Search results for "HuR"

showing 10 items of 938 documents

Effect of substitutions of key residues on the stability and the insecticidal activity of Vip3Af from Bacillus thuringiensis

2021

Modern agriculture demands for more sustainable agrochemicals to reduce the environmental and health impact. The whole process of the discovery and development of new active substances or control agents is sorely slow and expensive. Vegetative insecticidal proteins (Vip3) from Bacillus thuringiensis are specific toxins against caterpillars with a potential capacity to broaden the range of target pests. Site-directed mutagenesis is one of the most approaches used to test hypotheses on the role of different amino acids on the structure and function of proteins. To gain a better understanding of the role of key amino acid residues of Vip3A proteins, we have generated 12 mutants of the Vip3Af1 …

0106 biological sciences0301 basic medicineInsecticidesMutantBacillus thuringiensisMothsSpodopteraSpodoptera01 natural sciences03 medical and health sciencesResidue (chemistry)Bacterial ProteinsBacillus thuringiensisAnimalsAmino Acid SequencePest Control BiologicalSite-directed mutagenesisSpodoptera littoralisEcology Evolution Behavior and Systematicschemistry.chemical_classificationbiologyfungiProtein engineeringbiology.organism_classificationAmino acid010602 entomology030104 developmental biologyBiochemistrychemistryMutagenesis Site-DirectedSequence AlignmentJournal of Invertebrate Pathology
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Personality, immune response and reproductive success: an appraisal of the pace-of-life syndrome hypothesis.

2017

11 pages; International audience; The pace-of-life syndrome (POLS) hypothesis is an extended concept of the life-history theory that includes behavioural traits. The studies challenging the POLS hypothesis often focus on the relationships between a single personality trait and a physiological and/or life-history trait. While pathogens represent a major selective pressure, few studies have been interested in testing relationships between behavioural syndrome, and several fitness components including immunity. The aim of this study was to address this question in the mealworm beetle, Tenebrio molitor, a model species in immunity studies. The personality score was estimated from a multidimensi…

0106 biological sciences0301 basic medicineMalemedia_common.quotation_subjectBacillus thuringiensisBiology010603 evolutionary biology01 natural sciencessurvivalDevelopmental psychologybehavioural syndrome03 medical and health sciencesImmune systemlongevityImmunity[ SDV.EE.IEO ] Life Sciences [q-bio]/Ecology environment/SymbiosisPersonalityAnimals[ SDV.IMM ] Life Sciences [q-bio]/ImmunologyTenebrioEcology Evolution Behavior and Systematicsmedia_common[ SDE.BE ] Environmental Sciences/Biodiversity and EcologyInnate immune systemReproductive successReproductionLongevityBehavioural syndromeBiological EvolutionimmunityfitnessColeoptera030104 developmental biologyTrait[SDV.IMM]Life Sciences [q-bio]/ImmunologyAnimal Science and ZoologyFemale[SDE.BE]Environmental Sciences/Biodiversity and EcologyPersonality[SDV.EE.IEO]Life Sciences [q-bio]/Ecology environment/Symbiosis
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Bacillus thuringiensis Vip3Aa Toxin Resistance in Heliothis virescens (Lepidoptera: Noctuidae)

2017

ABSTRACT Laboratory selection with Vip3Aa of a field-derived population of Heliothis virescens produced >2,040-fold resistance in 12 generations of selection. The Vip3Aa-selected (Vip-Sel)-resistant population showed little cross-resistance to Cry1Ab and no cross-resistance to Cry1Ac. Resistance was unstable after 15 generations without exposure to the toxin. F 1 reciprocal crosses between Vip3Aa-unselected (Vip-Unsel) and Vip-Sel insects indicated a strong paternal influence on the inheritance of resistance. Resistance ranged from almost completely recessive (mean degree of dominance [ h ] = 0.04 if the resistant parent was female) to incompletely dominant (mean h = 0.53 if the resistan…

0106 biological sciences0301 basic medicineMultifactorial Inheritancemedia_common.quotation_subjectPopulationInsectBiology01 natural sciencesApplied Microbiology and BiotechnologyInsecticide ResistanceLepidoptera genitaliaHemolysin Proteins03 medical and health sciencesBacterial ProteinsBacillus thuringiensisInvertebrate MicrobiologyAnimalsSelection GeneticeducationCrosses Geneticmedia_commonGeneticseducation.field_of_studyBacillus thuringiensis ToxinsEcologyHeliothis virescensfungibiology.organism_classificationSurvival AnalysisEndotoxinsLepidoptera010602 entomology030104 developmental biologyCry1AcPaternal InheritanceNoctuidaeBiological AssayPEST analysisFood ScienceBiotechnologyApplied and Environmental Microbiology
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Proteomic insights into the immune response of the Colorado potato beetle larvae challenged with Bacillus thuringiensis.

