Search results for "Bacillus thuringiensi"

showing 10 items of 213 documents

Common receptor for Bacillus thuringiensis toxins Cry1Ac, Cry1Fa, and Cry1Ja in Helicoverpa armigera, Helicoverpa zea and Spodoptera exigua

2005

ABSTRACT Binding studies using 125 I-Cry1Ac and biotinylated Cry1Fa toxins indicate the occurrence of a common receptor for Cry1Ac, Cry1Fa, and Cry1Ja in Helicoverpa armigera , Helicoverpa zea , and Spodoptera exigua . Our results, along with previous binding data and the observed cases of cross-resistance, suggest that this pattern seems to be widespread among lepidopteran species.

Bacterial ToxinsBiotecnologia agrícolaBacillus thuringiensisMicrobiologiaReceptors Cell SurfaceSpodopteraHelicoverpa armigeraSpodopteraBinding CompetitiveApplied Microbiology and BiotechnologyMicrobiologyLepidoptera genitaliaHemolysin ProteinsBacterial ProteinsBacillus thuringiensisExiguaBotanyInvertebrate MicrobiologyAnimalsBinding SitesBacillus thuringiensis ToxinsEcologybiologyfungibiology.organism_classificationEndotoxinsLepidopteraCry1AcInsect ProteinsNoctuidaeHelicoverpa zeaFood ScienceBiotechnology
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Shared Binding Sites in Lepidoptera for Bacillus thuringiensis Cry1Ja and Cry1A Toxins

2001

ABSTRACT Bacillus thuringiensis toxins act by binding to specific target sites in the insect midgut epithelial membrane. The best-known mechanism of resistance to B. thuringiensis toxins is reduced binding to target sites. Because alteration of a binding site shared by several toxins may cause resistance to all of them, knowledge of which toxins share binding sites is useful for predicting cross-resistance. Conversely, cross-resistance among toxins suggests that the toxins share a binding site. At least two strains of diamondback moth ( Plutella xylostella ) with resistance to Cry1A toxins and reduced binding of Cry1A toxins have strong cross-resistance to Cry1Ja. Thus, we hypothesized that…

Bacterial ToxinsMolecular Sequence DataSpodopteraBinding CompetitiveApplied Microbiology and BiotechnologyMicrobiologyInsecticide ResistanceHemolysin ProteinsBacterial ProteinsBacillus thuringiensisBotanyInvertebrate MicrobiologyAnimalsAmino Acid SequenceBinding siteBinding SitesDiamondback mothBacillus thuringiensis ToxinsEcologybiologyHeliothis virescensfungibiology.organism_classificationEndotoxinsLepidopteraPlutellidaeCry1AcLarvaNoctuidaeFood ScienceBiotechnologyApplied and Environmental Microbiology
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Variation in Susceptibility to Bacillus thuringiensis Toxins among Unselected Strains of Plutella xylostella

2001

ABSTRACT So far, the only insect that has evolved resistance in the field to Bacillus thuringiensis toxins is the diamondback moth ( Plutella xylostella ). Documentation and analysis of resistant strains rely on comparisons with laboratory strains that have not been exposed to B. thuringiensis toxins. Previously published reports show considerable variation among laboratories in responses of unselected laboratory strains to B. thuringiensis toxins. Because different laboratories have used different unselected strains, such variation could be caused by differences in bioassay methods among laboratories, genetic differences among unselected strains, or both. Here we tested three unselected st…

Bacterial ToxinsMothsApplied Microbiology and BiotechnologyMicrobiologyToxicologyInsecticide ResistanceHemolysin ProteinsBacterial ProteinsBacillus thuringiensisInvertebrate MicrobiologyBioassayAnimalsDiamondback mothEcologybiologyBacillus thuringiensis ToxinsStrain (biology)Parasporal bodyfungiPlutellabiology.organism_classificationEndotoxinsBiopesticideCry1AcLarvaBiological AssayFood ScienceBiotechnology
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Interaction of Bacillus thuringiensis Toxins with Larval Midgut Binding Sites of Helicoverpa armigera (Lepidoptera: Noctuidae)

2004

ABSTRACT In 1996, Bt-cotton (cotton expressing a Bacillus thuringiensis toxin gene) expressing the Cry1Ac protein was commercially introduced to control cotton pests. A threat to this first generation of transgenic cotton is the evolution of resistance by the insects. Second-generation Bt-cotton has been developed with either new B. thuringiensis genes or with a combination of cry genes. However, one requirement for the “stacked” gene strategy to work is that the stacked toxins bind to different binding sites. In the present study, the binding of 125 I-labeled Cry1Ab protein ( 125 I-Cry1Ab) and 125 I-Cry1Ac to brush border membrane vesicles (BBMV) of Helicoverpa armigera was analyzed in com…

