Marmorated Stink Bug (Halyomorpha halys), Southern green stink bug (Nezara viridula), green stink bug (Chinavia hilare), Brown stink bug (Euschistus servus), Dusky stink bug (Euschistus tristigmus), Euschistus quadrator, Rice stink bug ⁇ Oebalus pugnax),
- Redshouldered stink bug (Thyanta accerra McAtee), Thyanta custator, Redbanded stink bug (Piezodorus guildini), Harlequin bug (Murgantia histrionica), Edessa bifida, and Twice-stabbed stink bug (Cosmopepla lintneriana Kirkaldy).
- insect species is selected from European corn borer (Ostrinia nubilalis), corn earworm (Helicoverpa zea), black cutworm (Agrotis ipsilon), fall armyworm (Spodoptera frugiperda), Soybean looper (Pseudoplusia includens) and Velvet bean caterpillar (Anticarsia gemmatalis).
- European corn borer Ostrinia nubilalis
- corn earworm Helicoverpa zea
- black cutworm Agrotis ipsilon
- fall armyworm Spodoptera frugiperda
- Soybean looper Pseudoplusia includens
- Velvet bean caterpillar Anticarsia gemmatalis
- insect species is selected from Western corn rootworm (Diabrotica virgifera virgifera), Northern corn rootworm (Diabrotica barberi), Mexican corn rootworm (Diabrotica virgifera zeae).
- a method for producing a three-domain insecticidal polypeptide comprising culturing the host cell of any one of embodiments 35 to 37 under conditions in which the nucleic acid molecule encoding the polypeptide is expressed.
- a method for protecting a plant from a pest comprising introducing into said plant or cell thereof at least one DNA construct comprising a nucleotide sequence that encodes a insecticidal polypeptide, having at least 80% sequence identity to the amino acid sequence of SEQ ID NO: 10.
- the embodiments further provide isolated pesticidal (e.g., insecticidal) polypeptides encoded by either a naturally-occurring or modified nucleic acid of the embodiments. More specifically, the embodiments provide polypeptides comprising an amino acid sequence set forth in SEQ ID NO: 2 and SEQ ID NO: 24, and the polypeptides encoded by nucleic acids described herein, for example those set forth in SEQ ID NO: 1 and SEQ ID NO: 23, and fragments and variants thereof, including but not limited to the polypeptides of SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45,
- the embodiments further provide isolated pesticidal (e.g., insecticidal) polypeptides More specifically, the embodiments provide polypeptides comprising an amino acid sequence set forth in SEQ ID NO: 2 and SEQ ID NO: 24, fragments and variants thereof, including but not limited to SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO: 46, SEQ ID NO: 47, SEQ ID NO: 48, SEQ ID NO: 49, SEQ ID NO: 50, SEQ ID NO: 51 , SEQ ID NO: 52, SEQ ID NO: 53, SEQ ID NO: 54, S
- the insecticidal polypeptide has at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 81 %, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91 %, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 2, SEQ ID NO: 10, SEQ ID NO: 24, SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO: 46, SEQ ID NO: 47, SEQ ID NO: 2, S
- the insecticidal polypeptide has at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 81 %, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91 %, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 2.
- the insecticidal polypeptide has at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 81 %, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91 %, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 24.
- insecticidal polypeptide has at least 40%, 45%, 50%,
- Some embodiments provide modified pesticidal polypeptides characterized by improved insecticidal activity relative to the pesticidal activity of the corresponding wild- type protein.
- the embodiments further provide plants and microorganisms transformed with these novel nucleic acids, and methods involving the use of such nucleic acids, pesticidal compositions, transformed organisms, and products thereof in controlling insect pests.
- the nucleic acids and nucleotide sequences of the embodiments may be used to transform any organism to produce the encoded pesticidal proteins. Methods are provided that involve the use of such transformed organisms to control plant pests.
- the nucleic acids and nucleotide sequences of the embodiments may also be used to transform organelles such as chloroplasts (McBride et al. (1995) Biotechnology 13: 362- 365; and Kota et al. (1999) Proc. Natl. Acad. Sci. USA 96: 1840-1845).
- the embodiments further relate to the identification of fragments and variants of the naturally-occurring coding sequence that encode biologically active pesticidal proteins.
- the nucleotide sequences of the embodiments find direct use in methods for controlling pests. Accordingly, the embodiments provide new approaches for controlling insect pests that do not depend on the use of traditional, synthetic chemical insecticides.
- the embodiments involve the discovery of naturally-occurring, biodegradable pesticides and the genes that encode them.
- the embodiments further provide fragments and variants of the naturally occurring coding sequence that also encode biologically active (e.g., pesticidal) polypeptides.
- the nucleic acids of the embodiments encompass nucleic acid or nucleotide sequences that have been optimized for expression by the cells of a particular organism, for example nucleic acid sequences that have been back-translated (i.e., reverse translated) using plant-preferred codons based on the amino acid sequence of a polypeptide having enhanced pesticidal activity.
- the embodiments further provide mutations which confer improved or altered properties on the polypeptides of the embodiments. See, e.g., copending U.S. Application Nos. 10/606,320, filed June 25, 2003, and 10/746,914, filed December 24, 2003.
- nucleic acids are written left to right in 5' to 3' orientation; amino acid sequences are written left to right in amino to carboxy orientation, respectively. Numeric ranges are inclusive of the numbers defining the range. Amino acids may be referred to herein by either their commonly known three letter symbols or by the one-letter symbols recommended by the lUPAC-IUB Biochemical Nomenclature Commission. Nucleotides, likewise, may be referred to by their commonly accepted single-letter codes. The above terms are more fully defined by reference to the specification as a whole.
- Pesticidal toxin or “pesticidal protein” is intended a protein that has toxic activity against one or more pests, including, but not limited to, members of the Lepidoptera, Diptera, Hemiptera, and Coleoptera orders, or the Nematoda phylum, or a protein that has homology to such a protein. Pesticidal proteins have been isolated from organisms including, for example, Bacillus sp., Pseudomonas sp., Photorhabdus sp., Xenorhabdus sp., Clostridium bifermentans and Paenibacillus popilliae.
- polypeptide peptide
- protein protein
- amino acid polymers in which one or more amino acid residues is an artificial chemical analogue of a corresponding naturally occurring amino acid, as well as to naturally occurring amino acid polymers.
- amino acid residue or “amino acid residue” or “amino acid” are used interchangeably herein to refer to an amino acid that is incorporated into a protein, polypeptide, or peptide (collectively “protein”).
- the amino acid may be a naturally occurring amino acid and, unless otherwise limited, may encompass known analogues of natural amino acids that can function in a similar manner as naturally occurring amino acids.
- Polypeptides of the embodiments can be produced either from a nucleic acid disclosed herein, or by the use of standard molecular biology techniques.
- a protein of the embodiments can be produced by expression of a recombinant nucleic acid of the embodiments in an appropriate host cell, or alternatively by a combination of ex vivo procedures.
- isolated and purified are used interchangeably to refer to nucleic acids or polypeptides or biologically active portions thereof that are substantially or essentially free from components that normally accompany or interact with the nucleic acid or polypeptide as found in its naturally occurring environment.
- an isolated or purified nucleic acid or polypeptide is substantially free of other cellular material or culture medium when produced by recombinant techniques, or substantially free of chemical precursors or other chemicals when chemically synthesized.
- polypeptides of the disclosure include amino acid sequences deduced from the full-length nucleic acid sequences disclosed herein, and amino acid sequences that are shorter than the full-length sequences, either due to the use of an alternate downstream start site, or due to processing that produces a shorter protein having pesticidal activity. Processing may occur in the organism the protein is expressed in, or in the pest after ingestion of the protein.
- the nucleic acid molecule encoding the MP467 polypeptide or MP812 polypeptide is a non-genomic nucleic acid sequence.
- a "non- genomic nucleic acid sequence” or “non-genomic nucleic acid molecule” or “non-genomic polynucleotide” refers to a nucleic acid molecule that has one or more change in the nucleic acid sequence compared to a native or genomic nucleic acid sequence.
- the change to a native or genomic nucleic acid molecule includes but is not limited to: changes in the nucleic acid sequence due to the degeneracy of the genetic code; codon optimization of the nucleic acid sequence for expression in plants; changes in the nucleic acid sequence to introduce at least one amino acid substitution, insertion, deletion and/or addition compared to the native or genomic sequence; removal of one or more intron associated with the genomic nucleic acid sequence; insertion of one or more heterologous introns; deletion of one or more upstream or downstream regulatory regions associated with the genomic nucleic acid sequence; insertion of one or more heterologous upstream or downstream regulatory regions; deletion of the 5' and/or 3' untranslated region associated with the genomic nucleic acid sequence; insertion of a heterologous 5' and/or 3' untranslated region; and modification of a polyadenylation site.
- the non-genomic nucleic acid molecule is a cDNA.
- the non-genomic nucleic acid molecule is a cDNA
- the term "improved insecticidal activity” or “improved pesticidal activity” refers to an insecticidal polypeptide of the embodiments that has enhanced insecticidal activity relative to the activity of its corresponding wild-type protein, and/or an insecticidal polypeptide that is effective against a broader range of insects, and/or an insecticidal polypeptide having specificity for an insect that is not susceptible to the toxicity of the wild-type protein.
- a finding of improved or enhanced pesticidal activity requires a demonstration of an increase of pesticidal activity of at least 10%, against the insect target, or at least 20%, 25%, 30%, 35%, 40%, 45%, 50%, 60%, 70%, 100%, 150%, 200%, or 300% or greater increase of pesticidal activity relative to the pesticidal activity of the wild-type insecticidal polypeptide determined against the same insect.
- an improved pesticidal or insecticidal activity is provided where a wider or narrower range of insects controlled by the polypeptide relative to the range of insects that is affected by a wild-type toxin.
- a wider range of control may be desirable where versatility is desired, while a narrower range may be desirable where, for example, beneficial insects might otherwise be impacted by use or presence of the toxin.
- an improved pesticidal activity may also be provided by changes in one or more characteristics of a polypeptide; for example, the stability or longevity of a polypeptide in an insect gut may be increased relative to the stability or longevity of a corresponding wild-type protein.
- Changes can be made to the polypeptides of the disclosure that confer other desirable physical or biological characteristics, including but not limited to: reduced hemolytic activity, altered sensitivity to pepsin, trypsin, chymotrypsin, and other proteases. Alterations that can be made without a negative impact on the pesticidal or insecticidal activity of the protein are encompassed by the disclosure.
- conservative amino acid substitutions may be made at one or more predicted, nonessential, amino acid residues.
- a “nonessential” amino acid residue is a residue that can be altered from the wild-type sequence of a polypeptide without altering the biological activity.
- a “conservative amino acid substitution” is one in which the amino acid residue is replaced with an amino acid residue having a similar side chain. Families of amino acid residues having similar side chains have been defined in the art.
- amino acids with basic side chains e.g., lysine, arginine, histidine
- acidic side chains e.g., aspartic acid, glutamic acid
- polar, negatively charged residues and their amides e.g., aspartic acid, asparagine, glutamic, acid, glutamine
- uncharged polar side chains e.g., glycine, asparagine, glutamine, serine, threonine, tyrosine, cysteine
- small aliphatic, nonpolar or slightly polar residues e.g., Alanine, serine, threonine, proline, glycine
- nonpolar side chains e.g., alanine, valine, leucine, isoleucine, proline, phenylalanine, methionine, tryptophan
- large aliphatic, nonpolar residues e.g., methionine, leucine, isoleucine, va
- amino acid substitutions may be made in nonconserved regions that retain function. In general, such substitutions would not be made for conserved amino acid residues or for amino acid residues residing within a conserved motif, where such residues are essential for protein activity, except as otherwise noted herein.
- residues that are conserved and that may be essential for protein activity include, for example, residues that are identical between all proteins contained in an alignment of similar or related toxins to the sequences of the embodiments (e.g., residues that are identical in an alignment of homologous proteins).
- residues that are conserved but that may allow conservative amino acid substitutions and still retain activity include, for example, residues that have only conservative substitutions between all proteins contained in an alignment of similar or related toxins to the sequences of the embodiments (e.g., residues that have only conservative substitutions between all proteins contained in the alignment homologous proteins).
- residues that have only conservative substitutions between all proteins contained in an alignment of similar or related toxins to the sequences of the embodiments e.g., residues that have only conservative substitutions between all proteins contained in the alignment homologous proteins.
- residues that have only conservative substitutions between all proteins contained in the alignment homologous proteins e.g., residues that have only conservative substitutions between all proteins contained in the alignment homologous proteins.
- amino acid substitutions that do not affect biological activity of the protein of interest may be found in the model of Dayhoff, et al., (1978) Atlas of Protein Sequence and Structure (Natl. Biomed. Res. Found., Washington, D.C.), herein incorporated by reference.
- the hydropathic index of amino acids may be considered.
- the importance of the hydropathic amino acid index in conferring interactive biologic function on a protein is generally understood in the art (Kyte and Doolittle, J Mol Biol. 157(1 ): 105-32, 1982). It is accepted that the relative hydropathic character of the amino acid contributes to the secondary structure of the resultant protein, which in turn defines the interaction of the protein with other molecules, for example, enzymes, substrates, receptors, DNA, antibodies, antigens, and the like.
- amino acids may be substituted by other amino acids having a similar hydropathic index or score and still result in a protein with similar biological activity, i.e., still obtain a biological functionally equivalent protein.
- Each amino acid has been assigned a hydropathic index on the basis of its hydrophobicity and charge characteristics (Kyte and Doolittle, Ibid).
- substitution of amino acids whose hydropathic indices are within .+2 is preferred, those which are within +1 are particularly preferred, and those within +0.5 are even more particularly preferred.
- hydrophilicity values have been assigned to amino acid residues: arginine (+3.0); lysine (+3.0); aspartate (+3.0.+0.1 ); glutamate (+3.0.+0.1 ); serine (+0.3); asparagine (+0.2); glutamine (+0.2); glycine (0); threonine (-0.4); proline (-0.5.+0.1 ); alanine (-0.5); histidine (-0.5); cysteine (-1.0); methionine (-1 .3); valine (-1.5); leucine (-1.8); isoleucine (-1.8); tyrosine (-2.3); phenylalanine (-2.5); tryptophan (-3.4).
- alterations may be made to the protein sequence of many proteins at the amino or carboxy terminus without substantially affecting activity.
- This can include insertions, deletions or alterations introduced by modern molecular methods, such as PCR, including PCR amplifications that alter or extend the protein coding sequence by virtue of inclusion of amino acid encoding sequences in the oligonucleotides utilized in the PCR amplification.
- the protein sequences added can include entire protein- coding sequences, such as those used commonly in the art to generate protein fusions.
- Such fusion proteins are often used to (1 ) increase expression of a protein of interest (2) introduce a binding domain, enzymatic activity or epitope to facilitate either protein purification, protein detection or other experimental uses known in the art (3) target secretion or translation of a protein to a subcellular organelle, such as the periplasmic space of Gram-negative bacteria, mitochondria or chloroplasts of plants or the endoplasmic reticulum of eukaryotic cells, the latter of which often results in glycosylation of the protein.
- a subcellular organelle such as the periplasmic space of Gram-negative bacteria, mitochondria or chloroplasts of plants or the endoplasmic reticulum of eukaryotic cells, the latter of which often results in glycosylation of the protein.
- Variant nucleotide and amino acid sequences of the disclosure also encompass sequences derived from mutagenic and recombinogenic procedures such as DNA shuffling. With such a procedure, one or more different polypeptide coding regions can be used to create a new polypeptide possessing the desired properties. In this manner, libraries of recombinant polynucleotides are generated from a population of related sequence polynucleotides comprising sequence regions that have substantial sequence identity and can be homologously recombined in vitro or in vivo.
- sequence motifs encoding a domain of interest may be shuffled between a pesticidal gene and other known pesticidal genes to obtain a new gene coding for a protein with an improved property of interest, such as an increased insecticidal activity.
- Strategies for such DNA shuffling are known in the art. See, for example, Stemmer, (1994) Proc. Natl. Acad. Sci. USA 91 :10747-10751 ; Stemmer, (1994) Nature 370:389- 391 ; Crameri, et al., (1997) Nature Biotech. 15:436-438; Moore, et al., (1997) J. Mol. Biol. 272:336-347; Zhang, et al.
- Domain swapping or shuffling is another mechanism for generating altered polypeptides. Domains may be swapped between pesticidal polypeptides, resulting in hybrid or chimeric toxins with improved pesticidal activity or target spectrum. Methods for generating recombinant proteins and testing them for pesticidal activity are well known in the art (see, for example, Naimov, et al, (2001 ) Appl. Environ. Microbiol. 67:5328-5330; de Maagd, et ai, (1996) Appl. Environ. Microbiol. 62:1537-1543; Ge, et al. , (1991 ) J. Biol. Chem.
- the term "reduced hemolytic activity” refers to an insecticidal polypeptide of the embodiments that has decreased red blood cell lysis activity relative to the activity of its corresponding wild-type protein.
- the insecticidal polypeptide of the embodiments has reduced hemolytic activity compared to the hemolytic activity of the polypeptide of SEQ ID NO: 2.
- the hemolytic activity is decreased at least 1 .5 fold, 2 fold, 3 fold, 4 fold, 5 fold, 6 fold, 7 fold, 8 fold, 9 fold, 10 fold, 1 1 fold, 12 fold, 13 fold, 14 fold, 15 fold, 16 fold, 17 fold, 18 fold, 19 fold, 20 fold or greater compared to the hemolytic activity of the polypeptide of SEQ ID NO: 2.
- Amino acid sequences homologous to MP467 were identified by similarity search on the non-redundant database (nr) of National Center for Bioinformatics Information (NCBI) using BLAST and PSI-BLAST.