2019

Bacillus thuringiensis (Bt) toxins constitute effective, environmentally safe biopesticides. Nevertheless, insects' tolerance to Bt is influenced by environmental factors affecting immunity. To understand larval immune response in the devastating coleopteran insect pest Colorado potato beetle (CPB), we undertook a proteomic analysis of hemolymph of non-treated control larvae and larvae consuming non-lethal doses of spore-crystal mixtures containing the coleopteran-active Cry3Aa toxin. Results revealed lower amount of proteins involved in insect growth and higher amount of immune response-related proteins in challenged insects, sustaining the larval weight loss observed. Additionally, we fou…

0106 biological sciences0301 basic medicinePore Forming Cytotoxic ProteinsProteomicsmedia_common.quotation_subjectImmunologyAntimicrobial peptidesBacillus thuringiensisInsect01 natural sciencesMicrobiology03 medical and health sciencesHemolysin ProteinsImmune systemBacillus thuringiensisHemolymphAnimalsGram-Positive Bacterial InfectionsSolanaceaemedia_commonLarvabiologyBacillus thuringiensis ToxinsMonophenol MonooxygenasefungiColorado potato beetleImmunitybiology.organism_classificationDietColeopteraEndotoxins010602 entomologyBiopesticideMicroRNAs030104 developmental biologyLarvaInsect ProteinsDevelopmental BiologyDevelopmental and comparative immunology
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Mechanisms of Resistance to Insecticidal Proteins from Bacillus thuringiensis

2021

Insecticidal proteins from the bacterium Bacillus thuringiensis ( Bt) are used in sprayable formulations or produced in transgenic crops as the most successful alternatives to synthetic pesticides. The most relevant threat to sustainability of Bt insecticidal proteins (toxins) is the evolution of resistance in target pests. To date, high-level resistance to Bt sprays has been limited to one species in the field and another in commercial greenhouses. In contrast, there are currently seven lepidopteran and one coleopteran species that have evolved practical resistance to transgenic plants producing insecticidal Bt proteins. In this article, we present a review of the current knowledge on mec…

0106 biological sciences0301 basic medicineResistance (ecology)business.industryfungiGenetically modified cropsPesticideBiologybiology.organism_classification01 natural sciencesBiotechnology010602 entomology03 medical and health sciences030104 developmental biologyInsect ScienceBacillus thuringiensisbusinessEcology Evolution Behavior and SystematicsBacteriaAnnual Review of Entomology
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Susceptibility of Grapholita molesta (Busck, 1916) to formulations of Bacillus thuringiensis, individual toxins and their mixtures.

2016

The Oriental fruit moth, Grapholita molesta (Lepidoptera: Tortricidae), is a major pest of fruit trees worldwide, such as peach and apple. Bacillus thuringiensis has been shown to be an efficient alternative to synthetic insecticides in the control of many agricultural pests. The objective of this study was to evaluate the effectiveness of B. thuringiensis individual toxins and their mixtures for the control of G. molesta. Bioassays were performed with Cry1Aa, Cry1Ac, Cry1Ca, Vip3Aa, Vip3Af and Vip3Ca, as well as with the commercial products DiPel® and XenTari®. The most active proteins were Vip3Aa and Cry1Aa, with LC50 values of 1.8 and 7.5ng/cm2, respectively. Vip3Ca was nontoxic to this …

0106 biological sciences0301 basic medicineTortricidaeInsecticidesMoths01 natural sciencesLepidoptera genitalia03 medical and health sciencesHemolysin ProteinsBacterial ProteinsBacillus thuringiensisBotanyBioassayAnimalsPest Control BiologicalEcology Evolution Behavior and SystematicsbiologyBacillus thuringiensis Toxinsfungibiology.organism_classificationGrapholita molestaEndotoxins010602 entomologyHorticulture030104 developmental biologyCry1AcPEST analysisAntagonismJournal of invertebrate pathology
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Observations on midgut of Apis mellifera workers (Hymenoptera: Apoidea) under controlled acute exposures to a Bacillus thuringiensis-based biopestici…

2016

International audience; AbstractMorphostructural investigations have been carried out on Apis mellifera workers treated with single controlled acute exposures to a biopesticide containing Bacillus thuringiensis (Bt), to detect midgut changes until 96 h. Our findings show concentration-dependence of these changes, reflecting in different degrees on both mortality and behaviour. In particular, some midgut changes are also found 96 h after treatment. Our results show that the tested product does not affect survival at presumable environmental concentrations, so confirming the lesser toxicity of Bt-based biopesticides compared to other pesticides. However, in the light of the discovered long-te…

0106 biological sciences0301 basic medicineVeterinary medicinehoneybees[SDV]Life Sciences [q-bio]HymenopterahoneybeeBiology01 natural sciences03 medical and health sciencesBacillus thuringiensisBotanyBacillus thuringiensis var. aizawai/kurstakiBioassayskin and connective tissue diseasesBacillus thuringiensis var. aizawai /kurstakimorphostructural changesMidgutPesticidebiology.organism_classificationmortalitymorphostructural change3. Good healthApoidea010602 entomologyBiopesticide030104 developmental biologyhoneybees; Bacillus thuringiensis var. aizawai /kurstaki; bioassay; mortality; morphostructural changesbioassayInsect ScienceToxicitysense organs
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Toxicity of five Cry proteins against the insect pest Acanthoscelides obtectus (Coleoptera: Chrisomelidae: Bruchinae).