Bacterial ToxinsPopulationBacillus thuringiensisCarbohydratesDrug ResistanceHelicoverpa armigeraModels BiologicalApplied Microbiology and BiotechnologyMicrobiologyHemolysin Proteinschemistry.chemical_compoundBacterial ProteinsLectinsBacillus thuringiensisInvertebrate MicrobiologyAnimalsBinding siteSoybean agglutininPest Control BiologicaleducationGossypiumeducation.field_of_studyBinding SitesBacillus thuringiensis ToxinsEcologybiologyfungifood and beveragesPlants Genetically Modifiedbiology.organism_classificationSialic acidEndotoxinsLepidopteraKineticsCry1AcchemistryBiochemistryGenes BacterialLarvaNoctuidaeDigestive SystemFood ScienceBiotechnologyApplied and Environmental Microbiology
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High Genetic Variability for Resistance to Bacillus thuringiensis Toxins in a Single Population of Diamondback Moth

2001

ABSTRACT The long-term benefit of insecticidal products based on Cry toxins, either in sprays or as transgenic crops, is threatened by the development of resistance by target pests. The models used to predict evolution of resistance to Cry toxins most often are monogenic models in which two alleles are used. Moreover, the high-dose/refuge strategy recommended for implementation with transgenic crops relies on the assumption that the resistance allele is recessive. Using selection experiments, we demonstrated the occurrence in a laboratory colony of diamondback moth of two different genes (either allelic or nonallelic) that confer resistance to Cry1Ab. At the concentration tested, resistance…

Bacterial ToxinsPopulationBacillus thuringiensisGenes InsectGenetically modified cropsMothsBiologyApplied Microbiology and BiotechnologyInsecticide ResistanceHemolysin ProteinsBacterial ProteinsBacillus thuringiensisGenetic variationBotanyInvertebrate MicrobiologyAnimalsGenetic variabilitySelection GeneticAllelePest Control BiologicaleducationGeneGeneticseducation.field_of_studyDiamondback mothBacillus thuringiensis ToxinsEcologyfungiGenetic Variationbiology.organism_classificationEndotoxinsFood ScienceBiotechnology
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Global variation in the genetic and biochemical basis of diamondback moth resistance to Bacillus thuringiensis

1997

Insecticidal proteins from the soil bacterium Bacillus thuringiensis (Bt) are becoming a cornerstone of ecologically sound pest management. However, if pests quickly adapt, the benefits of environmentally benign Bt toxins in sprays and genetically engineered crops will be short-lived. The diamondback moth ( Plutella xylostella ) is the first insect to evolve resistance to Bt in open-field populations. Here we report that populations from Hawaii and Pennsylvania share a genetic locus at which a recessive mutation associated with reduced toxin binding confers extremely high resistance to four Bt toxins. In contrast, resistance in a population from the Philippines shows multilocus control, a …

Bacterial ToxinsPopulationBacillus thuringiensisGenetically modified cropsMothsGenomic ImprintingHemolysin ProteinsBacterial ProteinsBacillus thuringiensisGenetic variationAnimalsAllelePest Control BiologicaleducationGeneticseducation.field_of_studyMultidisciplinaryDiamondback mothBacillus thuringiensis Toxinsbiologybusiness.industryGenetic Complementation TestfungiPest controlfood and beveragesChromosome MappingGenetic VariationPlutellaBiological Sciencesbiology.organism_classificationEndotoxinsFemalebusinessProtein Binding
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Genetic and Biochemical Approach for Characterization of Resistance to Bacillus thuringiensis Toxin Cry1Ac in a Field Population of the Diamondback M…

2000

ABSTRACT Four subpopulations of a Plutella xylostella (L.) strain from Malaysia (F 4 to F 8 ) were selected with Bacillus thuringiensis subsp. kurstaki HD-1, Bacillus thuringiensis subsp. aizawai , Cry1Ab, and Cry1Ac, respectively, while a fifth subpopulation was left as unselected (UNSEL-MEL). Bioassays at F 9 found that selection with Cry1Ac, Cry1Ab, B. thuringiensis subsp. kurstaki , and B. thuringiensis subsp. aizawai gave resistance ratios of >95, 10, 7, and 3, respectively, compared with UNSEL-MEL (>10,500, 500, >100, and 26, respectively, compared with a susceptible population, ROTH). Resistance to Cry1Ac, Cry1Ab, B. thuringiensis subsp. kurstaki , and B. thuringiensis subsp…

