Search results for "Drosophila Melanogaster"

showing 10 items of 426 documents

Effects of photoperiodically induced reproductive diapause and cold hardening on the cold tolerance of Drosophila montana

2010

Coping with seasonal and daily variation in environmental conditions requires that organisms are able to adjust their reproduction and stress tolerance according to environmental conditions. Females of Drosophila montana populations have adapted to survive over the dark and cold winters at high latitudes and altitudes by spending this season in photoperiodically controlled reproductive diapause and reproducing only in spring/summer. The present study showed that flies of a northern population of this species are quite tolerant of low temperatures and show high seasonal and short-term plasticity in this trait. Culturing the flies in short day length (nearly all females in reproductive diapau…

MaleLightPhysiologyCold tolerancePhotoperiodPopulationZoologyCold treatmentDiapauseBiologymedicineAnimalsDay lengtheducationDrosophila montanaeducation.field_of_studyEcologyReproductionfungiSeasonalitymedicine.diseaseCold TemperatureDrosophila melanogasterInsect ScienceFemaleCold hardeningJournal of Insect Physiology
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Genetic identification of neurons controlling a sexually dimorphic behaviour

2000

0960-9822 (Print) Journal Article Research Support, Non-U.S. Gov't; In the fruit fly Drosophila melanogaster, locomotor activity is sexually dimorphic: female flies constantly modulate their activity pattern whereas males show a steadier, stereotyped walking pace [1]. Here, we mapped the area of the brain controlling this behavioural dimorphism. Adult male Drosophila expressing a dominant feminising transgene in a small cluster of neurons in the pars intercerebralis exhibited a female-like pattern of locomotor activity. Genetic ablation of these neurons prevented the feminisation of the locomotor activity of transgenic males. The results suggest that this cluster of neurons modulates sex-sp…

MaleMESH: NeuronsCourtshipAnimals Genetically ModifiedSexual Behavior Animal0302 clinical medicineMESH: Saccharomyces cerevisiae ProteinsDrosophila ProteinsNervous System Physiological PhenomenaMESH: AnimalsMESH: Sexual Behavior AnimalDrosophila melanogaster/*physiologymedia_commonNeurons0303 health sciencesFungal proteinSex CharacteristicsbiologyAgricultural and Biological Sciences(all)Nuclear ProteinsAnatomyMESH: Transcription FactorsMotor Activity/*physiologyMESH: Motor ActivityDNA-Binding ProteinsFungal Proteins/geneticsNuclear Proteins/*genetics/physiologyDrosophila melanogasterMESH: Fungal Proteins[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]FemaleDrosophila melanogasterGeneral Agricultural and Biological SciencesLocomotionSex characteristicsMESH: Sex CharacteristicsNervous System PhysiologySaccharomyces cerevisiae ProteinsTransgenemedia_common.quotation_subjectRecombinant Fusion ProteinsRecombinant Fusion Proteins/biosynthesisSexual BehaviorMESH: LocomotionTranscription Factors/geneticsGenetically ModifiedMotor ActivityGeneral Biochemistry Genetics and Molecular BiologyMESH: Drosophila melanogasterFungal ProteinsMESH: Animals Genetically Modified03 medical and health sciencesMESH: Recombinant Fusion ProteinsAnimalsDrosophila030304 developmental biologyBiochemistry Genetics and Molecular Biology(all)Animalfungibiology.organism_classificationMESH: MaleSexual dimorphismMale courtship behaviourMESH: Nervous System PhysiologyNeuroscienceMESH: FemaleMESH: Nuclear ProteinsNeurons/*physiology030217 neurology & neurosurgeryTranscription Factors
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Genes involved in sex pheromone discrimination in Drosophila melanogaster and their background-dependent effect.