- NHL3 Hidden Markov Model profile method
- HMMER3 was also used to expand the membership search through two PFAM families, aerolysin and ETX_MT2 (Clostridium ⁇ -toxin and Bacillus mosquitocidal toxin).
- a total of 485 sequences in the NCBI non-redundant database have a low, but detectable, similarity to the MP467 ( ⁇ 70%).
- a hydralysin from Hydra viridissima showed 67% sequence similarity to MP467 when aligned over the entire length of MP467 (see Figure 1 , and SEQ ID NO: 4). This protein demonstrated weak insecticidal activity with a similar spectrum.
- a protein from Bacillus thuringiensis, parasporin-2Aa (Ito A. et al, J. Biol. Chem, 279:21282-21286 2004 - Accession # BAC79010.1 ) showed -57% sequence similarity to MP467 (SEQ ID NO: 2) when aligned over the entire length of MP467 (see Figure 3 and SEQ ID NO: 10).
- SEQ ID NO: 2 sequence similarity to MP467
- Cry46Aa As used herein, "parasporin-2Aa” “PS2” and “Cry46Aa” may be used interchangeably and refer to SEQ ID NO: 10 and its functional variants and fragments. Contrary to the reports in the literature that indicated Cry46Aa (SEQ ID NO: 10) lacked insecticidal activity it was surprisingly demonstrated herein that Cry46Aa (SEQ ID NO: 10) had insecticidal activity over a broad range of insects (See Example 2). Additional Cry46A homologs have recently been identified from Bacillus thuringiensis Strain A1470 (Okumura S.
- nucleic acid molecules comprising nucleic acid sequences encoding the polypeptides of the disclosure or biologically active portions thereof, as well as nucleic acid molecules sufficient for use as hybridization probes to identify nucleic acid molecules encoding proteins with regions of sequence homology.
- nucleic acid is intended to include DNA molecules (e.g., recombinant DNA, cDNA, genomic DNA, plastid DNA, mitochondrial DNA) and RNA molecules (e.g., mRNA) and analogs of the DNA or RNA generated using nucleotide analogs.
- the nucleic acid molecule can be single-stranded or double- stranded, but preferably is double-stranded DNA.
- nucleic acid comprises the requisite information to direct translation of the nucleotide sequence into a specified protein.
- the information by which a protein is encoded is specified by the use of codons.
- a nucleic acid encoding a protein may comprise non-translated sequences (e.g., introns) within translated regions of the nucleic acid or may lack such intervening non-translated sequences (e.g., as in cDNA).
- full-length sequence in reference to a specified polynucleotide or its encoded protein means having the entire nucleic acid sequence or the entire amino acid sequence of a native (non-synthetic), endogenous sequence.
- a full-length polynucleotide encodes the full-length, catalytically active form of the specified protein.
- an “isolated” or “recombinant” nucleic acid molecule (or DNA) is used herein to refer to a nucleic acid sequence (or DNA) that is no longer in its natural environment, for example in an in vitro or in a recombinant bacterial or plant host cell.
- an “isolated” or “recombinant” nucleic acid is free of sequences (preferably protein encoding sequences) that naturally flank the nucleic acid (i.e., sequences located at the 5' and 3' ends of the nucleic acid) in the genomic DNA of the organism from which the nucleic acid is derived.
- isolated or “recombinant” when used to refer to nucleic acid molecules excludes isolated chromosomes.
- the recombinant nucleic acid molecule encoding a polypeptide of the disclosure can contain less than about 5 kb, 4 kb, 3 kb, 2 kb, 1 kb, 0.5 kb, or 0.1 kb of nucleic acid sequences that naturally flank the nucleic acid molecule in genomic DNA of the cell from which the nucleic acid is derived.
- a variety of polynucleotides that encode a polypeptide of the disclosure or related proteins are contemplated.
- Such polynucleotides are useful for production of polypeptides in host cells when operably linked to suitable promoter, transcription termination and/or polyadenylation sequences. Such polynucleotides are also useful as probes for isolating homologous or substantially homologous polynucleotides that encode polypeptides of the disclosure or related proteins.
- mutant nucleotide sequence or “mutation” or “mutagenized nucleotide sequence” connotes a nucleotide sequence that has been mutagenized or altered to contain one or more nucleotide residues (e.g., base pair) that is not present in the corresponding wild-type sequence.
- mutagenesis or alteration consists of one or more additions, deletions, or substitutions or replacements of nucleic acid residues.
- mutations are made by adding, removing, or replacing an amino acid of a proteolytic site
- such addition, removal, or replacement may be within or adjacent to the proteolytic site motif, so long as the object of the mutation is accomplished (i.e., so long as proteolysis at the site is changed).
- a mutant nucleotide sequence can encode a mutant insecticidal toxin showing improved or decreased insecticidal activity, or an amino acid sequence which confers improved or decreased insecticidal activity on a polypeptide containing it.
- the term "mutant” or “mutation” in the context of a protein a polypeptide or amino acid sequence refers to a sequence which has been mutagenized or altered to contain one or more amino acid residues that are not present in the corresponding wild-type sequence. Such mutagenesis or alteration consists of one or more additions, deletions, or substitutions or replacements of amino acid residues.
- a mutant polypeptide shows improved or decreased insecticidal activity, or represents an amino acid sequence which confers improved insecticidal activity on a polypeptide containing it.
- mutant or “mutation” refers to either or both of the mutant nucleotide sequence and the encoded amino acids. Mutants may be used alone or in any compatible combination with other mutants of the embodiments or with other mutants. A “mutant polypeptide” may conversely show a decrease in insecticidal activity. Where more than one mutation is added to a particular nucleic acid or protein, the mutations may be added at the same time or sequentially; if sequentially, mutations may be added in any suitable order.
- polypeptides encoded by nucleotide sequences comprising mutations will comprise at least one amino acid change or addition relative to the native or background sequence, or 2, 3, 4, 5, 6, 7, 8, 9, 10, 1 1 , 12, 13, 14, 15, 16, 17, 18, 19, 20, 21 , 22, 23, 24, 25, 26, 27, 28, 29, 30, 32, 35, 38, 40, 45, 47, 50, 60, 70, 80, 90, 100, 1 10, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, 240, 250, 260, 270, or 280 or more amino acid changes or additions.
- Pesticidal activity of a polypeptide may also be improved by truncation of the native or full-length sequence, as is known in the art.
- embodiments of the disclosure provide amino acid and nucleic acid sequences comprising a variety of mutations, such as for example, mutagenesis of the hydrophobic patch that retain or exceed the pesticidal activity of the wild type protein.
- compositions of the embodiments include nucleic acids, fragments, and variants thereof that encode pesticidal polypeptides.
- the embodiments provide for isolated nucleic acid molecules comprising nucleotide sequences encoding the amino acid sequence shown in SEQ ID NO: 2 and SEQ ID NO: 24, or the nucleotide sequences encoding said amino acid sequence, for example the nucleotide sequence set forth in SEQ ID NO: 1 , SEQ ID NO: 23 and SEQ ID NO: 28 insecticidal fragments and variants thereof and insecticidal variants shown in Table 6.
- fragments and variants of the nucleotide and amino acid sequences and the polypeptides encoded thereby are also encompassed by the embodiments.
- fragment refers to a portion of a nucleotide sequence of a polynucleotide or a portion of an amino acid sequence of a polypeptide of the embodiments.
- Fragments of a nucleotide sequence may encode protein fragments that retain the biological activity of the native or corresponding full-length protein and hence possess pesticidal activity.
- it is acknowledged that some of the polynucleotide and amino acid sequences of the embodiments can correctly be referred to as both fragments and mutants.
- fragment as it is used to refer to nucleic acid sequences of the embodiments, also encompasses sequences that are useful as hybridization probes.
- This class of nucleotide sequences generally does not encode fragment proteins retaining biological activity.
- fragments of a nucleotide sequence may range from at least about 20 nucleotides, about 50 nucleotides, about 100 nucleotides, and up to the full-length nucleotide sequence encoding the proteins of the embodiments.
- a fragment of a nucleotide sequence of the embodiments that encodes a biologically active portion of a pesticidal protein of the embodiments will encode at least 15, 25, 30, 50, 100, 200 or 300 contiguous amino acids, or up to the total number of amino acids present in a pesticidal polypeptide of the embodiments (for example, 258 amino acids for SEQ ID NO: 2).
- the embodiments also encompass polypeptides that are fragments of the exemplary pesticidal proteins of the embodiments and having lengths of at least 15, 25, 30, 50, 100, 200, or 300 contiguous amino acids, or up to the total number of amino acids present in a pesticidal polypeptide of the embodiments.
- Fragments of a nucleotide sequence of the embodiments that are useful as hybridization probes or PCR primers generally need not encode a biologically active portion of a pesticidal protein.
- a fragment of a nucleic acid of the embodiments may encode a biologically active portion of a pesticidal protein, or it may be a fragment that can be used as a hybridization probe or PCR primer using methods disclosed herein.
- a biologically active portion of a pesticidal protein can be prepared by isolating a portion of one of the nucleotide sequences of the embodiments, expressing the encoded portion of the pesticidal protein (e.g., by recombinant expression in vitro), and assessing the activity of the encoded portion of the pesticidal protein.
- Nucleic acids that are fragments of a nucleotide sequence of the embodiments comprise at least 16, 20, 50, 75, 100, 150, 200, 250, 300, 350, 400, 450, 500, 600, 700, or 800 nucleotides, or up to the number of nucleotides present in a nucleotide sequence disclosed herein (for example, 774 nucleotides for SEQ ID NO: 1 ).
- Particular embodiments envision fragments derived from (e.g., produced from) a first nucleic acid of the embodiments, wherein the fragment encodes a truncated toxin characterized by pesticidal activity.
- Truncated polypeptides encoded by the polynucleotide fragments of the embodiments are characterized by pesticidal activity that is either equivalent to, or improved, relative to the activity of the corresponding full-length polypeptide encoded by the first nucleic acid from which the fragment is derived. It is envisioned that such nucleic acid fragments of the embodiments may be truncated at the 3' end of the native or corresponding full-length coding sequence. Nucleic acid fragments may also be truncated at both the 5' and 3' end of the native or corresponding full-length coding sequence.
- variants are used herein to refer to substantially similar sequences.
- conservative variants include those sequences that, because of the degeneracy of the genetic code, encode the amino acid sequence of one of the pesticidal polypeptides of the embodiments.
- Naturally occurring allelic variants such as these can be identified with the use of well-known molecular biology techniques, such as, for example, polymerase chain reaction (PCR) and hybridization techniques as outlined herein.
- PCR polymerase chain reaction
- Variant nucleotide sequences also include synthetically derived nucleotide sequences, such as those generated, for example, by using site-directed mutagenesis but which still encode a pesticidal protein of the embodiments, such as a mutant toxin.
- variants of a particular nucleotide sequence of the embodiments will have at least about 70%, 75%, 80%, 85%, 86%, 87%, 88%, 89%, 90%, 91 %, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or more sequence identity to that particular nucleotide sequence as determined by sequence alignment programs described elsewhere herein using default parameters.
- a variant of a nucleotide sequence of the embodiments may differ from that sequence by as few as 1-15 nucleotides, as few as 1-10, such as 6-10, as few as 5, as few as 4, 3, 2, or even 1 nucleotide.
- Variants of a particular nucleotide sequence of the embodiments can also be evaluated by comparison of the percent sequence identity between the polypeptide encoded by a variant nucleotide sequence and the polypeptide encoded by the reference nucleotide sequence.
- isolated nucleic acids that encode a polypeptide with a given percent sequence identity to the polypeptide of SEQ ID NO: 2 or SEQ ID NO: 24 are disclosed. Percent sequence identity between any two polypeptides can be calculated using sequence alignment programs described elsewhere herein using default parameters.
- the percent sequence identity between the two encoded polypeptides is at least about 40%, 45%, 50%, 55%, 60%, 65%, 70%, generally at least about 75%, 80%, 85%, at least about 90%, 91 %, 92%, 93%, 94%, 95%, 96%, 97%, or at least about 98%, 99% or more sequence identity.
- nucleotide sequences of the embodiments can also be used to isolate corresponding sequences from other organisms, particularly other bacteria, and more particularly other Bacillus strains. In this manner, methods such as PCR, hybridization, and the like can be used to identify such sequences based on their sequence homology to the sequences set forth herein. Sequences that are selected based on their sequence identity to the entire sequences set forth herein or to fragments thereof are encompassed by the embodiments. Such sequences include sequences that are orthologs of the disclosed sequences.
- the term "orthologs" refers to genes derived from a common ancestral gene and which are found in different species as a result of speciation. Genes found in different species are considered orthologs when their nucleotide sequences and/or their encoded protein sequences share substantial identity as defined elsewhere herein. Functions of orthologs are often highly conserved among species.
- oligonucleotide primers can be designed for use in PCR reactions to amplify corresponding DNA sequences from cDNA or genomic DNA extracted from any organism of interest.
- Methods for designing PCR primers and PCR cloning are generally known in the art and are disclosed in Sambrook et al. (1989) Molecular Cloning: A Laboratory Manual (2d ed., Cold Spring Harbor Laboratory Press, Plainview, New York), hereinafter "Sambrook”. See also Innis et al., eds. (1990) PCR Protocols: A Guide to Methods and Applications (Academic Press, New York); Innis and Gelfand, eds.
- PCR PCR Strategies
- nested primers single specific primers
- degenerate primers gene-specific primers
- vector- specific primers partially-mismatched primers
- hybridization techniques all or part of a known nucleotide sequence is used as a probe that selectively hybridizes to other corresponding nucleotide sequences present in a population of cloned genomic DNA fragments or cDNA fragments (i.e., genomic or cDNA libraries) from a chosen organism.
- the hybridization probes may be genomic DNA fragments, cDNA fragments, RNA fragments, or other oligonucleotides, and may be labeled with a detectable group such as 32 P or any other detectable marker.
- probes for hybridization can be made by labeling synthetic oligonucleotides based on the sequences of the embodiments. Methods for preparation of probes for hybridization and for construction of cDNA and genomic libraries are generally known in the art and are disclosed in Sambrook.
- an entire sequence disclosed herein, or one or more portions thereof may be used as a probe capable of specifically hybridizing to corresponding sequences and messenger RNAs.
- probes include sequences that are unique to the sequences of the embodiments and are generally at least about 10 or 20 nucleotides in length.
- Such probes may be used to amplify corresponding sequences from a chosen organism by PCR. This technique may be used to isolate additional coding sequences from a desired organism or as a diagnostic assay to determine the presence of coding sequences in an organism.
- Hybridization techniques include hybridization screening of plated DNA libraries (either plaques or colonies; see, for example, Sambrook).
- Hybridization of such sequences may be carried out under stringent conditions.
- stringent conditions or “stringent hybridization conditions” as used herein refers to conditions under which a probe will hybridize to its target sequence to a detectably greater degree than to other sequences (e.g., at least 2-fold, 5-fold, or 10-fold over background). Stringent conditions are sequence-dependent and will be different in different circumstances. By controlling the stringency of the hybridization and/or washing conditions, target sequences that are 100% complementary to the probe can be identified (homologous probing). Alternatively, stringency conditions can be adjusted to allow some mismatching in sequences so that lower degrees of similarity are detected (heterologous probing). Generally, a probe is less than about 1000 or 500 nucleotides in length.
- stringent conditions will be those in which the salt concentration is less than about 1.5 M Na ion, typically about 0.01 to 1 .0 M Na ion concentration (or other salts) at pH 7.0 to 8.3 and the temperature is at least about 30°C for short probes (e.g. , 10 to 50 nucleotides) and at least about 60°C for long probes (e.g. , greater than 50 nucleotides).
- Stringent conditions may also be achieved with the addition of destabilizing agents such as formamide.
- Exemplary moderate stringency conditions include hybridization in 40 to 45% formamide, 1.0 M NaCI, 1 % SDS at 37 °C, and a wash in 0.5X to 1X SSC at 55 to 60 °C.
- Exemplary high stringency conditions include hybridization in 50% formamide, 1 M NaCI, 1 % SDS at 37 °C, and a final wash in 0.1 X SSC at 60 to 65 °C for at least about 20 minutes.
- wash buffers may comprise about 0.1 % to about 1 % SDS.
- the duration of hybridization is generally less than about 24 hours, usually about 4 to about 12 hours.
- T m thermal melting point
- M the molarity of monovalent cations
- %GC the percentage of guanosine and cytosine nucleotides in the DNA
- % form the percentage of formamide in the hybridization solution
- L the length of the hybrid in base pairs.
- the T m is the temperature (under defined ionic strength and pH) at which 50% of a complementary target sequence hybridizes to a perfectly matched probe. Washes are typically performed at least until equilibrium is reached and a low background level of hybridization is achieved, such as for 2 hours, 1 hour, or 30 minutes.
- T m is reduced by about 1 °C for each 1 % of mismatching; thus, T m , hybridization, and/or wash conditions can be adjusted to hybridize to sequences of the desired identity. For example, if sequences with >90% identity are sought, the T m can be decreased 10°C. Generally, stringent conditions are selected to be about 5 °C lower than the T m for the specific sequence and its complement at a defined ionic strength and pH.
- severely stringent conditions can utilize a hybridization and/or wash at 1 , 2, 3, or 4 °C lower than the T m ; moderately stringent conditions can utilize a hybridization and/or wash at 6, 7, 8, 9, or 10°C lower than the T m ; low stringency conditions can utilize a hybridization and/or wash at 1 1 , 12, 13, 14, 15, or 20 C lower than the T m .
- sequence relationships between two or more nucleic acids or polynucleotides are used to describe the sequence relationships between two or more nucleic acids or polynucleotides: (a) “reference sequence”, (b) “comparison window”, (c) “sequence identity”, (d) “percentage of sequence identity”, and (e) “substantial identity”.
- reference sequence is a defined sequence used as a basis for sequence comparison.