2019

Abstract The beetle Acanthoscelides obtectus (Say) causes severe post-harvest losses in the common bean (Phaseolus vulgaris). Under laboratory conditions, the susceptibility of A. obtectus to five coleopteran-specific Cry toxic proteins from Bacillus thuringiensis (Cry1Ba, Cry1Ia, Cry3Aa, Cry7Ab, and Cry23/37) was evaluated. After 30 days exposure, Cry proteins demonstrated high activity against A. obtectus adults (100% mortality). Proteins showed statistical differences in toxicity parameters compared to the control treatment, but the parameters were similar among them, and indicated that the final toxic effects can be observed after the 24th day. The toxic effects on A. obtectus larvae we…

0106 biological sciences0301 basic medicineved/biology.organism_classification_rank.speciesBacillus thuringiensisAcanthoscelides obtectus01 natural sciencesInsect ControlInsect pestToxicology03 medical and health sciencesHemolysin ProteinsBacterial ProteinsBacillus thuringiensisAnimalsPest Control BiologicalEcology Evolution Behavior and SystematicsLarvaControl treatmentbiologyBacillus thuringiensis Toxinsved/biologyfood and beveragesBean weevilbiology.organism_classificationColeopteraEndotoxins010602 entomology030104 developmental biologyBiological Control AgentsLarvaToxicityPhaseolusJournal of invertebrate pathology
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Response Mechanisms of Invertebrates to Bacillus thuringiensis and Its Pesticidal Proteins

2021

SUMMARY Extensive use of chemical insecticides adversely affects both environment and human health. One of the most popular biological pest control alternatives is bioinsecticides based on Bacillus thuringiensis. This entomopathogenic bacterium produces different protein types which are toxic to several insect, mite, and nematode species. Currently, insecticidal proteins belonging to the Cry and Vip3 groups are widely used to control insect pests both in formulated sprays and in transgenic crops. However, the benefits of B. thuringiensis-based products are threatened by insect resistance evolution. Numerous studies have highlighted that mutations in genes coding for surrogate receptors are …

0106 biological sciences0303 health sciencesbusiness.industrymedia_common.quotation_subjectfungiBiological pest controlInsectGenetically modified cropsBiologybiology.organism_classification01 natural sciencesMicrobiologyBiotechnology010602 entomology03 medical and health sciencesInfectious DiseasesNematodeBacillus thuringiensisbusinessMolecular BiologyGeneCaenorhabditis elegansBacteria030304 developmental biologymedia_commonMicrobiology and Molecular Biology Reviews
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Assessment of genetically modified maize 4114 for food and feed uses, under Regulation (EC) No 1829/2003 (application EFSA‐GMO‐NL‐2014‐123)

2018

Abstract Maize 4114 was developed through Agrobacterium tumefaciens‐mediated transformation to provide protection against certain lepidopteran and coleopteran pests by expression of the Cry1F, Cry34Ab1 and Cry35Ab1 proteins derived from Bacillus thuringiensis, and tolerance to the herbicidal active ingredient glufosinate‐ammonium by expression of the PAT protein derived from Streptomyces viridochromogenes. The molecular characterisation data did not identify issues requiring assessment for food/feed safety. None of the compositional, agronomic and phenotypic differences identified between maize 4114 and the non‐genetically modified (GM) comparator(s) required further assessment. There were …

0106 biological sciences4114herbicide toleranceAgrobacteriumCry1F[SDV]Life Sciences [q-bio]Veterinary (miscellaneous)Cry34Ab1Context (language use)4114; Cry1F; Cry34Ab1; Cry35Ab1; GMO; herbicide tolerance; insect-resistant; maize (Zea mays); PAT; Regulation (EC) No 1829/2003TP1-1185Plant Science010501 environmental sciences01 natural sciencesMicrobiologyBacillus thuringiensisinsect‐resistantinsect-resistantTX341-641maize (Zea mays)0105 earth and related environmental sciences2. Zero hungerGenetically modified maizeAnimal healthbiologyNutrition. Foods and food supplyGMObusiness.industryChemical technologyCry35Ab1Regulation (EC) No 1829/2003maize (Zea mays)biology.organism_classificationGenetically modified organismBiotechnologyTransformation (genetics)Scientific Opinion13. Climate actionAnimal Science and ZoologyParasitologybusinessCry 1FPATRegulation (EC) No 1829/2003010606 plant biology & botanyFood SciencePotential toxicity
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