2012

International audience; Mate choice is based on the comparison of the sensory quality of potential mating partners, and sex pheromones play an important role in this process. In Drosophila melanogaster, contact pheromones differ between male and female in their content and in their effects on male courtship, both inhibitory and stimulatory. To investigate the genetic basis of sex pheromone discrimination, we experimentally selected males showing either a higher or lower ability to discriminate sex pheromones over 20 generations. This experimental selection was carried out in parallel on two different genetic backgrounds: wild-type and desat1 mutant, in which parental males showed high and l…

MaleMESH: Olfactory Perception[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionMESH : Animals Genetically Modifiedlcsh:MedicineGenes InsectMESH: Genes InsectBreedingMESH : Behavior AnimalMESH: ReproductionCourtshipAnimals Genetically ModifiedSexual Behavior Animal0302 clinical medicineMESH : Drosophila melanogasterMESH: Behavior AnimalMESH : FemaleMESH: AnimalsMatingSex AttractantsMESH: Sexual Behavior Animal10. No inequalitylcsh:Sciencemedia_commonGenetics0303 health sciencesMultidisciplinaryEcologyBehavior AnimalReproductionMESH : Genes InsectAnimal ModelsMESH : ReproductionSensory SystemsDrosophila melanogasterMESH: Sex AttractantsMate choiceSex pheromoneAlimentation et NutritionFemaleDrosophila melanogasterMESH : MutationResearch ArticleMESH: Mutationmedia_common.quotation_subjectMESH : BreedingMESH : MaleMESH: CourtshipContext (language use)MESH: BreedingBiologyMESH: Drosophila melanogasterMESH: Animals Genetically Modified03 medical and health sciencesModel OrganismsSpecies SpecificityMESH : Olfactory PerceptionGeneticsFood and NutritionAnimalsMESH : Species SpecificityMESH: Species SpecificityAlleleMESH : Sexual Behavior AnimalBiology030304 developmental biologyEvolutionary BiologyMESH : Sex AttractantsAnimals;Animals;Genetically Modified;Behavior;Animal;Breeding;Courtship;Drosophila melanogaster;Female;Genes;Insect;Male;Mutation;Olfactory Perception;Reproduction;Sex Attractants;Sexual Behavior;Species SpecificityMESH : Courtshiplcsh:RCourtshipbiology.organism_classificationOlfactory PerceptionMESH: MaleMutationSex Attractantslcsh:QMESH : AnimalsMESH: Female[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryNeurosciencePLoS ONE
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Drosophila female courtship and mating behaviors: sensory signals, genes, neural structures and evolution.

2010

International audience; Interest in Drosophila courtship behavior has a long-standing tradition, starting with the works by Sturtevant in 1915, and by Bastock and Manning in the 50s. The neural and genetic base of Drosophila melanogaster courtship behavior has made big strides in recent years, but the studies on males far outnumber those on females. Recent technical developments have made it possible to begin to unravel the biological substrates underlying the complexity of Drosophila female sexual behavior and its decisive effect on mating success. The present review focus more on the female side and summarizes the sensory signals that the male sends, using multiple channels, and which neu…

MaleMESH: Signal Transduction[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionMESH: NeuronsCourtshipSexual Behavior AnimalMESH : Neural PathwaysMESH : Biological EvolutionNeural PathwaysMESH : Drosophila melanogasterDrosophila ProteinsMESH : FemaleMESH: AnimalsMatingMESH: Sexual Behavior Animalmedia_commonNeuronsbiologyGeneral NeuroscienceBiological EvolutionDrosophila melanogasterFemaleDrosophila melanogasterDrosophila ProteinSignal TransductionMESH: Drosophila ProteinsMESH : Malemedia_common.quotation_subjectMESH: CourtshipSensory systemMESH: Biological EvolutionMESH : NeuronsMESH: Drosophila melanogasterBiological neural networkAnimalsDrosophila (subgenus)MESH : Sexual Behavior AnimalMESH : Signal TransductionMESH : CourtshipCourtship displayMESH: Neural PathwaysfungiCourtshipMESH : Drosophila Proteinsbiology.organism_classificationMESH: MaleMESH : AnimalsNeuroscienceMESH: Female[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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Free [NADH]/[NAD+] regulates sirtuin expression

2011

Sirtuins are deacetylases involved in metabolic regulation and longevity. Our aim was to test the hypothesis that they are subjected to redox regulation by the [NADH]/[NAD(+)] ratio. We used NIH3T3 fibroblasts in culture, Drosophila fed with or without ethanol and exercising rats. In all three models an increase in [NADH]/[NAD(+)] came up with an increased expression of sirtuin mRNA and protein. PGC-1α (a substrate of sirtuins) protein level was significantly increased in fibroblasts incubated with lactate and pyruvate but this effect was lost in fibroblasts obtained from sirtuin-deficient mice. We conclude that the expression of sirtuins is subject to tight redox regulation by the [NADH]/[…