- a reference sequence may be a subset or the entirety of a specified sequence; for example, as a segment of a full-length cDNA or gene sequence, or the complete cDNA or gene sequence.
- comparison window makes reference to a contiguous and specified segment of a polynucleotide sequence, wherein the polynucleotide sequence in the comparison window may comprise additions or deletions (i.e., gaps) compared to the reference sequence (which does not comprise additions or deletions) for optimal alignment of the two sequences.
- the comparison window is at least 20 contiguous nucleotides in length, and optionally can be 30, 40, 50, 100, or longer.
- Gapped BLAST in BLAST 2.0
- Altschul et al. (1997) Nucleic Acids Res. 25:3389.
- PSI-BLAST in BLAST 2.0
- BLAST 2.0 can be used to perform an iterated search that detects distant relationships between molecules. See Altschul et al. (1997) supra.
- the default parameters of the respective programs e.g., BLASTN for nucleotide sequences, BLASTX for proteins
- Alignment may also be performed manually by inspection.
- sequence identity/similarity values provided herein refer to the value obtained using GAP Version 10 using the following parameters: % identity and % similarity for a nucleotide sequence using GAP Weight of 50 and Length Weight of 3, and the nwsgapdna.cmp scoring matrix; % identity and % similarity for an amino acid sequence using GAP Weight of 8 and Length Weight of 2, and the BLOSUM62 scoring matrix; or any equivalent program thereof.
- equivalent program refers to any sequence comparison program that, for any two sequences in question, generates an alignment having identical nucleotide or amino acid residue matches and an identical percent sequence identity when compared to the corresponding alignment generated by GAP Version 10.
- GAP uses the algorithm of Needleman and Wunsch (1970) supra, to find the alignment of two complete sequences that maximizes the number of matches and minimizes the number of gaps. GAP considers all possible alignments and gap positions and creates the alignment with the largest number of matched bases and the fewest gaps. It allows for the provision of a gap creation penalty and a gap extension penalty in units of matched bases. GAP must make a profit of gap creation penalty number of matches for each gap it inserts. If a gap extension penalty greater than zero is chosen, GAP must, in addition, make a profit for each gap inserted of the length of the gap times the gap extension penalty. Default gap creation penalty values and gap extension penalty values in Version 10 of the GCG Wisconsin Genetics Software Package for protein sequences are 8 and 2, respectively.
- the default gap creation penalty is 50 while the default gap extension penalty is 3.
- the gap creation and gap extension penalties can be expressed as an integer selected from the group of integers consisting of from 0 to 200.
- the gap creation and gap extension penalties can be 0, 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65 or greater.
- GAP presents one member of the family of best alignments. There may be many members of this family, but no other member has a better quality. GAP displays four figures of merit for alignments: Quality, Ratio, Identity, and Similarity.
- the Quality is the metric maximized in order to align the sequences. Ratio is the quality divided by the number of bases in the shorter segment.
- Percent Identity is the percent of the symbols that actually match.
- Percent Similarity is the percent of the symbols that are similar. Symbols that are across from gaps are ignored.
- a similarity is scored when the scoring matrix value for a pair of symbols is greater than or equal to 0.50, the similarity threshold.
- the scoring matrix used in Version 10 of the GCG Wisconsin Genetics Software Package is BLOSUM62 (see Henikoff and Henikoff (1989) Proc. Natl. Acad. Sci. USA 89:10915).
- sequence identity or “identity” in the context of two nucleic acid or polypeptide sequences makes reference to the residues in the two sequences that are the same when aligned for maximum correspondence over a specified comparison window.
- percentage of sequence identity is used in reference to proteins it is recognized that residue positions which are not identical often differ by conservative amino acid substitutions, where amino acid residues are substituted for other amino acid residues with similar chemical properties (e.g., charge or hydrophobicity) and therefore do not change the functional properties of the molecule.
- sequences differ in conservative substitutions the percent sequence identity may be adjusted upwards to correct for the conservative nature of the substitution.
- Sequences that differ by such conservative substitutions are said to have "sequence similarity" or "similarity”. Means for making this adjustment are well known to those of skill in the art. Typically this involves scoring a conservative substitution as a partial rather than a full mismatch, thereby increasing the percentage sequence identity. Thus, for example, where an identical amino acid is given a score of 1 and a non-conservative substitution is given a score of zero, a conservative substitution is given a score between zero and 1. The scoring of conservative substitutions is calculated, e.g., as implemented in the program PC/GENE (Intelligenetics, Mountain View, California).
- percentage of sequence identity means the value determined by comparing two optimally aligned sequences over a comparison window, wherein the portion of the polynucleotide sequence in the comparison window may comprise additions or deletions ⁇ i.e., gaps) as compared to the reference sequence (which does not comprise additions or deletions) for optimal alignment of the two sequences. The percentage is calculated by determining the number of positions at which the identical nucleic acid base or amino acid residue occurs in both sequences to yield the number of matched positions, dividing the number of matched positions by the total number of positions in the window of comparison, and multiplying the result by 100 to yield the percentage of sequence identity.
- polynucleotide sequences means that a polynucleotide comprises a sequence that has at least 70%. 80%, 90%, or 95% or more sequence identity when compared to a reference sequence using one of the alignment programs described using standard parameters.
- sequence identity is a sequence that has at least 70%. 80%, 90%, or 95% or more sequence identity when compared to a reference sequence using one of the alignment programs described using standard parameters.
- One of skill in the art will recognize that these values can be appropriately adjusted to determine corresponding identity of proteins encoded by two nucleotide sequences by taking into account codon degeneracy, amino acid similarity, reading frame positioning, and the like.
- Substantial identity of amino acid sequences for these purposes generally means sequence identity of at least 60%, 70%, 80%, 90%, or 95% or more sequence identity.
- nucleotide sequences are substantially identical is if two molecules hybridize to each other under stringent conditions.
- stringent conditions are selected to be about 5°C lower than the T m for the specific sequence at a defined ionic strength and pH.
- stringent conditions encompass temperatures in the range of about 1 °C to about 20°C lower than the T m , depending upon the desired degree of stringency as otherwise qualified herein.
- Nucleic acids that do not hybridize to each other under stringent conditions are still substantially identical if the polypeptides they encode are substantially identical. This may occur, e.g., when a copy of a nucleic acid is created using the maximum codon degeneracy permitted by the genetic code.
- One indication that two nucleic acid sequences are substantially identical is when the polypeptide encoded by the first nucleic acid is immunologically cross reactive with the polypeptide encoded by the second nucleic acid.
- substantially identical in the context of a peptide indicates that a peptide comprises a sequence with at least 70%, 80%, 85%, 90%, 95%, or more sequence identity to a reference sequence over a specified comparison window. Optimal alignment for these purposes can be conducted using the global alignment algorithm of Needleman and Wunsch (1970) supra. An indication that two peptide sequences are substantially identical is that one peptide is immunologically reactive with antibodies raised against the second peptide. Thus, a peptide is substantially identical to a second peptide, for example, where the two peptides differ only by a conservative substitution. Peptides that are "substantially similar" share sequences as noted above except that residue positions that are not identical may differ by conservative amino acid changes.
- nucleotide constructs are not intended to limit the embodiments to nucleotide constructs comprising DNA.
- nucleotide constructs particularly polynucleotides and oligonucleotides composed of ribonucleotides and combinations of ribonucleotides and deoxyribonucleotides, may also be employed in the methods disclosed herein.
- the nucleotide constructs, nucleic acids, and nucleotide sequences of the embodiments additionally encompass all complementary forms of such constructs, molecules, and sequences.
- nucleotide constructs, nucleotide molecules, and nucleotide sequences of the embodiments encompass all nucleotide constructs, molecules, and sequences which can be employed in the methods of the embodiments for transforming plants including, but not limited to, those comprised of deoxyribonucleotides, ribonucleotides, and combinations thereof.
- deoxyribonucleotides and ribonucleotides include both naturally occurring molecules and synthetic analogues.
- nucleotide constructs, nucleic acids, and nucleotide sequences of the embodiments also encompass all forms of nucleotide constructs including, but not limited to, single-stranded forms, double-stranded forms, hairpins, stem-and-loop structures, and the like.
- the sequences of the embodiments are provided in DNA constructs for expression in the organism of interest.
- the construct will include 5' and 3' regulatory sequences operably linked to a sequence of the embodiments.
- operably linked refers to a functional linkage between a promoter and a second sequence, wherein the promoter sequence initiates and mediates transcription of the DNA sequence corresponding to the second sequence.
- operably linked means that the nucleic acid sequences being linked are contiguous and, where necessary to join two protein coding regions, contiguous and in the same reading frame.
- the construct may additionally contain at least one additional gene to be cotransformed into the organism. Alternatively, the additional gene(s) can be provided on multiple DNA constructs.
- Such a DNA construct is provided with a plurality of restriction sites for insertion of the insecticidal sequence to be under the transcriptional regulation of the regulatory regions.
- the DNA construct may additionally contain selectable marker genes.
- the DNA construct may include in the 5' to 3' direction of transcription: a transcriptional and translational initiation region (i.e., a promoter), a DNA sequence of the embodiments, and a transcriptional and translational termination region (i.e., termination region) functional in the organism serving as a host.
- the transcriptional initiation region i.e., the promoter
- the transcriptional initiation region may be native, analogous, foreign or heterologous to the host organism and/or to the sequence of the embodiments.
- the promoter may be the natural sequence or alternatively a synthetic sequence.
- the term "foreign" as used herein indicates that the promoter is not found in the native organism into which the promoter is introduced.
- a chimeric gene comprises a coding sequence operably linked to a transcription initiation region that is heterologous to the coding sequence.
- the expression of the operably linked sequence is altered from the wild-type expression, which results in an alteration in phenotype.
- the termination region may be native with the transcriptional initiation region, may be native with the operably linked DNA sequence of interest, may be native with the plant host, or may be derived from another source (i.e., foreign or heterologous to the promoter, the sequence of interest, the plant host, or any combination thereof).
- Convenient termination regions are available from the Ti-plasmid of A. tumefaciens, such as the octopine synthase and nopaline synthase termination regions. See also Guerineau et al. (1991 ) Mol. Gen. Genet. 262:141-144; Proudfoot (1991 ) Cell 64:671-674; Sanfacon et al. (1991 ) Genes Dev. 5:141-149; Mogen et al. (1990) Plant Cell 2:1261-1272; Munroe et al. (1990) Gene 91 :151-158; Ballas et al. (1989) Nucleic Acids Res. 17:7891 -7903; and Joshi et al. (1987) Nucleic Acid Res. 15:9627-9639.
- a nucleic acid may be optimized for increased expression in the host organism.
- the synthetic nucleic acids can be synthesized using plant-preferred codons for improved expression. See, for example, Campbell and Gowri (1990) Plant Physiol. 92:1 -1 1 for a discussion of host- preferred codon usage.
- nucleic acid sequences of the embodiments may be expressed in both monocotyledonous and dicotyledonous plant species, sequences can be modified to account for the specific codon preferences and GC content preferences of monocotyledons or dicotyledons as these preferences have been shown to differ (Murray et al. (1989) Nucleic Acids Res.
- the maize-preferred codon for a particular amino acid may be derived from known gene sequences from maize.
- Maize codon usage for 28 genes from maize plants is listed in Table 4 of Murray et al., supra. Methods are available in the art for synthesizing plant- preferred genes. See, for example, U.S. Patent Nos. 5,380,831 , and 5,436,391 , and Murray et al. (1989) Nucleic Acids Res. 17:477-498, herein incorporated by reference.
- Additional sequence modifications are known to enhance gene expression in a cellular host. These include elimination of sequences encoding spurious polyadenylation signals, exon-intron splice site signals, transposon-like repeats, and other well- characterized sequences that may be deleterious to gene expression.
- the GC content of the sequence may be adjusted to levels average for a given cellular host, as calculated by reference to known genes expressed in the host cell.
- host cell refers to a cell which contains a vector and supports the replication and/or expression of the expression vector is intended. Host cells may be prokaryotic cells such as E.
- coli or eukaryotic cells such as yeast, insect, amphibian, or mammalian cells, or monocotyledonous or dicotyledonous plant cells.
- eukaryotic cells such as yeast, insect, amphibian, or mammalian cells
- monocotyledonous or dicotyledonous plant cells An example of a monocotyledonous host cell is a maize host cell.
- sequence is modified to avoid predicted hairpin secondary mRNA structures.
- the expression cassettes or constructs may additionally contain 5' leader sequences.
- leader sequences can act to enhance translation.
- Translation leaders are known in the art and include: picornavirus leaders, for example, EMCV leader (Encephalomyocarditis 5' noncoding region) (Elroy-Stein et al. (1989) Proc. Natl. Acad. Sci. USA 86: 6126-6130); potyvirus leaders, for example, TEV leader (Tobacco Etch Virus) (Gallie et al. (1995) Gene 165(2): 233-238), MDMV leader (Maize Dwarf Mosaic Virus), human immunoglobulin heavy-chain binding protein (BiP) (Macejak et al.
- EMCV leader Engelphalomyocarditis 5' noncoding region
- potyvirus leaders for example, TEV leader (Tobacco Etch Virus) (Gallie et al. (1995) Gene 165(2): 233-238), MDMV leader (Maize Dwarf
- the various DNA fragments may be manipulated so as to provide for the DNA sequences in the proper orientation and, as appropriate, in the proper reading frame.
- adapters or linkers may be employed to join the DNA fragments or other manipulations may be involved to provide for convenient restriction sites, removal of superfluous DNA, removal of restriction sites, or the like.
- in vitro mutagenesis, primer repair, restriction, annealing, resubstitutions, e.g., transitions and transversions may be involved.
- a number of promoters can be used in the practice of the embodiments.
- the promoters can be selected based on the desired outcome.
- the nucleic acids can be combined with constitutive, tissue-preferred, inducible, or other promoters for expression in the host organism.
- Suitable constitutive promoters for use in a plant host cell include, for example, the core promoter of the Rsyn7 promoter and other constitutive promoters disclosed in WO 99/43838 and U.S. Patent No. 6,072,050; the core CaMV 35S promoter (Odell et al. (1985) Nature 313: 810-812); rice actin (McElroy et al.
- wound-inducible promoters are wound-inducible promoters.
- Such wound-inducible promoters may respond to damage caused by insect feeding, and include potato proteinase inhibitor (pin II) gene (Ryan (1990) Ann. Rev. Phytopath. 28: 425-449; Duan et al. (1996) Nature Biotechnology 14: 494-498); wunl and wun2, US Patent No. 5,428,148; winl and win2 (Stanford et al. (1989) Mol. Gen. Genet.
- pin II potato proteinase inhibitor
- pathogen-inducible promoters may be employed in the methods and nucleotide constructs of the embodiments.
- pathogen-inducible promoters include those from pathogenesis-related proteins (PR proteins), which are induced following infection by a pathogen; e.g., PR proteins, SAR proteins, beta-1 ,3-glucanase, chitinase, etc.
- PR proteins pathogenesis-related proteins
- SAR proteins SAR proteins
- beta-1 ,3-glucanase chitinase, etc.
- PR proteins pathogenesis-related proteins
- SAR proteins SAR proteins
- beta-1 ,3-glucanase chitinase
- promoters that are expressed locally at or near the site of pathogen infection. See, for example, Marineau et al. (1987) Plant Mol. Biol. 9:335-342; Matton et al. (1989) Molecular Plant-Microbe Interactions 2:325-331 ; Somsisch et al. (1986) Proc. Natl. Acad. Sci. USA 83:2427-2430; Somsisch et al. (1988) Mol. Gen. Genet. 2:93-98; and Yang (1996) Proc. Natl. Acad. Sci. USA 93:14972-14977. See also, Chen et al. (1996) Plant J. 10:955-966; Zhang et al.
- Chemical-regulated promoters can be used to modulate the expression of a gene in a plant through the application of an exogenous chemical regulator.
- the promoter may be a chemical-inducible promoter, where application of the chemical induces gene expression, or a chemical-repressible promoter, where application of the chemical represses gene expression.
- Chemical-inducible promoters are known in the art and include, but are not limited to, the maize ln2-2 promoter, which is activated by benzenesulfonamide herbicide safeners, the maize GST promoter, which is activated by hydrophobic electrophilic compounds that are used as pre-emergent herbicides, and the tobacco PR-1 a promoter, which is activated by salicylic acid.
- promoters of interest include steroid-responsive promoters (see, for example, the glucocorticoid-inducible promoter in Schena et al. (1991 ) Proc. Natl. Acad. Sci. USA 88:10421 -10425 and McNellis et al. (1998) Plant J. 14(2):247-257) and tetracycline-inducible and tetracycline-repressible promoters (see, for example, Gatz et al. (1991 ) Mol. Gen. Genet. 227:229-237, and U.S. Patent Nos. 5,814,618 and 5,789,156), herein incorporated by reference.
- Tissue-preferred promoters can be utilized to target enhanced pesticidal protein expression within a particular plant tissue.
- Tissue-preferred promoters include those discussed in Yamamoto et al. (1997) Plant J. 12(2)255-265; Kawamata et al. (1997) Plant Cell Physiol. 38(7):792-803; Hansen et al. (1997) Mol. Gen Genet. 254(3):337-343; Russell et al. (1997) Transgenic Res. 6(2): 157-168; Rinehart et al. (1996) Plant Physiol. 1 12(3):1331-1341 ; Van Camp et al. (1996) Plant Physiol. 1 12(2):525-535; Canevascini et al. (1996) Plant Physiol.
- Leaf-preferred promoters are known in the art. See, for example, Yamamoto et al. (1997) Plant J. 12(2):255-265; Kwon et al. (1994) Plant Physiol. 105:357-67; Yamamoto et al. (1994) Plant Cell Physiol. 35(5):773-778; Gotor et al. (1993) Plant J. 3:509-18; Orozco et al. (1993) Plant Mol. Biol. 23(6):1 129-1 138; and Matsuoka et al. (1993) Proc. Natl. Acad. Sci. USA 90(20):9586-9590.