Bacterial ToxinsPopulationBacillus thuringiensisMothsBiologyApplied Microbiology and BiotechnologyMicrobiologyInsecticide ResistanceHemolysin ProteinsBacterial ProteinsBacillus thuringiensisBotanyInvertebrate MicrobiologyAnimalsSelection GeneticPest Control BiologicaleducationCrosses GeneticCross-resistanceGenes Dominanteducation.field_of_studyDiamondback mothBacillus thuringiensis ToxinsEcologyfungiParasporal bodyGenetic VariationPlutellabiology.organism_classificationBacillalesEndotoxinsGenetics PopulationCry1AcDigestive SystemFood ScienceBiotechnologyApplied and Environmental Microbiology
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Biochemical and molecular study of the Bacillus thuringiensis vegetative insecticidal proteins (Vip3A) mode of action in Spodoptera species

2015

Las proteínas insecticidas vegetativas (Vip) constituyen una nueva familia de toxinas producidas durante la fase de crecimiento vegetativo de diferentes cepas de Bacillus y principalmente por Bacillus thuringiensis (Bt). Esta familia de proteínas está representada por 4 miembros: Vip1, Vip2, Vip3 y la recientemente descrita Vip4. Las toxinas binarias Vip1 y Vip2 son activas contra coleópteros y homópteros; las proteínas Vip3 son activas contra lepidópteros, sin embargo, los insectos diana para la proteína Vip4 no se conocen todavía. La determinación del modo de acción de Vip1 y Vip2 fue fácil ya que mostraron una homología de secuencia significativa con las toxinas clostridiales C2 y C3, re…

BioinsecticidaBacillus thuringiensis:CIENCIAS AGRARIAS [UNESCO]UNESCO::CIENCIAS AGRARIAS
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Specific binding  of Bacillus thuringiensis Cry2A insecticidal proteins to a common site in the midgut of Helicoverpa species

2008

ABSTRACT For a long time, it has been assumed that the mode of action of Cry2A toxins was unique and different from that of other three-domain Cry toxins due to their apparent nonspecific and unsaturable binding to an unlimited number of receptors. However, based on the homology of the tertiary structure among three-domain Cry toxins, similar modes of action for all of them are expected. To confirm this hypothesis, binding assays were carried out with 125 I-labeled Cry2Ab. Saturation assays showed that Cry2Ab binds in a specific and saturable manner to brush border membrane vesicles (BBMVs) of Helicoverpa armigera . Homologous-competition assays with 125 I-Cry2Ab demonstrated that this toxi…

BioquímicaBrush borderBiotecnologia agrícolaBacillus thuringiensisMicrobiologiaPlasma protein bindingHelicoverpa armigeraApplied Microbiology and BiotechnologyIodine RadioisotopesHemolysin ProteinsBacterial ProteinsBacillus thuringiensisPlaguicidesInvertebrate MicrobiologyAnimalsBinding siteHelicoverpaBacillus thuringiensis ToxinsStaining and LabelingEcologybiologyfungiMidgutbiology.organism_classificationEndotoxinsGastrointestinal TractLepidopteraKineticsBiochemistryHelicoverpa zeaProteïnesProtein BindingFood ScienceBiotechnology
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Lack of Cry1Fa binding to the midgut brush border membrane in a resistant colony of Plutella xylostella moths with a mutaton in the ABCC2 locus

2012

ABSTRACT Previous studies reported “mode 1” Bacillus thuringiensis resistance in a colony of diamondback moths (NO-QA), and recently, this resistance has been mapped to an ABC transporter ( ABCC2 ) locus. We report the lack of binding of Cry1Fa to insects derived from this colony and compare our data with those from other insects with ABCC2 -associated resistance.

BioquímicaBrush borderBiotecnologia agrícolaDrug ResistanceResistència als plaguicidesLocus (genetics)ATP-binding cassette transporterDrug resistanceApplied Microbiology and BiotechnologyLepidoptera genitaliaHemolysin ProteinsPlagues ControlBacterial ProteinsBacillus thuringiensisInvertebrate MicrobiologyAnimalsGeneticsBacillus thuringiensis ToxinsMicrovilliEcologybiologyfungiPlutellaMidgutbiology.organism_classificationMultidrug Resistance-Associated Protein 2EndotoxinsLepidopteraMutationMultidrug Resistance-Associated ProteinsProtein BindingFood ScienceBiotechnology
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