MaleMetaboliteBiophysicsBiochemistryMicechemistry.chemical_compoundPhysical Conditioning AnimalPyruvic AcidAnimalsSirtuinsLactic AcidRNA MessengerRats WistarEthanol metabolismMolecular BiologyCells CulturedGlyceraldehyde 3-phosphate dehydrogenaseRegulation of gene expressionMessenger RNAEthanolbiologyFibroblastsNADPeroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alphaRatsCell biologyDrosophila melanogasterGlycerol-3-phosphate dehydrogenaseGene Expression RegulationchemistryBiochemistrySirtuinNIH 3T3 CellsTrans-Activatorsbiology.proteinNAD+ kinaseOxidation-ReductionTranscription FactorsArchives of Biochemistry and Biophysics
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Cytochrome P450-dependent metabolism of caffeine in [i]Drosophila melanogaster[/i]

2014

Caffeine (1, 3, 7-trimethylxanthine), an alkaloid produced by plants, has antioxidant and insecticide properties that can affect metabolism and cognition. In vertebrates, the metabolites derived from caffeine have been identified, and their functions have been characterized. However, the metabolites of caffeine in insects remain unknown. Thus, using radiolabelled caffeine, we have identified some of the primary caffeine metabolites produced in the body of Drosophila melanogaster males, including theobromine, paraxanthine and theophylline. In contrast to mammals, theobromine was the predominant metabolite (paraxanthine in humans; theophylline in monkeys; 1, 3, 7-trimethyluric acid in rodents…

MaleMetabolite[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritionlcsh:MedicineéthanolPharmacology[ SDV.BA ] Life Sciences [q-bio]/Animal biologychemistry.chemical_compound0302 clinical medicineCytochrome P-450 Enzyme Systemmétabolitelcsh:SciencemetabolitesParaxanthinecaféinecaffeineAnimal biology0303 health sciencesMultidisciplinarybiologyAlkaloid[SDV.BA]Life Sciences [q-bio]/Animal biologymétabolisme des xénobiotiquesxenobiotic metabolism3. Good healthBiochemistryAlimentation et Nutritioncaffeine;xenobiotic metabolism;drug metabolism;metabolites;drosophila melanogaster;theobromine;ethanolCaffeinemedicine.drugResearch Articledrosophila melanogasterXenobioticsmétabolisme enzymatique03 medical and health sciencesBiologie animalemedicineAnimalsFood and NutritionTheophyllineGene SilencingTheobromine030304 developmental biologytheobrominelcsh:RfungiCytochrome P450drug metabolismchemistrybiology.proteinlcsh:Qethanol[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryDrug metabolism
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TBC1D24-TLDc-related epilepsy exercise-induced dystonia: rescue by antioxidants in a disease model

2019

Genetic mutations in TBC1D24 have been associated with multiple phenotypes, with epilepsy being the main clinical manifestation. The TBC1D24 protein consists of the unique association of a Tre2/Bub2/Cdc16 (TBC) domain and a TBC/lysin motif domain/catalytic (TLDc) domain. More than 50 missense and loss-of-function mutations have been described and are spread over the entire protein. Through whole genome/exome sequencing we identified compound heterozygous mutations, R360H and G501R, within the TLDc domain, in an index family with a Rolandic epilepsy exercise-induced dystonia phenotype (http://omim.org/entry/608105). A 20-year long clinical follow-up revealed that epilepsy was self-limited in…