- Root-preferred or root-specific promoters are known and can be selected from the many available from the literature or isolated de novo from various compatible species. See, for example, Hire et al. (1992) Plant Mol. Biol. 20(2):207-218 (soybean root-specific glutamine synthetase gene); Keller and Baumgartner (1991 ) Plant Cell 3(10):1051-1061 (root-specific control element in the GRP 1.8 gene of French bean); Sanger et al. (1990) Plant Mol. Biol. 14(3):433-443 (root-specific promoter of the mannopine synthase (MAS) gene of Agrobacterium tumefaciens); and Miao et al.
- MAS mannopine synthase
- the promoters of these genes were linked to a ⁇ - glucuronidase reporter gene and introduced into both the nonlegume Nicotiana tabacum and the legume Lotus corniculatus, and in both instances root-specific promoter activity was preserved.
- Leach and Aoyagi (1991 ) describe their analysis of the promoters of the highly expressed rolC and rolD root-inducing genes of Agrobacterium rhizogenes (see Plant Science (Limerick) 79(1 ):69-76). They concluded that enhancer and tissue- preferred DNA determinants are dissociated in those promoters. Teeri et al.
- rolB promoter Capana et al. (1994) Plant Mol. Biol. 25(4):681-691. See also U.S. Patent Nos. 5,837,876; 5,750,386; 5,633,363; 5,459,252; 5,401 ,836; 5,1 10,732; and 5,023,179.
- "Seed-preferred" promoters include both "seed-specific" promoters (those promoters active during seed development such as promoters of seed storage proteins) as well as “seed-germinating” promoters (those promoters active during seed germination). See Thompson et al. (1989) BioEssays 10:108, herein incorporated by reference.
- seed-preferred promoters include, but are not limited to, Cim1 (cytokinin- induced message); cZ19B1 (maize 19 kDa zein); and mil ps (myo-inositol-1 -phosphate synthase) (see U.S. Patent No. 6,225,529, herein incorporated by reference).
- Gamma- zein and Glb-1 are endosperm-specific promoters.
- seed-specific promoters include, but are not limited to, bean ⁇ -phaseolin, napin, ⁇ -conglycinin, soybean lectin, cruciferin, and the like.
- seed-specific promoters include, but are not limited to, maize 15 kDa zein, 22 kDa zein, 27 kDa zein, g-zein, waxy, shrunken 1 , shrunken 2, globulin 1 , etc. See also WO 00/12733, where seed-preferred promoters from endl and end2 genes are disclosed; herein incorporated by reference.
- a promoter that has "preferred" expression in a particular tissue is expressed in that tissue to a greater degree than in at least one other plant tissue. Some tissue- preferred promoters show expression almost exclusively in the particular tissue.
- weak promoters will be used.
- the term "weak promoter” as used herein refers to a promoter that drives expression of a coding sequence at a low level. By low level expression at levels of about 1/1000 transcripts to about 1/100,000 transcripts to about 1/500,000 transcripts is intended. Alternatively, it is recognized that the term “weak promoters” also encompasses promoters that drive expression in only a few cells and not in others to give a total low level of expression. Where a promoter drives expression at unacceptably high levels, portions of the promoter sequence can be deleted or modified to decrease expression levels.
- Such weak constitutive promoters include, for example the core promoter of the Rsyn7 promoter (WO 99/43838 and U.S. Patent No. 6,072,050), the core 35S CaMV promoter, and the like.
- Other constitutive promoters include, for example, those disclosed in U.S. Patent Nos. 5,608,149; 5,608,144; 5,604,121 ; 5,569,597; 5,466,785; 5,399,680; 5,268,463; 5,608,142; and 6,177,61 1 ; herein incorporated by reference.
- the expression cassette or construct will comprise a selectable marker gene for the selection of transformed cells.
- Selectable marker genes are utilized for the selection of transformed cells or tissues.
- Marker genes include genes encoding antibiotic resistance, such as those encoding neomycin phosphotransferase II (NEO) and hygromycin phosphotransferase (HPT), as well as genes conferring resistance to herbicidal compounds, such as glufosinate ammonium, bromoxynil, imidazolinones, and 2,4-dichlorophenoxyacetate (2,4-D).
- Additional examples of suitable selectable marker genes include, but are not limited to, genes encoding resistance to chloramphenicol (Herrera Estrella et al.
- selectable marker genes are not meant to be limiting. Any selectable marker gene can be used in the embodiments.
- a further embodiment relates to a transformed organism such as an organism selected from the group consisting of plant and insect cells, bacteria, yeast, baculoviruses, protozoa, nematodes, and algae.
- the transformed organism comprises: a DNA molecule of the embodiments, an expression cassette comprising the said DNA molecule, or a vector comprising the said expression cassette, which may be stably incorporated into the genome of the transformed organism.
- the methods of the embodiments involve introducing a polypeptide or polynucleotide into a plant. "Introducing" is intended to mean presenting to the plant the polynucleotide or polypeptide in such a manner that the sequence gains access to the interior of a cell of the plant.
- the methods of the embodiments do not depend on a particular method for introducing a polynucleotide or polypeptide into a plant, only that the polynucleotide or polypeptides gains access to the interior of at least one cell of the plant.
- Methods for introducing polynucleotide or polypeptides into plants are known in the art including, but not limited to, stable transformation methods, transient transformation methods, and virus-mediated methods.
- “Stable transformation” is intended to mean that the nucleotide construct introduced into a plant integrates into the genome of the plant and is capable of being inherited by the progeny thereof.
- “Transient transformation” is intended to mean that a polynucleotide is introduced into the plant and does not integrate into the genome of the plant or a polypeptide is introduced into a plant.
- Transformation protocols as well as protocols for introducing nucleotide sequences into plants may vary depending on the type of plant or plant cell, i.e., monocot or dicot, targeted for transformation. Suitable methods of introducing nucleotide sequences into plant cells and subsequent insertion into the plant genome include microinjection (Crossway et al. (1986) Biotechniques 4: 320-334), electroporation (Riggs et al. (1986) Proc. Natl. Acad. Sci. USA 83: 5602-5606), Agrobacterium-mediated transformation (U.S. Patent Nos. 5,563,055 and 5,981 ,840), direct gene transfer (Paszkowski et al. (1984) EMBO J.
- the sequences of the embodiments can be provided to a plant using a variety of transient transformation methods.
- transient transformation methods include, but are not limited to, the introduction of the Cry toxin protein or variants and fragments thereof directly into the plant or the introduction of the Cry toxin transcript into the plant.
- Such methods include, for example, microinjection or particle bombardment. See, for example, Crossway et al. (1986) Mol Gen. Genet. 202: 179-185; Nomura et al. (1986) Plant Sci. 44: 53-58; Hepler et al. (1994) Proc. Natl. Acad. Sci. 91 : 2176-2180 and Hush et al.
- the Cry toxin polynucleotide can be transiently transformed into the plant using techniques known in the art. Such techniques include viral vector system and the precipitation of the polynucleotide in a manner that precludes subsequent release of the DNA. Thus, transcription from the particle-bound DNA can occur, but the frequency with which it is released to become integrated into the genome is greatly reduced. Such methods include the use of particles coated with polyethylimine (PEI; Sigma #P3143).
- the insertion of the polynucleotide at a desired genomic location is achieved using a site-specific recombination system. See, for example, W099/25821 , W099/25854, WO99/25840, W099/25855, and W099/25853, all of which are herein incorporated by reference.
- the polynucleotide of the embodiments can be contained in transfer cassette flanked by two non-identical recombination sites.
- the transfer cassette is introduced into a plant have stably incorporated into its genome a target site which is flanked by two non- identical recombination sites that correspond to the sites of the transfer cassette. An appropriate recombinase is provided and the transfer cassette is integrated at the target site. The polynucleotide of interest is thereby integrated at a specific chromosomal position in the plant genome.
- the cells that have been transformed may be grown into plants in accordance with conventional ways. See, for example, McCormick et al. (1986) Plant Cell Reports 5: 81- 84. These plants may then be grown, and either pollinated with the same transformed strain or different strains, and the resulting hybrid having constitutive or inducible expression of the desired phenotypic characteristic identified. Two or more generations may be grown to ensure that expression of the desired phenotypic characteristic is stably maintained and inherited and then seeds harvested to ensure that expression of the desired phenotypic characteristic has been achieved.
- the nucleotide sequences of the embodiments may be provided to the plant by contacting the plant with a virus or viral nucleic acids. Generally, such methods involve incorporating the nucleotide construct of interest within a viral DNA or RNA molecule. It is recognized that the recombinant proteins of the embodiments may be initially synthesized as part of a viral polyprotein, which later may be processed by proteolysis in vivo or in vitro to produce the desired pesticidal protein. It is also recognized that such a viral polyprotein, comprising at least a portion of the amino acid sequence of a pesticidal protein of the embodiments, may have the desired pesticidal activity.
- Such viral polyproteins and the nucleotide sequences that encode for them are encompassed by the embodiments.
- Methods for providing plants with nucleotide constructs and producing the encoded proteins in the plants, which involve viral DNA or RNA molecules are known in the art. See, for example, U.S. Patent Nos. 5,889, 191 ; 5,889,190; 5,866,785; 5,589,367; and 5,316,931 ; herein incorporated by reference.
- the embodiments further relate to plant-propagating material of a transformed plant of the embodiments including, but not limited to, seeds, tubers, corms, bulbs, leaves, and cuttings of roots and shoots.
- the embodiments may be used for transformation of any plant species, including, but not limited to, monocots and dicots.
- plants of interest include, but are not limited to, corn (Zea mays), Brassica sp. (e.g. , B. napus, B. rapa, B.
- juncea particularly those Brassica species useful as sources of seed oil, alfalfa ⁇ Medicago sativa), rice (Oryza sativa), rye (Seca/e cereale), sorghum (Sorghum bicolor, Sorghum vulgare), millet (e.g., pearl millet (Pennisetum glaucum), proso millet (Panicum miliaceum), foxtail millet (Setaria italica), finger millet (Eleusine coracana)), sunflower (Helianthus annuus), safflower (Carthamus tinctorius), wheat (Triticum aestivum), soybean (Glycine max), tobacco (Nicotiana tabacum), potato (Solanum tuberosum), peanuts (Arachis hypogaea), cotton (Gossypium barbadense, Gossypium hirsutum), sweet potato (Ipomoea batatus), cassava (Manihot
- Vegetables include tomatoes (Lycopersicon esculentum), lettuce (e.g. , Lactuca sativa), green beans (Phaseolus vulgaris), lima beans (Phaseolus limensis), peas (Lathyrus spp.), and members of the genus Cucumis such as cucumber (C. sativus), cantaloupe (C. cantalupensis), and musk melon (C. melo).
- Ornamentals include azalea (Rhododendron spp.), hydrangea (Macrophylla hydrangea), hibiscus (Hibiscus rosasanensis), roses (Rosa spp.), tulips (Tulipa spp.), daffodils (Narcissus spp.), petunias (Petunia hybrida), carnation (Dianthus caryophyllus), poinsettia (Euphorbia pulcherrima), and chrysanthemum.
- Conifers that may be employed in practicing the embodiments include, for example, pines such as loblolly pine (Pinus taeda), slash pine (Pinus elliotii), ponderosa pine (Pinus ponderosa), lodgepole pine (Pinus contorta), and Monterey pine (Pinus radiata); Douglas-fir (Pseudotsuga menziesii); Western hemlock (Tsuga canadensis); Sitka spruce (Picea glauca); redwood (Sequoia sempervirens); true firs such as silver fir (Abies amabilis) and balsam fir (Abies balsamea); and cedars such as Western red cedar (Thuja plicata) and Alaska yellow-cedar (Chamaecyparis nootkatensis). Plants of the embodiments include crop plants (for example, corn, alfalfa, sunflower, Brassica, soybean
- Turf grasses include, but are not limited to: annual bluegrass (Poa annua); annual ryegrass (Lolium multiflorum); Canada bluegrass (Poa compressa); Chewings fescue (Festuca rubra); colonial bentgrass (Agrostis tenuis); creeping bentgrass (Agrostis palustris); crested wheatgrass (Agropyron desertorum); fairway wheatgrass (Agropyron cristatum); hard fescue (Festuca longifolia); Kentucky bluegrass (Poa pratensis); orchardgrass (Dactylis glomerata); perennial ryegrass (Lolium perenne); red fescue (Festuca rubra); redtop (Agrostis alba); rough bluegrass (Poa trivialis); sheep fescue (Festuca ovina); smooth bromegrass (Bromus inermis); tall fescue (Festuca arundinacea); timothy (P
- Augustine grass (Stenotaphrum secundatum); zoysia grass (Zoysia spp.); Bahia grass (Paspalum notatum); carpet grass (Axonopus affinis); centipede grass (Eremochloa ophiuroides); kikuyu grass (Pennisetum clandesinum); seashore paspalum (Paspalum vaginatum); blue gramma (Bouteloua gracilis); buffalo grass (Buchloe dactyloids); sideoats gramma (Bouteloua curtipendula).
- Plants of interest include grain plants that provide seeds of interest, oil-seed plants, and leguminous plants.
- Seeds of interest include grain seeds, such as corn, wheat, barley, rice, sorghum, rye, millet, etc.
- Oil-seed plants include cotton, soybean, safflower, sunflower, Brassica, maize, alfalfa, palm, coconut, flax, castor, olive etc.
- Leguminous plants include beans and peas. Beans include guar, locust bean, fenugreek, soybean, garden beans, cowpea, mungbean, lima bean, fava bean, lentils, chickpea, etc.
- the nucleic acid sequences of the embodiments can be stacked with any combination of polynucleotide sequences of interest in order to create plants with a desired phenotype.
- the polynucleotides of the embodiments may be stacked with any other polynucleotides encoding polypeptides having pesticidal and/or insecticidal activity, such as Bt toxic proteins (described in U.S. Patent Nos. 5,366,892; 5,747,450; 5,736,514; 5,723,756; 5,593,881 ; and Geiser et al. (1986) Gene 48:109), pentin (described in U.S. Patent No. 5,981 ,722) and the like.
- Bt toxic proteins described in U.S. Patent Nos. 5,366,892; 5,747,450; 5,736,514; 5,723,756; 5,593,881 ; and Geiser et al. (1986) Gene 48:109
- pentin described in U.
- the combinations generated can also include multiple copies of any one of the polynucleotides of interest.
- the polynucleotides of the embodiments can also be stacked with any other gene or combination of genes to produce plants with a variety of desired trait combinations including but not limited to traits desirable for animal feed such as high oil genes (e.g., U.S. Patent No. 6,232,529); balanced amino acids (e.g. hordothionins (U.S. Patent Nos. 5,990,389; 5,885,801 ; 5,885,802; and 5,703,049); barley high lysine (Williamson et al. (1987) Eur. J. Biochem.
- the polynucleotides of the embodiments can also be stacked with traits desirable for disease or herbicide resistance (e.g., fumonisin detoxification genes (U.S. Patent No. 5,792,931 ); avirulence and disease resistance genes (Jones et al. (1994) Science 266:789; Martin et al. (1993) Science 262: 1432; and Mindrinos et al. (1994) Cell 78:1089); acetolactate synthase (ALS) mutants that lead to herbicide resistance such as the S4 and/or Hra mutations; inhibitors of glutamine synthase such as phosphinothricin or basta (e.g.
- herbicide resistance e.g., fumonisin detoxification genes (U.S. Patent No. 5,792,931 ); avirulence and disease resistance genes (Jones et al. (1994) Science 266:789; Martin et al. (1993) Science 262: 1432
- EPSPS gene and GAT gene as disclosed in U.S. Application Serial Nos. 10/004,357; and 10/427,692
- traits desirable for processing or process products such as high oil (e.g., U.S. Patent No. 6,232,529 ); modified oils (e.g., fatty acid desaturase genes (U.S. Patent No. 5,952,544; WO 94/1 1516)); modified starches (e.g., ADPG pyrophosphorylases (AGPase), starch synthases (SS), starch branching enzymes (SBE) and starch debranching enzymes (SDBE)); and polymers or bioplastics (e.g., U.S.
- AGPase ADPG pyrophosphorylases
- SS starch synthases
- SBE starch branching enzymes
- SDBE starch debranching enzymes
- polymers or bioplastics e.g., U.S.
- stacked combinations can be created by any method including but not limited to cross breeding plants by any conventional or TOPCROSS® methodology, or genetic transformation.
- the traits are stacked by genetically transforming the plants, the polynucleotide sequences of interest can be combined at any time and in any order.
- a transgenic plant comprising one or more desired traits can be used as the target to introduce further traits by subsequent transformation.
- the traits can be introduced simultaneously in a co-transformation protocol with the polynucleotides of interest provided by any combination of transformation cassettes.
- the two sequences can be contained in separate transformation cassettes (trans) or contained on the same transformation cassette (cis). Expression of the sequences can be driven by the same promoter or by different promoters.
- a transformation cassette that will suppress the expression of the polynucleotide of interest. This may be combined with any combination of other suppression cassettes or overexpression cassettes to generate the desired combination of traits in the plant. It is further recognized that polynucleotide sequences can be stacked at a desired genomic location using a site- specific recombination system. See, for example, W099/25821 , W099/25854, WO99/25840, W099/25855, and W099/25853, all of which are herein incorporated by reference.
- compositions of the embodiments find use in protecting plants, seeds, and plant products in a variety of ways.
- the compositions can be used in a method that involves placing an effective amount of the pesticidal composition in the environment of the pest by a procedure selected from the group consisting of spraying, dusting, broadcasting, or seed coating.
- a protectant coating comprising herbicides, insecticides, fungicides, bactericides, nematocides, molluscicides, or mixtures of several of these preparations, if desired together with further carriers, surfactants, or application-promoting adjuvants customarily employed in the art of formulation to provide protection against damage caused by bacterial, fungal, or animal pests.
- the protectant coating may be applied to the seeds either by impregnating the tubers or grains with a liquid formulation or by coating them with a combined wet or dry formulation.
- other methods of application to plants are possible, e.g. , treatment directed at the buds or the fruit.
- the plant seed of the embodiments comprising a nucleotide sequence encoding a pesticidal protein of the embodiments may be treated with a seed protectant coating comprising a seed treatment compound, such as, for example, captan, carboxin, thiram, methalaxyl, pirimiphos-methyl, and others that are commonly used in seed treatment.
- a seed protectant coating comprising a pesticidal composition of the embodiments is used alone or in combination with one of the seed protectant coatings customarily used in seed treatment.
- genes encoding the pesticidal proteins can be used to transform insect pathogenic organisms.
- Such organisms include baculoviruses, fungi, protozoa, bacteria, and nematodes.
- a gene encoding a pesticidal protein of the embodiments may be introduced via a suitable vector into a microbial host, and said host applied to the environment, or to plants or animals.
- the term "introduced” in the context of inserting a nucleic acid into a cell means “transfection” or “transformation” or “transduction” and includes reference to the incorporation of a nucleic acid into a eukaryotic or prokaryotic cell where the nucleic acid may be incorporated into the genome of the cell (e.g., chromosome, plasmid, plastid, or mitochondrial DNA), converted into an autonomous replicon, or transiently expressed (e.g., transfected mRNA).
- Microorganism hosts that are known to occupy the "phytosphere" (phylloplane, phyllosphere, rhizosphere, and/or rhizoplana) of one or more crops of interest may be selected. These microorganisms are selected so as to be capable of successfully competing in the particular environment with the wild-type microorganisms, provide for stable maintenance and expression of the gene expressing the pesticidal protein, and desirably, provide for improved protection of the pesticide from environmental degradation and inactivation.
- phytosphere phytosphere
- rhizosphere rhizosphere
- rhizoplana rhizoplana
- microorganisms include bacteria, algae, and fungi.
- microorganisms such as bacteria, e.g. , Pseudomonas, Erwinia, Serratia, Klebsiella, Xanthomonas, Streptomyces, Rhizobium, Rhodopseudomonas, Methylius, Agrobacterium, Acetobacter, Lactobacillus, Arthrobacter, Azotobacter, Leuconostoc, and Alcaligenes, fungi, particularly yeast, e.g., Saccharomyces, Cryptococcus, Kluyveromyces, Sporobolomyces, Rhodotorula, and Aureobasidium.
- phytosphere bacterial species as Pseudomonas syringae, Pseudomonas fluorescens, Serratia marcescens, Acetobacter xylinum, Agrobacteria, Rhodopseudomonas spheroides, Xanthomonas campestris, Rhizobium melioti, Alcaligenes entrophus, Clavibacter xyli and Azotobacter vinlandir and phytosphere yeast species such as Rhodotorula rubra, R. glutinis, R. marina, R. aurantiaca, Cryptococcus albidus, C. diffluens, C.
- expression cassettes can be constructed which include the nucleotide constructs of interest operably linked with the transcriptional and translational regulatory signals for expression of the nucleotide constructs, and a nucleotide sequence homologous with a sequence in the host organism, whereby integration will occur, and/or a replication system that is functional in the host, whereby integration or stable maintenance will occur.
- Transcriptional and translational regulatory signals include, but are not limited to, promoters, transcriptional initiation start sites, operators, activators, enhancers, other regulatory elements, ribosomal binding sites, an initiation codon, termination signals, and the like. See, for example, U.S. Patent Nos. 5,039,523 and 4,853,331 ; EPO 0480762A2; Sambrook et al. (1992) Molecular Cloning: A Laboratory Manual, ed. Maniatis et al. (Cold Spring Harbor Laboratory Press, Cold Spring Harbor, New York), hereinafter "Sambrook II”; Davis et al., eds. (1980) Advanced Bacterial Genetics (Cold Spring Harbor Laboratory Press), Cold Spring Harbor, New York; and the references cited therein.
- Suitable host cells where the pesticidal protein-containing cells will be treated to prolong the activity of the pesticidal proteins in the cell when the treated cell is applied to the environment of the target pest(s), may include either prokaryotes or eukaryotes, normally being limited to those cells that do not produce substances toxic to higher organisms, such as mammals. However, organisms that produce substances toxic to higher organisms could be used, where the toxin is unstable or the level of application sufficiently low as to avoid any possibility of toxicity to a mammalian host. As hosts, of particular interest will be the prokaryotes and the lower eukaryotes, such as fungi.
- Illustrative prokaryotes both Gram-negative and gram-positive, include Enterobacteriaceae, such as Escherichia, Erwinia, Shigella, Salmonella, and Proteus; Bacillaceae; Rhizobiaceae, such as Rhizobium; Spirillaceae, such as photobacterium, Zymomonas, Serratia, Aeromonas, Vibrio, Desulfovibrio, Spirillum; Lactobacillaceae; Pseudomonadaceae, such as Pseudomonas and Acetobacter, Azotobacteraceae and Nitrobacteraceae.
- Enterobacteriaceae such as Escherichia, Erwinia, Shigella, Salmonella, and Proteus
- Bacillaceae Rhizobiaceae, such as Rhizobium
- Spirillaceae such as photobacterium, Zymomonas, Serratia, Aeromonas, Vibrio, Desul
- fungi such as Phycomycetes and Ascomycetes, which includes yeast, such as Saccharomyces and Schizosaccharomyces; and Basidiomycetes yeast, such as Rhodotorula, Aureobasidium, Sporobolomyces, and the like.
- Characteristics of particular interest in selecting a host cell for purposes of pesticidal protein production include ease of introducing the pesticidal protein gene into the host, availability of expression systems, efficiency of expression, stability of the protein in the host, and the presence of auxiliary genetic capabilities.
- Characteristics of interest for use as a pesticide microcapsule include protective qualities for the pesticide, such as thick cell walls, pigmentation, and intracellular packaging or formation of inclusion bodies; leaf affinity; lack of mammalian toxicity; attractiveness to pests for ingestion; ease of killing and fixing without damage to the toxin; and the like. Other considerations include ease of formulation and handling, economics, storage stability, and the like.
- Host organisms of particular interest include yeast, such as Rhodotorula spp., Aureobasidium spp., Saccharomyces spp. (such as S. cerevisiae), Sporobolomyces spp., phylloplane organisms such as Pseudomonas spp. (such as P. aeruginosa, P. fluorescens), Erwinia spp., and Flavobacterium spp., and other such organisms, including Bt, E. coli, Bacillus subtilis, and the like.
- yeast such as Rhodotorula spp., Aureobasidium spp., Saccharomyces spp. (such as S. cerevisiae), Sporobolomyces spp., phylloplane organisms such as Pseudomonas spp. (such as P. aeruginosa, P. fluorescens), Erwin
- Genes encoding the pesticidal proteins of the embodiments can be introduced into microorganisms that multiply on plants (epiphytes) to deliver pesticidal proteins to potential target pests.
- Epiphytes for example, can be gram-positive or gram-negative bacteria.
- Root-colonizing bacteria for example, can be isolated from the plant of interest by methods known in the art. Specifically, a Bacillus cereus strain that colonizes roots can be isolated from roots of a plant (see, for example, bottlesman et al. (1991 ) Appl. Environ. Microbiol. 56:713-718). Genes encoding the pesticidal proteins of the embodiments can be introduced into a root-colonizing Bacillus cereus by standard methods known in the art.
- Genes encoding pesticidal proteins can be introduced, for example, into the root- colonizing Bacillus by means of electro transformation.
- genes encoding the pesticidal proteins can be cloned into a shuttle vector, for example, pHT3101 (Lerecius et al. (1989) FEMS Microbiol. Letts. 60: 21 1-218.
- the shuttle vector pHT3101 containing the coding sequence for the particular pesticidal protein gene can, for example, be transformed into the root-colonizing Bacillus by means of electroporation (Lerecius et al. (1989) FEMS Microbiol. Letts. 60: 21 1-218).
- Expression systems can be designed so that pesticidal proteins are secreted outside the cytoplasm of gram-negative bacteria, such as £ coli, for example.
- Advantages of having pesticidal proteins secreted are: (1 ) avoidance of potential cytotoxic effects of the pesticidal protein expressed; and (2) improvement in the efficiency of purification of the pesticidal protein, including, but not limited to, increased efficiency in the recovery and purification of the protein per volume cell broth and decreased time and/or costs of recovery and purification per unit protein.
- Pesticidal proteins can be made to be secreted in £ coli, for example, by fusing an appropriate £ coli signal peptide to the amino-terminal end of the pesticidal protein.
- Signal peptides recognized by £. coli can be found in proteins already known to be secreted in £ coli, for example the OmpA protein (Ghrayeb et al. (1984) EMBO J, 3:2437- 2442).
- OmpA is a major protein of the £ coli outer membrane, and thus its signal peptide is thought to be efficient in the translocation process.
- OmpA signal peptide does not need to be modified before processing as may be the case for other signal peptides, for example lipoprotein signal peptide (Duffaud et al. (1987) Meth. Enzymol. 153: 492).
- Pesticidal proteins of the embodiments can be fermented in a bacterial host and the resulting bacteria processed and used as a microbial spray in the same manner that Bt strains have been used as insecticidal sprays.
- the secretion signal is removed or mutated using procedures known in the art. Such mutations and/or deletions prevent secretion of the pesticidal protein(s) into the growth medium during the fermentation process.
- the pesticidal proteins are retained within the cell, and the cells are then processed to yield the encapsulated pesticidal proteins. Any suitable microorganism can be used for this purpose.
- Pseudomonas has been used to express Bt toxins as encapsulated proteins and the resulting cells processed and sprayed as an insecticide (Gaertner et al. (1993), in: Advanced Engineered Pesticides, ed. Kim).
- the pesticidal proteins are produced by introducing a heterologous gene into a cellular host. Expression of the heterologous gene results, directly or indirectly, in the intracellular production and maintenance of the pesticide. These cells are then treated under conditions that prolong the activity of the toxin produced in the cell when the cell is applied to the environment of target pest(s). The resulting product retains the toxicity of the toxin.
- These naturally encapsulated pesticidal proteins may then be formulated in accordance with conventional techniques for application to the environment hosting a target pest, e.g., soil, water, and foliage of plants. See, for example EPA 0192319, and the references cited therein.
- a transformed microorganism which includes whole organisms, cells, spore(s), pesticidal protein(s), pesticidal component(s), pest-impacting component(s), mutant(s), living or dead cells and cell components, including mixtures of living and dead cells and cell components, and including broken cells and cell components
- an isolated pesticidal protein can be formulated with an acceptable carrier into a pesticidal composition(s) that is, for example, a suspension, a solution, an emulsion, a dusting powder, a dispersible granule or pellet, a wettable powder, and an emulsifiable concentrate, an aerosol or spray, an impregnated granule, an adjuvant, a coatable paste, a colloid, and also encapsulations in, for example, polymer substances.
- Such formulated compositions may be prepared by such conventional means as desiccation, lyophilization, homogenization, extraction, filtration, centrifugation, sedimentation, or concentration
- compositions disclosed above may be obtained by the addition of a surface- active agent, an inert carrier, a preservative, a humectant, a feeding stimulant, an attractant, an encapsulating agent, a binder, an emulsifier, a dye, a UV protectant, a buffer, a flow agent or fertilizers, micronutrient donors, or other preparations that influence plant growth.
- One or more agrochemicals including, but not limited to, herbicides, insecticides, fungicides, bactericides, nematocides, molluscicides, acaricides, plant growth regulators, harvest aids, and fertilizers, can be combined with carriers, surfactants or adjuvants customarily employed in the art of formulation or other components to facilitate product handling and application for particular target pests.
- Suitable carriers and adjuvants can be solid or liquid and correspond to the substances ordinarily employed in formulation technology, e.g. , natural or regenerated mineral substances, solvents, dispersants, wetting agents, tackifiers, binders, or fertilizers.
- the active ingredients of the embodiments are normally applied in the form of compositions and can be applied to the crop area, plant, or seed to be treated.
- the compositions of the embodiments may be applied to grain in preparation for or during storage in a grain bin or silo, etc.
- the compositions of the embodiments may be applied simultaneously or in succession with other compounds.
- Methods of applying an active ingredient of the embodiments or an agrochemical composition of the embodiments that contains at least one of the pesticidal proteins produced by the bacterial strains of the embodiments include, but are not limited to, foliar application, seed coating, and soil application. The number of applications and the rate of application depend on the intensity of infestation by the corresponding pest.
- Suitable surface-active agents include, but are not limited to, anionic compounds such as a carboxylate of, for example, a metal; a carboxylate of a long chain fatty acid; an N-acylsarcosinate; mono or di-esters of phosphoric acid with fatty alcohol ethoxylates or salts of such esters; fatty alcohol sulfates such as sodium dodecyl sulfate, sodium octadecyl sulfate or sodium cetyl sulfate; ethoxylated fatty alcohol sulfates; ethoxylated alkylphenol sulfates; lignin sulfonates; petroleum sulfonates; alkyl aryl sulfonates such as alkyl-benzene sulfonates or lower alkylnaphtalene sulfonates, e.g.
- anionic compounds such as a carboxylate of, for example,
- butyl-naphthalene sulfonate salts of sulfonated naphthalene-formaldehyde condensates; salts of sulfonated phenol-formaldehyde condensates; more complex sulfonates such as the amide sulfonates, e.g. , the sulfonated condensation product of oleic acid and N-methyl taurine; or the dialkyl sulfosuccinates, e.g., the sodium sulfonate of dioctyl succinate.
- amide sulfonates e.g. , the sulfonated condensation product of oleic acid and N-methyl taurine
- dialkyl sulfosuccinates e.g., the sodium sulfonate of dioctyl succinate.
- Non-ionic agents include condensation products of fatty acid esters, fatty alcohols, fatty acid amides or fatty-alkyl- or alkenyl-substituted phenols with ethylene oxide, fatty esters of polyhydric alcohol ethers, e.g., sorbitan fatty acid esters, condensation products of such esters with ethylene oxide, e.g. , polyoxyethylene sorbitar fatty acid esters, block copolymers of ethylene oxide and propylene oxide, acetylenic glycols such as 2,4,7,9-tetraethyl-5-decyn- 4,7-diol, or ethoxylated acetylenic glycols.
- a cationic surface-active agent examples include, for instance, an aliphatic mono-, di-, or polyamine such as an acetate, naphthenate or oleate; or oxygen-containing amine such as an amine oxide of polyoxyethylene alkylamine; an amide-linked amine prepared by the condensation of a carboxylic acid with a di- or polyamine; or a quaternary ammonium salt.
- inert materials include but are not limited to inorganic minerals such as kaolin, phyllosilicates, carbonates, sulfates, phosphates, or botanical materials such as cork, powdered corncobs, peanut hulls, rice hulls, and walnut shells.
- inorganic minerals such as kaolin, phyllosilicates, carbonates, sulfates, phosphates, or botanical materials such as cork, powdered corncobs, peanut hulls, rice hulls, and walnut shells.
- compositions of the embodiments can be in a suitable form for direct application or as a concentrate of primary composition that requires dilution with a suitable quantity of water or other diluent before application.
- the pesticidal concentration will vary depending upon the nature of the particular formulation, specifically, whether it is a concentrate or to be used directly.
- the composition contains 1 to 98% of a solid or liquid inert carrier, and 0 to 50% or 0.1 to 50% of a surfactant. These compositions will be administered at the labeled rate for the commercial product, for example, about 0.01 Ib- 5.0 lb. per acre when in dry form and at about 0.01 pts. - 10 pts. per acre when in liquid form.
- compositions, as well as the transformed microorganisms and pesticidal proteins of the embodiments can be treated prior to formulation to prolong the pesticidal activity when applied to the environment of a target pest as long as the pretreatment is not deleterious to the pesticidal activity.
- Such treatment can be by chemical and/or physical means as long as the treatment does not deleteriously affect the properties of the composition(s).
- Examples of chemical reagents include but are not limited to halogenating agents; aldehydes such as formaldehyde and glutaraldehyde; anti-infectives, such as zephiran chloride; alcohols, such as isopropanol and ethanol; and histological fixatives, such as Bouin's fixative and Helly's fixative (see, for example, Humason (1967) Animal Tissue Techniques (W.H. Freeman and Co.).
- aldehydes such as formaldehyde and glutaraldehyde
- anti-infectives such as zephiran chloride
- alcohols such as isopropanol and ethanol
- histological fixatives such as Bouin's fixative and Helly's fixative (see, for example, Humason (1967) Animal Tissue Techniques (W.H. Freeman and Co.).
- compositions can be applied to the environment of an insect pest by, for example, spraying, atomizing, dusting, scattering, coating or pouring, introducing into or on the soil, introducing into irrigation water, by seed treatment or general application or dusting at the time when the pest has begun to appear or before the appearance of pests as a protective measure.
- the pesticidal protein and/or transformed microorganisms of the embodiments may be mixed with grain to protect the grain during storage. It is generally important to obtain good control of pests in the early stages of plant growth, as this is the time when the plant can be most severely damaged.
- the compositions of the embodiments can conveniently contain another insecticide if this is thought necessary.
- the composition is applied directly to the soil, at a time of planting, in granular form of a composition of a carrier and dead cells of a Bacillus strain or transformed microorganism of the embodiments.
- Another embodiment is a granular form of a composition comprising an agrochemical such as, for example, an herbicide, an insecticide, a fertilizer, an inert carrier, and dead cells of a Bacillus strain or transformed microorganism of the embodiments.
- the composition is a "non-naturally occurring" composition.
- a “non-naturally occurring” composition refers to a composition that is not found in nature.
- Such non-naturally occurring compositions include but are not limited to a composition that comprises a polynucleotide of the disclosure or a polypeptide of the disclosure and at least one component not normally associated in nature with a polynucleotide of the disclosure or a polypeptide of the disclosure.
- compositions include but are not limited to a plant or microorganism, excluding the plant or microorganism from which the polynucleotide of the disclosure or the polypeptide of the disclosure was isolated from or derived from, transformed with a polynucleotide of the disclosure or comprising a polypeptide of the disclosure.
- insects include economically important agronomic, forest, greenhouse, nursery, ornamentals, food and fiber, public and animal health, domestic and commercial structure, household and stored product pests.
- Insect pests include insects selected from the orders Coleoptera, Diptera, Hymenoptera, Lepidoptera, Mallophaga, Homoptera, Hemiptera, Orthoptera, Thysanoptera, Dermaptera, Isoptera, Anoplura, Siphonaptera, Trichoptera, etc., particularly Lepidoptera.
- Larvae and adults of the order Coleoptera include weevils from the families Anthribidae, Bruchidae, and Curculionidae (including, but not limited to: Anthonomus grandis Boheman (boll weevil); Lissorhoptrus oryzophilus Kuschel (rice water weevil); Sitophilus granarius Linnaeus (granary weevil); S. oryzae Linnaeus (rice weevil); Hypera punctata Fabricius (clover leaf weevil); Cylindrocopturus adspersus LeConte (sunflower stem weevil); Smicronyx fulvus LeConte (red sunflower seed weevil); S.
- Anthonomus grandis Boheman boll weevil
- Lissorhoptrus oryzophilus Kuschel rice water weevil
- Sitophilus granarius Linnaeus granary weevil
- sordidus LeConte (gray sunflower seed weevil); Sphenophorus maidis Chittenden (maize billbug)); flea beetles, cucumber beetles, rootworms, leaf beetles, potato beetles, and leafminers in the family Chrysomelidae (including, but not limited to: Leptinotarsa decemlineata Say (Colorado potato beetle); Diabrotica virgifera virgifera LeConte (western corn rootworm); D. barberi Smith & Lawrence (northern corn rootworm,); D.
- Larvae of the order Lepidoptera include, but are not limited to, armyworms, cutworms, loopers, and heliothines in the family Noctuidae Spodoptera frugiperda JE Smith (fall armyworm); S. exigua Hubner (beet armyworm); S. litura Fabricius (tobacco cutworm, cluster caterpillar); Mamestra configurata Walker (bertha armyworm); M. brassicae Linnaeus (cabbage moth); Agrotis ipsilon Hufnagel (black cutworm); A. orthogonia Morrison (western cutworm); A.
- subterranea Fabricius granulate cutworm; Alabama argillacea Hubner (cotton leaf worm); Trichoplusia ni Hubner (cabbage looper); Pseudoplusia includens Walker (soybean looper); Anticarsia gemmatalis Hubner (velvetbean caterpillar); Hypena scabra Fabricius (green cloverworm); Heliothis virescens Fabricius (tobacco budworm); Pseudaletia unipuncta Haworth (armyworm); Athetis mindara Barnes and Mcdunnough (rough skinned cutworm); Euxoa messoria Harris (darksided cutworm); Earias insulana Boisduval (spiny bollworm); E.
- vittella Fabricius (spotted bollworm); Helicoverpa armigera Hubner (American bollworm); H. zea Boddie (corn earworm or cotton bollworm); Melanchra picta Harris (zebra caterpillar); Egira (Xylomyges) curialis Grote (citrus cutworm); borers, casebearers, webworms, coneworms, and skeletonizers from the family Pyralidae Ostrinia nubilalis Hubner (European corn borer); Amyelois transitella Walker (naval orangeworm); Anagasta kuehniella Zeller (Mediterranean flour moth); Cadra cautella Walker (almond moth); Chilo suppressalis Walker (rice stem borer); C.
- saccharalis Fabricius (surgarcane borer); Eoreuma loftini Dyar (Mexican rice borer); Ephestia elutella Hubner (tobacco (cacao) moth); Galleria mellonella Linnaeus (greater wax moth); Herpetogramma licarsisalis Walker (sod webworm); Homoeosoma electellum Hulst (sunflower moth); Elasmopalpus lignosellus Zeller (lesser cornstalk borer); Achroia grisella Fabricius (lesser wax moth); Loxostege sticticalis Linnaeus (beet webworm); Orthaga thyrisalis Walker (tea tree web moth); Maruca testulalis Geyer (bean pod borer); Plodia interpunctella Hubner (Indian meal moth); Scirpophaga incertulas Walker (yellow stem borer); Udea rubigal
- Selected other agronomic pests in the order Lepidoptera include, but are not limited to, Alsophila pometaria Harris (fall cankerworm); Anarsia lineatella Zeller (peach twig borer); Anisota senatoria J.E.
- fiscellaria lugubrosa Hulst (Western hemlock looper); Leucoma salicis Linnaeus (satin moth); Lymantria dispar Linnaeus (gypsy moth); Manduca quinquemaculata Haworth (five spotted hawk moth, tomato hornworm); M.
- Leafminers such as Agromyza parvicornis Loew (corn blotch leafminer); midges (including, but not limited to: Contarinia sorghicola Coquillett (sorghum midge); Mayetiola destructor Say (Hessian fly); Sitodiplosis mosellana Gehin (wheat midge); Neolasioptera murtfeldtiana Felt, (sunflower seed midge)); fruit flies (Tephritidae), Oscinella frit Linnaeus (frit flies); maggots (including, but not limited to: Delia platura Meigen (seedcorn maggot); D.
- leafminers such as Agromyza parvicornis Loew (corn blotch leafminer
- midges including, but not limited to: Contarinia sorghicola Coquillett (sorghum midge); Mayetiola destructor Say (Hessian fly); Sitodiplosis mosellana Geh
- femoralis Stein (lesser house flies); Stomoxys calcitrans Linnaeus (stable flies)); face flies, horn flies, blow flies, Chrysomya spp.; Phormia spp.; and other muscoid fly pests, horse flies Tabanus spp.; bot flies Gastrophilus spp.; Oestrus spp.; cattle grubs Hypoderma spp.; deer flies Chrysops spp.; Melophagus ovinus Linnaeus (keds); and other Brachycera, mosquitoes Aedes spp.; Anopheles spp.; Culex spp.; black flies Prosimulium spp.; Simulium spp.; biting midges, sand flies, sciarids, and other Nematocera.
- insects such as, but not limited to, adelgids from the family Adelgidae, plant bugs from the family Miridae, cicadas from the family Cicadidae, leafhoppers, Empoasca spp.; from the family Cicadellidae, planthoppers from the families Cixiidae, Flatidae, Fulgoroidea, Issidae and Delphacidae, treehoppers from the family Membracidae, psyllids from the family Psyllidae, whiteflies from the family Aleyrodidae, aphids from the family Aphididae, phylloxera from the family Phylloxeridae, mealybugs from the family Pseudococcidae, scales from the families Asterolecanidae, Coccidae, Dactylopiidae,
- Agronomically important members from the order Homoptera further include, but are not limited to: Acyrthisiphon pisum Harris (pea aphid); Aphis craccivora Koch (cowpea aphid); A. fabae Scopoli (black bean aphid); A. gossypii Glover (cotton aphid, melon aphid); A. maidiradicis Forbes (corn root aphid); A. pomi De Geer (apple aphid); A.
- vaporariorum Westwood greenhouse whitefly
- Empoasca fabae Harris potato leafhopper
- Laodelphax striatellus Fallen small brown planthopper
- Macrolestes quadrilineatus Forbes aster leafhopper
- Nephotettix cinticeps Uhler green leafhopper
- nigropictus Stal (rice leafhopper); Nilaparvata lugens Stal (brown planthopper); Peregrinus maidis Ashmead (corn planthopper); Sogatella furcifera Horvath (white-backed planthopper); Sogatodes orizicola Muir (rice delphacid); Typhlocyba pomaria McAtee (white apple leafhopper); Erythroneoura spp.
- Agronomically important species from the order Hemiptera include, but are not limited to: Acrosternum hilare Say (green stink bug); Anasa tristis De Geer (squash bug); Blissus leucopterus leucopterus Say (chinch bug); Corythuca gossypii Fabricius (cotton lace bug); Cyrtopeltis modesta Distant (tomato bug); Dysdercus suturellus Herrich- Schaffer (cotton stainer); Euschistus servus Say (brown stink bug); E. variolarius Palisot de Beauvois (one-spotted stink bug); Graptostethus spp.
- rugulipennis Poppius European tarnished plant bug
- Lygocoris pabulinus Linnaeus common green capsid
- Nezara viridula Linnaeus (southern green stink bug); Oebalus pugnax Fabricius (rice stink bug); Oncopeltus fasciatus Dallas (large milkweed bug); Pseudatomoscelis seriatus Reuter (cotton fleahopper).
- Insects included in the order Hemiptera include: Calocoris norvegicus Gmelin
- Insect pests of the order Thysanura include Lepisma saccharina Linnaeus (silverfish); Thermobia domestica Packard (firebrat). Additional arthropod pests include: spiders in the order Araneae such as Loxosceles reclusa Gertsch & Mulaik (brown recluse spider); and the Latrodectus mactans Fabricius (black widow spider); and centipedes in the order Scutigeromorpha such as Scutigera coleoptrata Linnaeus (house centipede).
- CEW Corn earworm (Helicoverpa zea Boddie)
- BCW Black cutworm (Agrotis ipsilon Hufnagel)
- VBC Velvetbean Caterpillar Anticarsia gemmatalis Hubner
- Lygus Lygus Hesperus L. el is us Methods for measuring pesticidal activity are well known in the art. See, for example, Czapla and Lang, (1990) J. Econ. Entomol. 83:2480-2485; Andrews, et al., (1988) Biochem. J. 252:199-206; Marrone, et al., (1985) J. of Economic Entomology 78:290-293 and US Patent Number 5,743,477, all of which are herein incorporated by reference in their entirety.
- the protein is mixed and used in feeding assays. See, for example Marrone, et al., (1985) J. of Economic Entomology 78:290-293.
- Such assays can include contacting plants with one or more pests and determining the plant's ability to survive and/or cause the death of the pests.
- Nematodes include parasitic nematodes such as root-knot, cyst, and lesion nematodes, including Heterodera spp., Meloidogyne spp., and Globodera spp.; particularly members of the cyst nematodes, including, but not limited to, Heterodera glycines (soybean cyst nematode); Heterodera schachtii (beet cyst nematode); Heterodera avenae (cereal cyst nematode); and Globodera rostochiensis and Globodera pallida (potato cyst nematodes).
- Lesion nematodes include Pratylenchus spp.
- seed treatment options can provide additional crop plan flexibility and cost effective control against insects, weeds and diseases.
- Seed material can be treated, typically surface treated, with a composition comprising combinations of chemical or biological herbicides, herbicide safeners, insecticides, fungicides, germination inhibitors and enhancers, nutrients, plant growth regulators and activators, bactericides, nematocides, avicides and/or molluscicides. These compounds are typically formulated together with further carriers, surfactants or application-promoting adjuvants customarily employed in the art of formulation.
- the coatings may be applied by impregnating propagation material with a liquid formulation or by coating with a combined wet or dry formulation. Examples of the various types of compounds that may be used as seed treatments are provided in The Pesticide Manual: A World Compendium, C.D.S. Tomlin Ed., Published by the British Crop Production Council, which is hereby incorporated by reference.
- Some seed treatments that may be used on crop seed include, but are not limited to, one or more of abscisic acid, acibenzolar-S-methyl, avermectin, amitrol, azaconazole, azospirillum, azadirachtin, azoxystrobin, bacillus spp. (including one or more of cereus, firmus, megaterium, pumilis, sphaericus, subtilis and/or thuringiensis), bradyrhizobium spp.
- captan including one or more of betae, canariense, elkanii, iriomotense, japonicum, liaonigense, pachyrhizi and/or yuanmingense
- captan carboxin, chitosan, clothianidin, copper, cyazypyr, difenoconazole, etidiazole, fipronil, fludioxonil, fluoxastrobin, fluquinconazole, flurazole, fluxofenim, harpin protein, imazalil, imidacloprid, ipconazole, isoflavenoids, lipo-chitooligosaccharide, mancozeb, manganese, maneb, mefenoxam, metalaxyl, metconazole, myclobutanil, PCNB, penflufen, penicillium, penthiopyrad, permethrine, picoxystrobin, prothioconazole,
- Seed varieties and seeds with specific transgenic traits may be tested to determine which seed treatment options and application rates may complement such varieties and transgenic traits in order to enhance yield.
- a variety with good yield potential but head smut susceptibility may benefit from the use of a seed treatment that provides protection against head smut
- a variety with good yield potential but cyst nematode susceptibility may benefit from the use of a seed treatment that provides protection against cyst nematode, and so on.
- a variety encompassing a transgenic trait conferring insect resistance may benefit from the second mode of action conferred by the seed treatment
- a variety encompassing a transgenic trait conferring herbicide resistance may benefit from a seed treatment with a safener that enhances the plants resistance to that herbicide, etc.
- methods are provided for killing or controlling an insect pest, comprising contacting the insect pest, either simultaneously or sequentially, with an insecticidally-effective amount of a recombinant polypeptide of the disclosure.
- methods are provided for killing an insect pest, comprising contacting the insect pest with an insecticidally-effective amount of a recombinant pesticidal protein of SEQ ID NO: 2, SEQ ID NO: 24 or SEQ ID NO: 10 or a variant thereof, including but not limited to the polypeptides of SEQ ID NO: 29, SEQ I D NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO:
- controlling a pest population or “controls a pest” refers to any effect on a pest that results in limiting the damage that the pest causes. Controlling a pest includes, but is not limited to: killing the pest, inhibiting development of the pest, altering fertility or growth of the pest in such a manner that the pest provides less damage to the plant, decreasing the number of offspring produced, producing less fit pests, producing pests more susceptible to predator attack or deterring the pests from eating the plant.
- methods are provided for controlling an insect pest population resistant to a pesticidal protein, comprising contacting the insect pest population, either simultaneously or sequentially, with an insecticidally-effective amount of a recombinant polypeptide of the disclosure.
- methods are provided for controlling an insect pest population resistant to a pesticidal protein, comprising contacting the insect pest population with an insecticidally-effective amount of a recombinant pesticidal protein of SEQ ID NO: 2, SEQ ID NO: 24 or SEQ ID NO: 10 or a variant thereof, including but not limited to the polypeptides of SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO:
- methods are provided for protecting a plant from an insect pest, comprising expressing in the plant or cell thereof a recombinant polynucleotide encoding a polypeptide of the disclosure.
- methods are provided for protecting a plant from an insect pest, comprising expressing in the plant or cell thereof a recombinant polynucleotide encoding pesticidal protein of SEQ ID NO: 2, SEQ ID NO: 24 or SEQ ID NO: 10 or variants thereof, including but not limited to the polypeptides of SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ I D NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO
- a pest population may be controlled by means of a composition comprising the polypeptides of the disclosure in a pesticidally-effective amount in a form including, but not limited to: a powder, dust, pellet, granule, spray, emulsion, colloid, or solution and a suitable carrier.
- B. thuringiensis ⁇ -endotoxins in transgenic corn plants has proven to be an effective means of controlling agriculturally important insect pests (Perlak, et al., 1990; 1993). However, insects have evolved that are resistant to B. thuringiensis ⁇ - endotoxins expressed in transgenic plants. Such resistance, should it become widespread, would clearly limit the commercial value of germplasm containing genes encoding such B. thuringiensis ⁇ -endotoxins.
- Non-transgenic i.e., non-insecticidal protein
- refuges a section of non- insecticidal crops/ corn
- transgenic crops producing a single insecticidal protein active against target pests.
- the United States Environmental Protection Agency epa.gov/oppbppdl/biopesticides/pips/bt_corn_refuge_2006.htm, which can be accessed using the www prefix
- Another way of increasing the effectiveness of transgenic insecticides against target pests and contemporaneously reducing the development of insecticide-resistant pests would be to have a repository of insecticidal genes that are effective against groups of insect pests and which manifest their effects through different modes of action.
- the US Environmental Protection Agency requires significantly less (generally 5%) structured refuge of non-Bt corn be planted than for single trait products (generally 20%).
- There are various ways of providing the IRM effects of a refuge including various geometric planting patterns in the fields and in-bag seed mixtures, as discussed further by Roush.
- polypeptides of the disclosure are useful as an insect resistance management strategy in combination (i.e., pyramided) with other pesticidal proteins include but are not limited to Bt toxins, Xenorhabdus sp. or Photorhabdus sp. insecticidal proteins, and the like.
- kits for controlling insect infestation(s) in a transgenic plant that promote insect resistance management comprising expressing in the plant at least two different insecticidal proteins having different modes of action.
- At least one of the insecticidal proteins comprise a polypeptide of the disclosure insecticidal to insects.
- At least one of the insecticidal proteins comprises a protein of SEQ ID NO: 2, SEQ ID NO: 24 or SEQ ID NO: 10 or variants thereof, including but not limited to the polypeptides of SEQ ID NO: 29, SEQ ID NO: 30, SEQ ID NO: 31 , SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, SEQ ID NO: 41 , SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO: 46, SEQ ID NO: 47, SEQ ID NO: 48, SEQ ID NO: 49, SEQ ID NO: 50, SEQ ID NO: 51 , SEQ ID NO: 52, SEQ ID NO: 53, SEQ ID NO: 54
- the methods of controlling insect infestation in a transgenic plant and promoting insect resistance management comprise expressing in the transgenic plant a polypeptide of the disclosure and an insecticidal Cry protein having different modes of action.
- methods for obtaining regulatory approval for planting or commercialization of plants expressing insecticidal proteins, comprising the step of referring to, submitting or relying on insect assay binding data showing that the polypeptides of the disclosure do not compete with binding sites for Cry proteins in such insects.
- Example 1 Isolation and Modeling of MP467 and Cry46Aa
- the insecticidal protein MP467 (SEQ ID NO: 2) was obtained from a screen of proteins derived from the Bacillus sphaericus strain AM1922.
- MP467 ortholog sequences were identified by similarity search on the non- redundant database (nr) of National Center for Bioinformatics Information (NCBI) using BLAST and PSI-BLAST.
- HMMER3 Hidden Markov Model profile method was also used to expand the membership search through two PFAM families, aerolysin and ETX_MT2 (Clostridium ⁇ -toxin and Bacillus mosquitocidal toxin).
- a total 485 sequences in the NCBI non-redundant database have a detectable similarity to the MP467. After redundancy reduction in which two sequences are clustered as one if they are with 95% identical over 95% length, 333 unique sequences are identified.
- the ortholog proteins were found in all kingdoms of life although vast majority of them are bacterial toxins such as aerolysin from Aeromonas (Genbank accession:YP_001 143607J, alpha-toxin from Clostridium septicum (ABD65254), ⁇ -toxin form Clostridium perfringens (CAA43104), parasporin-2 (PS2) from Bacillus thuringiensis (BAC79010).
- aerolysin from Aeromonas Genbank accession:YP_001 143607J
- alpha-toxin from Clostridium septicum
- ⁇ -toxin form Clostridium perfringens
- PS2 parasporin-2
- BAC79010 Bacillus thuringiensis
- MP467 (SEQ ID NO: 2) has a significant structural similarity to a well-studied aerolysin family.
- the structure of MP467 (SEQ ID NO: 2) was modeled using standard homology modeling techniques available within the Discovery Studio 3.5 ® software (Copyright 2005-12 Accelrys Software). In brief, the
- MP467 amino acid sequence (SEQ ID NO: 2) was used as the query sequence to BLAST against the available structures in the Protein Databank (PBD).
- the top scoring BLAST hit was parasporin-2 from Bacillus thuringiensis (PDB ID 2ZTB) with an overall sequence identity of 42% covering 245 amino acids of the query sequence and an E-value of 4.0674e-45.
- the parasporin-2 structure (2ztb) was used as the structural template for the MP467 sequence (SEQ ID NO: 2).
- SEQ ID NO: 2 The homology modeling procedure 20 models for MP467 (SEQ ID NO: 2) were generated, energy minimized with high optimization setting (Discovery Studio 3.5 ® ) and scored. The lowest energy model was used in the following structural analysis of MP467 (SEQ ID NO: 2).
- the overall structure of modeled MP467 (SEQ ID NO: 2) shares a high degree of similarity to the parasporin-2 structure (2ztb) the largest differences resulting from a two residue deletion in the loop connecting ⁇ 1 1 and ⁇ 12 (Akiba, 2009)
- the model for MP467 (SEQ ID NO: 2) is comprised of an elongated ⁇ -strand structure (approximately 1 13A x 18A x 25A) aligned with its long axis, similar to aerolysin-type ⁇ -pore-forming toxins (Szczesny et al., 201 1 ).
- the PS2 structure (2ztb) consists of three structural domains with the two longest beta strands ( ⁇ 4 and ⁇ 5) running through the entire three-domains ( Figure 7 and 8).
- ⁇ 4 and ⁇ 5 are short and only cover the domain 2 and 3 while they have a large subdomain extension encompassing half of the receptor binding domain in aerolysin.
- the variable elements (residue 52-1 16 and 240-274, domain I) were removed from PS2 structure (2ztb) and structural similarity was determined using the Dali algorithm (Holm L, Rosenstrom P (2010) Dali server: conservation mapping in 3D.
- the core domain is similar to ⁇ -toxin (PDB:1 uyj, Cole et al. 2004), hemolytic lectin from mushroom (1w3a, 1w3f, and 1w3g, Manchefio et a;. 2005), aerolysin from various sources (3g4o, 1 pre, etc., Rossjohn et al., 1998), and enterotoxin (2xh6 and amx2, Kitadokoro et al., 201 1 ), consistent with the sequence comparison. Although these toxins have drastically different Domain I structures likely reflecting their distinct target specificity, they exhibit the same general topology in Domain II and Domain III establishing their evolutionary and functional relevancy.
- Domain I of MP467 (SEQ ID NO: 2) is comprised of residues 1 to 65, and residues
- domain I consists of an anti-parallel ⁇ - sheet with four short strands in between helix 2 and 3.
- the ⁇ -turn between strand 1 1 and strand 12 is shortened by two residues in the MP467 model compared with parasporin-2.
- Domain I of MP467 contains a surface hydrophobic patch consisting of Phe26, Val48, Pro50, Ile52, Tyr56, Met193, Val202, His205, Tyr206, Phe207, Trp208,
- the hydrophobic patch ( Figure 9) is approximately 198A 2 (17.7A x 1 1 .2A) encompassing strand 12, helix 2, helix 3 and the type 1 ' ⁇ -turn between strand 1 1 and strand 12 (motif shown in SEQ ID NO: 13).
- Literature evidence strongly suggests that Domain I of the aerolysin-type beta-pore-forming-toxins ( ⁇ -PFTs) is involved in receptor binding (Abe, 2008) (Tateno, 2003) (Lafont, 2004) (Song, 1996) (Olson, 1999).
- Domain II and III adopt a highly twisted topology made of almost entirely ⁇ strands and defines as the conserved aerolysin fold (Szczesny et al., 201 1 ).
- Domain II is a five- stranded anti-parallel ⁇ -sheet ( ⁇ 5/ ⁇ 6- ⁇ 1 1- ⁇ 13- ⁇ 7- ⁇ 10, where both ⁇ 5 and ⁇ 6 can be viewed as a broken one long strand) patched on one side by an amphipathic ⁇ -hairpin ⁇ 8 and ⁇ 9 ( Figure 9).
- This hairpin stemmed from ⁇ 7 and ⁇ 10 forms a hydrophobic core with the central ⁇ -sheet, but it is too thin to cover the whole inner surface.
- the ⁇ 7 and ⁇ 10 spray from the central sheet also twist in middle, and hydrophobically pack against strands ⁇ 5/ ⁇ 6- ⁇ 1 1- ⁇ 13.
- These natural ⁇ -sheet twisting points provide a convenient domain divider.
- the ⁇ 5/ ⁇ 6 usually does not hold the ⁇ conformation along its whole length due to twist and separates into two linked ⁇ strands as ⁇ 5 and ⁇ 6.
- this usual topology strikes a balance between protein structural stability and flexibility critical to conformational transition from soluble to pore forming state.
- ⁇ -strand 10 contains 3 serine and 4 threonine residues with average solvent accessibility of 78.5A 2 . These residues occur in an "every-other- one" motif from N to C-terminus of the ⁇ -strand 10.
- ⁇ -strand 7 also contains a stretch of 3 serine and 2 threonine residues with average solvent exposure of 59.3 A 2 .
- This distinct serine/threonine stripe has been observed in the aerolysin-type beta-pore-forming-toxins ( ⁇ -PFTs). (Rossjohn, 1998) It has been proposed that this feature of parasporin-2 may be involved in aligning the molecule parallel to membrane after initial receptor binding by domain I. (Akiba, 2009)
- aerolysin-like toxins despite their distinct target specificity are thought to share the same mode of action, ⁇ -barrel pore formation in membrane.
- the toxin is produced as a soluble protein which diffuses towards its target cell where it binds via specific surface receptors. Once receptor bound, the toxin undergoes circular polymerization, generating ring like structures that subsequently insert into the membrane and form a pore. While aerolysin and ⁇ -toxin form heptamers, the stoichiometry might differ between members. Multiple lines of evidences back up a notation that the pore forming is carried out with the conserved beta hairpin.
- the ⁇ -barrel conformation across membrane positions residues along the pore wall facing either hydrophobic lipid bilayer or hydrophilic pore lumen.
- the sequence of the transmembrane insertion elements must at least have the alternating pattern of polar and hydrophobic residues although any distinct sequence conservation might be not strictly required.
- the sequence alignment among the inserting ⁇ -hairpin from the typical aerolysin-like toxins including MP467 demonstrated that this amphipathic pattern is largely persevered (Figure 5). In fact, the hairpin is one of most conserved elements on the whole sequence.
- Clostridium septicum alpha toxin (Melton et al., 2009), a sequence homolog of aerolysin and MP467.
- deletion mutagenesis cysteine-scanning mutagenesis and multiple spectrofluorimetric methods, the applicants showed that either removing the hairpin by deletion or restricting its movement by engineered disulfide abolishes alpha toxin's pore forming capability but does not affect other functions.
- Insecticidal activity bioassay screens were conducted to evaluate the effects of the insecticidal proteins on a variety of Lepidoptera species: European corn borer (Ostrinia nubilalis), corn earworm (Helicoverpa zea), black cutworm (Agrotis ipsilon), fall armyworm (Spodoptera frugiperda), Soybean looper (Pseudoplusia includens) and Velvet bean caterpillar (Anticarsia gemmatalis), and a Coleoptera specie (Western corn rootworm (Diabrotica virgifera).
- European corn borer Ostrinia nubilalis
- corn earworm Helicoverpa zea
- black cutworm Agrotis ipsilon
- fall armyworm Spodoptera frugiperda
- Soybean looper Pseudoplusia includens
- Velvet bean caterpillar Anticarsia gemmatalis
- Lepidoptera feeding assays were conducted on an artificial diet containing the cleared lysates of bacterial strains in a 96 well plate set up. The cleared lysate was incorporated with the Lepidopteran-specific artificial diet in a ratio of 20 ul cleared lysate and 40 ul of diet mixture. Two to five neonate larvas were placed in each well to feed ad libitum for 5 days. Results were expressed as positive for larvae reactions such as stunting and or mortality. Results were expressed as negative if the larvae were similar to the negative control that is feeding diet to which the above buffer only has been applied.
- Coleoptera feeding assays were conducted on an artificial diet containing the cleared lysates of bacterial strains in a 96 well plate set up. The cleared lysate was incorporated with the coleopteran-specific artificial diet in a ratio of 10 ul cleared lysate and 50 ul of diet mixture. Two to five Western corn rootworm (Diabrotica virgifera) neonate larva were placed in each well to feed ad libitum for 5 days. Results were expressed as positive for larvae reactions such as stunting and or mortality. Results were expressed as negative if the larvae were similar to the negative control that is feeding diet to which the above buffer only has been applied.
- MP467 SEQ ID NO: 2
- LC50 50% mortality
- IC50 50% inhibition of 50% of the individuals
- Cry46Aa SEQ ID NO: 10
- the response of insects towards the proteins was scored using a 0-3 numerical scoring system based on the size and mortality of the larvae in each well. If no response (or normal growth) was seen, a score of 0 was given. When the growth was slightly retarded, a score of 1 was given. A score of 2 meant that the larvae were severely retarded in growth (close to neonate size). A score of 3 meant death to all the larvae in the well.
- the percent response (% Response) for each treatment was calculated by dividing the total score, a sum of scores from replicated wells for each treatment, by the total highest possible scores and multiplying by 100 to yield "%
- Lygus ⁇ Lygus hesperus bioassays were conducted using the cell lysate samples mixed with insect diet (Bio-Serv F9644B) in each well of a 96 well bioassay plate (BD FalconTM 353910). A variable number of Lygus hesperus second instar nymphs (2 to 7) were placed into each well of a 96 well plate. The assay was run four days at 25°C and then was scored for insect mortality and stunting of insect growth. A series of
- concentrations of the purified protein sample was assayed against those insects and concentrations for 50% mortality (LC50) or inhibition of 50% of the individuals (ILC50) were calculated.
- the Lygus assay was run for 4 days with 15 2nd stage instars per petri dish with 3 reps per dose. Doses were 40 ul sample at 3 mg/ml MP467 (SEQ ID NO: 2) or Cry46Aa (SEQ ID NO: 10) + 360 ul diet. The results are in Table 4 and Table 5.
- Example 4 Identification of motifs for insecticidal activity: Domain I hydrophobic patch mutagenesis
- Cry46Aa (parasporin SEQ ID NO: 10) has been reported in the literature to have hemolytic activity.
- MP467 SEQ ID NO: 2 in addition to insecticidal activity showed hemolytic activity.
- the Cry46Aa parasporin-2Aa SEQ ID NO: 10
- MP467 SEQ ID NO: 2
- MP467 hydrophobic patch variants Table 6
- the erythrocyte suspension was adjusted to 1 % with PBS supplemented with 0.1 % bovine serum albumin and 0.2 ml of the 1 % erythrocyte suspension was incubated at 37°C with 0.2 ml tested protein/extract in PBS.
- the incubated erythrocyte suspension was centrifuge at 120 x g for 7 min to remove undamaged RBCs.
- the resulting supernatant (0.3 ml) was transferred into each well of 96-well plate.
- the concentration of released hemoglobin was determined by reading absorbance at 545 nm in a spectrophotometer against a control background (0.5 ml erythrocyte suspension with 0.5 ml PBS).
- the 100% hemolysis standard was determined by incubating 0.2 ml of the 1 % erythrocyte suspension at 37°C with 0.2 ml of 0.1 % (final) Triton x100 in PBS. The hemolytic results are shown in Table 7.
- the polynucleotide of SEQ ID NO: 28 (MP467 MODA), with maize optimized codons, encoding MP467 (SEQ ID NO: 2) was cloned into a transient expression vector under control of the maize ubiquitin promoter (Christensen and Quail, (1996) Transgenic Research 5:213-218) and a duplicated version of the promoter from the mirabilis mosaic virus (DMMV PRO; Dey and Maiti, (1999) Plant Mol. Biol., 40:771 -82).
- DMMV PRO mirabilis mosaic virus
- the amino acid sequence of MP467 was BLAST searched (Basic Local Alignment Search Tool; Altschul, et al., (1993) J. Mol. Biol. 215:403-410; see also ncbi.nlm.nih.gov/BLAST/, which can be accessed using the www prefix) against public and proprietary DUPONT-PIONEER internal databases that included insecticidal polypeptide sequences.
- the search identified a MP467 homolog, MP812 (SEQ ID NO: 24) from a Bacillus thuringiensis strain designated as JH50823-1 .
- MP812 (SEQ I D NO: 24) has only 19% sequence identity and 38.3% sequence similarity to MP467 (SEQ ID NO: 2) the overall three-domain insecticidal structure, the surface hydrophobic patch and type V ⁇ -turn in Domain I, and the stripe of solvent exposed serine and threonine residues on the surface of Domain II and Domain III are conserved.
- the percent identity and similarity between the amino acid sequences of MP467 (SEQ ID NO: 2), MP812 (SEQ ID NO: 24), and Cry46Ab (SEQ ID NO: 12) are shown in Table 6 and Table 7 respectively.
- the assays were repeated for Western corn rootworm (Diabrotica virgifera) and corn earworm (Helicoverpa zea) side by side for MP467 (SEQ ID NO: 2) and MP812 (SEQ ID NO: 24) from 75 ug/cm 2 to 4.69 ug/cm 2 .
- the response of insects towards the proteins was scored using a 0-3 numerical scoring system based on the size and mortality of the larvae in each well. If no response (or normal growth) was seen, a score of 0 was given. When the growth was slightly retarded, a score of 1 was given. A score of 2 meant that the larvae were severely retarded in growth (close to neonate size). A score of 3 meant death to all the larvae in the well.
- the results are shown in Table 8.
- Example 8 Southern green stinkbug assay with purified protein Southern green stinkbug (Nezara viridula) eggs were collected from a laboratory maintained colony and kept in an incubator at 27°C with 65% relative humidity. After hatching, the insects were allowed to feed on green beans with or without the addition of green peas. Thereafter, freshly molted second instar stinkbugs were transferred onto a modified artificial Lygus diet (Bioserve; Lygus Hesperus diet, catalog # F9644B) supplemented either with MP467 (SEQ ID NO: 2) or MP812 (SEQ ID NO: 24) or water (as control). Five second instar stinkbugs per bioassay were fed with varying dosages of insecticidal proteins supplemented in the artificial diet.
- a modified artificial Lygus diet Bioserve; Lygus Hesperus diet, catalog # F9644B
- Immature maize embryos from greenhouse donor plants are bombarded with a DNA molecule containing the toxin nucleotide sequence (e.g., SEQ ID NOs: 1 or 9 ) operably linked to a suitable promoter and a suitable selectable marker gene (e.g. PAT, Wohlleben, et al., (1988) Gene 70: 25-37; which confers resistance to the herbicide Bialaphos).
- a suitable selectable marker gene e.g. PAT, Wohlleben, et al., (1988) Gene 70: 25-37; which confers resistance to the herbicide Bialaphos.
- the selectable marker gene is provided on a separate DNA molecule. Transformation is performed as follows. Media recipes follow below.
- the ears are husked and surface sterilized in 30% CLOROXTM bleach plus 0.5% Micro detergent for 20 minutes, and rinsed two times with sterile water.
- the immature embryos are excised and placed embryo axis side down (scutellum side up), 25 embryos per plate, on 560Y medium for 4 hours and then aligned within the 2.5 cm target zone in preparation for bombardment.
- a plasmid vector comprising a nucleotide sequence (e.g., SEQ ID NO: 1 ) operably linked to an ubiquitin promoter is constructed.
- a suitable transformation vector comprises a UBI 1 promoter from Zea mays, a 5' UTR from UBI 1 and a UBI 1 intron, in combination with a Pinll terminator.
- the vector additionally contains a PAT selectable marker gene driven by a CAMV35S promoter and includes a CAMV35S terminator.
- the selectable marker can reside on a separate plasmid.
- a DNA molecule comprising a toxin nucleotide sequence as well as a PAT selectable marker is precipitated onto 1.1 ⁇ (average diameter) tungsten pellets using a CaCI 2 precipitation procedure as follows:
- Each reagent is added sequentially to a tungsten particle suspension, while maintained on the multitube vortexer.
- the final mixture is sonicated briefly and allowed to incubate under constant vortexing for 10 minutes.
- the tubes are centrifuged briefly, liquid removed, washed with 500 mL 100% ethanol, and centrifuged for 30 seconds. Again the liquid is removed, and 105 ⁇ _ 100% ethanol is added to the final tungsten particle pellet.
- tungsten/DNA particles are briefly sonicated and 10 ⁇ _ spotted onto the center of each macrocarrier and allowed to dry about 2 minutes before bombardment.
- sample plates are bombarded at level #4 in particle gun #HE34-1 or #HE34-2. All samples receive a single shot at 650 PSI, with a total of ten aliquots taken from each tube of prepared particles/DNA.
- the embryos are kept on 560Y medium for 2 days, then transferred to 560R selection medium containing 3 mg/liter Bialaphos, and subcultured every 2 weeks. After approximately 10 weeks of selection, selection-resistant callus clones are transferred to 288J medium to initiate plant regeneration. Following somatic embryo maturation (2-4 weeks), well-developed somatic embryos are transferred to medium for germination and transferred to the lighted culture room. Approximately 7-10 days later, developing plantlets are transferred to 272V hormone-free medium in tubes for 7-10 days until plantlets are well established.
- Plants are then transferred to inserts in flats (equivalent to 2.5" pot) containing potting soil and grown for 1 week in a growth chamber, subsequently grown an additional 1-2 weeks in the greenhouse, then transferred to classic 600 pots (1 .6 gallon) and grown to maturity. Plants are monitored and scored for expression of the toxin by assays known in the art or as described above. Bombardment and Culture Media
- Bombardment medium comprises 4.0 g/L N6 basal salts (SIGMA C-1416), 1.0 mL/L Eriksson's Vitamin Mix (1000x SIGMA-151 1 ), 0.5 mg/L thiamine HCI, 120.0 g/L sucrose, 1.0 mg/L 2,4-D and 2.88 g/L L-proline (brought to volume with deionized H 2 0 following adjustment to pH 5.8 with KOH); 2.0 g/L GelriteTM (added after bringing to volume with dl H 2 0); and 8.5 mg/L silver nitrate (added after sterilizing the medium and cooling to room temperature).
- Selection medium comprises 4.0 g/L N6 basal salts (SIGMA C-1416), 1.0 mL/L Eriksson's Vitamin Mix (1000x SIGMA-151 1 ), 0.5 mg/L thiamine HCI, 30.0 g/L sucrose, and 2.0 mg/L 2,4-D (brought to volume with dl H 2 0 following adjustment to pH 5.8 with KOH); 3.0 g/L GelriteTM (added after bringing to volume with dl H 2 0); and 0.85 mg/L silver nitrate and 3.0 mg/L Bialaphos (both added after sterilizing the medium and cooling to room temperature).
- Plant regeneration medium (288J) comprises 4.3 g/L MS salts (GIBCO 1 1 1 17- 074), 5.0 mL/L MS vitamins stock solution (0.100 g nicotinic acid, 0.02 g/L thiamine HCI, 0.10 g/L pyridoxine HCI, and 0.40 g/L Glycine brought to volume with polished D-l H 2 0) (Murashige and Skoog (1962) Physiol. Plant.
- Hormone-free medium (272V) comprises 4.3 g/L MS salts (GIBCO 1 1 1 17-074),
- Transgenic Plants For transformation of maize with a toxin nucleotide sequence (e.g. , SEQ ID NO: 1 or 9), the method of Zhao can be used (US Patent Number 5,981 ,840 and PCT patent publication W098/32326; the contents of which are hereby incorporated by reference). Briefly, immature embryos are isolated from maize and the embryos contacted with a suspension of Agrobacterium under conditions whereby the bacteria are capable of transferring the toxin nucleotide sequence (SEQ ID NO: 1 ) to at least one cell of at least one of the immature embryos (step 1 : the infection step). In this step the immature embryos can be immersed in an Agrobacterium suspension for the initiation of inoculation.
- a toxin nucleotide sequence e.g. , SEQ ID NO: 1 or 9
- the embryos are co-cultured for a time with the Agrobacterium (step 2: the co-cultivation step).
- the immature embryos can be cultured on solid medium following the infection step. Following this co-cultivation period an optional "resting" step is contemplated. In this resting step, the embryos are incubated in the presence of at least one antibiotic known to inhibit the growth of Agrobacterium without the addition of a selective agent for plant transformants (step 3: resting step).
- the immature embryos can be cultured on solid medium with antibiotic, but without a selecting agent, for elimination of Agrobacterium and for a resting phase for the infected cells.
- inoculated embryos are cultured on medium containing a selective agent and growing transformed callus is recovered (step 4: the selection step).
- the immature embryos are cultured on solid medium with a selective agent resulting in the selective growth of transformed cells.
- the callus is then regenerated into plants (step 5: the regeneration step), and calli grown on selective medium can be cultured on solid medium to regenerate the plants.
- Soybean embryos are bombarded with a plasmid containing the toxin nucleotide sequence of SEQ ID NO: 1 operably linked to a suitable promoter as follows.
- somatic embryos cotyledons, 3-5mm in length dissected from surface-sterilized, immature seeds of an appropriate soybean cultivar are cultured in the light or dark at 26°C on an appropriate agar medium for six to ten weeks. Somatic embryos producing secondary embryos are then excised and placed into a suitable liquid medium. After repeated selection for clusters of somatic embryos that multiplied as early, globular- staged embryos, the suspensions are maintained as described below.
- Soybean embryogenic suspension cultures can be maintained in 35ml_ liquid media on a rotary shaker, 150rpm, at 26°C with florescent lights on a 16:8 hour day/night schedule. Cultures are subcultured every two weeks by inoculating approximately 35mg of tissue into 35ml_ of liquid medium.
- Soybean embryogenic suspension cultures may then be transformed by the method of particle gun bombardment (Klein, et al., (1987) Nature (London) 327:70-73, US Patent Number 4,945,050).
- a Du Pont Biolistic PDS1000/HE instrument helium retrofit
- a selectable marker gene that can be used to facilitate soybean transformation includes, but is not limited to: the 35S promoter from Cauliflower Mosaic Virus (Odell, et al., (1985) Nature 313:810-812), the hygromycin phosphotransferase gene from plasmid pJR225 (from E. coli; Gritz, et al., (1983) Gene 25:179-188), and the 3' region of the nopaline synthase gene from the T-DNA of the Ti plasmid of Agrobacterium tumefaciens.
- the expression cassette comprising a toxin nucleotide sequence (e.g., SEQ ID NO: 1 ) operably linked to a suitable promoter can be isolated as a restriction fragment. This fragment can then be inserted into a unique restriction site of the vector carrying the marker gene.
- a toxin nucleotide sequence e.g., SEQ ID NO: 1
- the DNA-coated particles are then washed once in 400 ⁇ _ 70% ethanol and resuspended in 40 ⁇ _ of anhydrous ethanol.
- the DNA/particle suspension can be sonicated three times for one second each. Five microliters of the DNA-coated gold particles are then loaded on each macro carrier disk.
- tissue Approximately 300-400mg of a two-week-old suspension culture is placed in an empty 60 x 15mm petri dish and the residual liquid removed from the tissue with a pipette. For each transformation experiment, approximately 5-10 plates of tissue are normally bombarded. Membrane rupture pressure is set at 1 10Opsi, and the chamber is evacuated to a vacuum of 28 inches mercury. The tissue is placed approximately 3.5 inches away from the retaining screen and bombarded three times. Following bombardment, the tissue can be divided in half and placed back into liquid and cultured as described above.
- the liquid media may be exchanged with fresh media, and eleven to twelve days post-bombardment with fresh media containing 50mg/ml_ hygromycin. This selective media can be refreshed weekly.
- Green, transformed tissue may be observed growing from untransformed, necrotic embryogenic clusters. Isolated green tissue is removed and inoculated into individual flasks to generate new, clonally propagated, transformed embryogenic suspension cultures. Each new line may be treated as an independent transformation event. These suspensions can then be subcultured and maintained as clusters of immature embryos or regenerated into whole plants by maturation and germination of individual somatic embryos.
- Thuringiensis crystal protein with anti-tumor activity J. Biochem. 143 , 269-275.
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| BR112015023276A BR112015023276A2 (en) | 2013-03-14 | 2014-03-13 | insecticide protein, nucleic acid molecule, construct, host cell, plant, seed, composition, method for controlling a pest population, method for killing a pest, method for protecting a plant, method for producing a polypeptide. |
| US14/775,344 US9879277B2 (en) | 2013-03-14 | 2014-03-13 | Insecticidal proteins and methods of use |
| CN201480027052.6A CN105431040B (en) | 2013-03-14 | 2014-03-13 | Insecticidal proteins having anti-hemipteran activity and methods of use thereof |
| CA2905444A CA2905444A1 (en) | 2013-03-14 | 2014-03-13 | Insecticidal proteins with activity against hemiptera and methods of use |
| US15/840,073 US10457957B2 (en) | 2013-03-14 | 2017-12-13 | Insecticidal proteins and methods of use |
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| US13/803,634 | 2013-03-14 | ||
| US13/803,634 US9403881B2 (en) | 2013-03-14 | 2013-03-14 | Insecticidal proteins and methods of use |
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| US14/775,344 A-371-Of-International US9879277B2 (en) | 2013-03-14 | 2014-03-13 | Insecticidal proteins and methods of use |
| US15/840,073 Continuation US10457957B2 (en) | 2013-03-14 | 2017-12-13 | Insecticidal proteins and methods of use |
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| PCT/US2014/025286 Ceased WO2014159836A1 (en) | 2013-03-14 | 2014-03-13 | Insecticidal proteins with activity against hemiptera and methods of use |
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| US (4) | US9403881B2 (en) |
| CN (1) | CN105431040B (en) |
| BR (1) | BR112015023276A2 (en) |
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Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107108705A (en) * | 2014-10-16 | 2017-08-29 | 先锋国际良种公司 | Insecticidal proteins and methods of use thereof |
| RU2746927C2 (en) * | 2015-12-22 | 2021-04-22 | Агбайоми, Инк. | Pesticidal genes and methods of use thereof |
| EP3864157A4 (en) * | 2018-10-10 | 2022-11-02 | Pioneer Hi-Bred International, Inc. | INSECTICIDAL PROTEINS AND METHODS OF USE |
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|---|---|---|---|---|
| MX2012006616A (en) | 2009-12-09 | 2012-06-21 | Procter & Gamble | Fabric and home care products. |
| US9403881B2 (en) * | 2013-03-14 | 2016-08-02 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins and methods of use |
| EP3244727B1 (en) * | 2015-01-15 | 2025-10-22 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins and methods for their use |
| EA201892293A1 (en) | 2016-05-04 | 2019-04-30 | Пайонир Хай-Бред Интернэшнл, Инк. | INSECTICIDAL PROTEINS AND METHODS OF THEIR APPLICATION |
| EP4219528A3 (en) | 2016-09-06 | 2023-09-13 | AgBiome, Inc. | Pesticidal genes and methods of use |
| US11345925B2 (en) | 2016-10-21 | 2022-05-31 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins from plants and methods for their use |
| AR109844A1 (en) | 2016-10-27 | 2019-01-30 | Syngenta Participations Ag | INSECTED PROTEINS |
| UA125632C2 (en) * | 2017-01-12 | 2022-05-04 | Сінгента Партісіпейшнс Аг | Insecticidal protein |
| BR112019016719A2 (en) * | 2017-02-24 | 2020-04-14 | Flagship Pioneering Innovations V Inc | related compositions and methods for modulating endosymbionts |
| CA3058757A1 (en) * | 2017-04-11 | 2018-10-18 | AgBiome, Inc. | Pesticidal genes and methods of use |
| CN110621780B (en) * | 2017-05-11 | 2024-03-19 | 先锋国际良种公司 | Insecticidal proteins and methods of use |
| EP3728294A4 (en) * | 2017-12-19 | 2021-12-29 | Pioneer Hi-Bred International, Inc. | Insecticidal polypeptides and uses thereof |
| EP3764796B1 (en) | 2018-03-14 | 2025-12-03 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins from plants and methods for their use |
| EP3764798B1 (en) * | 2018-03-14 | 2025-12-17 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins from plants and methods for their use |
| AR114668A1 (en) * | 2018-03-15 | 2020-09-30 | Syngenta Participations Ag | INSECTICIDE PROTEINS |
| MX2021008240A (en) * | 2019-01-10 | 2021-08-16 | Syngenta Crop Protection Ag | Compositions and methods for controlling insect pests. |
| CA3186978A1 (en) | 2020-07-14 | 2022-01-20 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins and methods for their use |
| CN112662677B (en) * | 2021-03-02 | 2022-12-02 | 天津师范大学 | Chironomus rubripes Hb gene and application thereof in water quality biological monitoring |
| PY2501099A (en) * | 2024-01-08 | 2025-08-06 | Monsanto Technology Llc | INSECT-INHIBITING PROTEINS |
| WO2025178772A1 (en) | 2024-02-23 | 2025-08-28 | Genective Sa | Insecticidal proteins compositions and methods of use |
| WO2025193453A1 (en) | 2024-03-14 | 2025-09-18 | Genective Sa | Insecticidal proteins compositions and methods of use |
| WO2025235220A1 (en) | 2024-05-08 | 2025-11-13 | Genective Sa | Insecticidal proteins compositions and methods of use |
| WO2025264577A1 (en) | 2024-06-20 | 2025-12-26 | Genective Sa | Insecticidal proteins, compositions and methods of use |
| WO2025264584A1 (en) | 2024-06-20 | 2025-12-26 | Genective Sa | Insecticidal proteins, compositions and methods of use |
| WO2026006045A1 (en) | 2024-06-25 | 2026-01-02 | Genective Sa | Insecticidal proteins, compositions and methods of use |
| WO2026043743A1 (en) | 2024-08-21 | 2026-02-26 | Genective Sa | Insecticidal proteins compositions and methods of use |
| WO2026055006A2 (en) | 2024-09-03 | 2026-03-12 | Genective Sa | Insecticidal proteins compositions and methods of use |
| WO2026076007A1 (en) | 2024-10-04 | 2026-04-09 | Genective Sa | Insecticidal proteins compositions and methods of use |
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| JP2004129608A (en) * | 2002-10-11 | 2004-04-30 | Kyushu Univ | Novel protein having cell recognition and / or cell destruction ability |
| WO2006012366A2 (en) * | 2004-07-20 | 2006-02-02 | Phyllom Llc | Methods for making and using recombinant bacillus thuringiensis spores |
| JP6308955B2 (en) * | 2012-03-09 | 2018-04-11 | ベスタロン コーポレイション | Production of toxic peptides, expression of peptides in plants, and combinations of cysteine rich peptides |
| US9403881B2 (en) * | 2013-03-14 | 2016-08-02 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins and methods of use |
-
2013
- 2013-03-14 US US13/803,634 patent/US9403881B2/en active Active
-
2014
- 2014-03-13 CA CA2905444A patent/CA2905444A1/en not_active Abandoned
- 2014-03-13 US US14/775,344 patent/US9879277B2/en not_active Expired - Fee Related
- 2014-03-13 WO PCT/US2014/025286 patent/WO2014159836A1/en not_active Ceased
- 2014-03-13 BR BR112015023276A patent/BR112015023276A2/en not_active Application Discontinuation
- 2014-03-13 CN CN201480027052.6A patent/CN105431040B/en not_active Expired - Fee Related
-
2016
- 2016-06-29 US US15/197,161 patent/US20160376607A1/en not_active Abandoned
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2017
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| US20090070896A1 (en) * | 2005-08-30 | 2009-03-12 | Phyllom Llc | Insect resistant transgenic turf grass |
| US20120148497A1 (en) * | 2010-12-12 | 2012-06-14 | Pioneer Hi-Bred International, Inc. | Methods of using field-derived colonies of insects selected for decreased susceptibility to plants expressing insecticidal toxins |
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Cited By (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107108705A (en) * | 2014-10-16 | 2017-08-29 | 先锋国际良种公司 | Insecticidal proteins and methods of use thereof |
| US12195743B2 (en) | 2014-10-16 | 2025-01-14 | Pioneer Hi-Bred International, Inc. | Insecticidal proteins and methods for their use |
| RU2746927C2 (en) * | 2015-12-22 | 2021-04-22 | Агбайоми, Инк. | Pesticidal genes and methods of use thereof |
| US11118190B2 (en) | 2015-12-22 | 2021-09-14 | AgBiome, Inc. | Pesticidal genes and methods of use |
| US11898153B2 (en) | 2015-12-22 | 2024-02-13 | AgBiome, Inc. | Pesticidal genes and methods of use |
| US12215333B2 (en) | 2015-12-22 | 2025-02-04 | AgBiome, Inc. | Pesticidal genes and methods of use |
| EP3864157A4 (en) * | 2018-10-10 | 2022-11-02 | Pioneer Hi-Bred International, Inc. | INSECTICIDAL PROTEINS AND METHODS OF USE |
Also Published As
| Publication number | Publication date |
|---|---|
| BR112015023276A2 (en) | 2018-02-27 |
| CA2905444A1 (en) | 2014-10-02 |
| CN105431040A (en) | 2016-03-23 |
| US20160031949A1 (en) | 2016-02-04 |
| US9879277B2 (en) | 2018-01-30 |
| US20140283208A1 (en) | 2014-09-18 |
| US20180094278A1 (en) | 2018-04-05 |
| US9403881B2 (en) | 2016-08-02 |
| CN105431040B (en) | 2017-09-19 |
| US10457957B2 (en) | 2019-10-29 |
| US20160376607A1 (en) | 2016-12-29 |
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