MaleModels Molecular0301 basic medicineProtein ConformationAmino Acid Motifsalpha-TocopherolMutantCrystallography X-RayPHENOTYPECompound heterozygosityAntioxidantsAnimals Genetically ModifiedEpilepsy0302 clinical medicineCatalytic DomainDrosophila ProteinsMissense mutationoxidative stressChildTLDC DOMAINVITAMIN-EExome sequencingSequence DeletionNeuronsDystoniaGeneticsexercise-induced dystoniaTBC1D24GTPase-Activating ProteinsANNOTATIONSEpilepsy RolandicPhenotypeRecombinant ProteinsPedigree3. Good healthRolandic epilepsyDystoniaDrosophila melanogasterChild PreschoolFemaleSettore MED/26 - NeurologiaSynaptic VesiclesDrosophila melanogasterPROTEIN STABILITYLife Sciences & BiomedicineLocomotionAdolescentPhysical ExertionMutation MissenseClinical NeurologyPREDICTIONSBiology03 medical and health sciencesmedicineAnimalsHumansAmino Acid SequenceCOMPARTMENToxidative streScience & TechnologySequence Homology Amino AcidMUTATIONSNeurosciencesInfantBiological TransportDEGRADATIONmedicine.diseasebiology.organism_classificationAcetylcysteineDisease Models AnimalOxidative Stress030104 developmental biologyrab GTP-Binding ProteinsSEIZURESNeurosciences & NeurologyNeurology (clinical)Reactive Oxygen SpeciesSequence Alignment030217 neurology & neurosurgery
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Inhibition of autophagy rescues muscle atrophy in a LGMDD2 Drosophila model

2021

Limb-girdle muscular dystrophy D2 (LGMDD2) is an ultrarare autosomal dominant myopathy caused by mutation of the normal stop codon of the TNPO3 nuclear importin. The mutant protein carries a 15 amino acid C-terminal extension associated with pathogenicity. Here we report the first animal model of the disease by expressing the human mutant TNPO3 gene in Drosophila musculature or motor neurons and concomitantly silencing the endogenous expression of the fly protein ortholog. A similar genotype expressing wildtype TNPO3 served as a control. Phenotypes characterization revealed that mutant TNPO3 expression targeted at muscles or motor neurons caused LGMDD2-like phenotypes such as muscle degener…

MaleMutantBiochemistryAnimals Genetically ModifiedMutant proteinAutophagyGeneticsmedicineAnimalsHumansGene silencingMuscular dystrophyMyopathyMolecular BiologyMotor NeuronsbiologyMusclesAutophagyChloroquinebeta Karyopherinsmedicine.diseasebiology.organism_classificationMuscle atrophyCell biologySurvival RateDisease Models AnimalMuscular AtrophyDrosophila melanogasterPhenotypeMuscular Dystrophies Limb-GirdleInsect HormonesFemalemedicine.symptomDrosophila melanogasterLocomotionBiotechnologyThe FASEB Journal
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Mild mutations in the pan neural gene prospero affect male-specific behaviour in Drosophila melanogaster

2004

0376-6357 (Print) Journal Article Research Support, Non-U.S. Gov't; The fruitfly Drosophila melanogaster is one of the most appropriate model organisms to study the genetics of behaviour. Here, we focus on prospero (pros), a key gene for the development of the nervous system which specifies multiple aspects from the early formation of the embryonic central nervous system to the formation of larval and adult sensory organs. We studied the effects on locomotion, courtship and mating behaviour of three mild pros mutations. These newly isolated pros mutations were induced after the incomplete excision of a transposable genomic element that, before excision, caused a lethal phenotype during larv…

MaleMutantPoint Mutation/*geneticsSexual Behavior AnimalBehavioral NeuroscienceAnimal/*physiologyDrosophila ProteinsGeneticsBehavior AnimalbiologyReproductionHomozygoteNuclear ProteinsGeneral MedicinePhenotypeNerve Tissue Proteins/*geneticshumanitiesDNA Transposable Elements/geneticsDrosophila melanogasterLocomotion/physiologyFemaleDrosophila melanogasterLocomotionHeterozygoteFertility/physiologySexual BehavioreducationNerve Tissue ProteinsTranscription Factors/*geneticsAnimal/physiologyDrosophilidaeNuclear Proteins/*geneticsPoint MutationAnimalsAlleleGeneDrosophilaReproduction/physiologyAllelesBehaviorfungiDrosophila Proteins/*geneticsHeterozygote advantageRepressor Proteins/*geneticsbiology.organism_classificationRepressor ProteinsFertilityDNA Transposable ElementsAnimal Science and ZoologyTranscription Factors
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Courtship Behavior of Brain Mosaics in Drosophila

2000

0167-7063 (Print) Journal Article Research Support, Non-U.S. Gov't; Sites in the brain that show functional, sexual dimorphism in courtship behavior have been mapped at high resolution in male/female mosaics of Drosophila melanogaster. The sex mosaics were produced by enhancer-trap expression of GAL4 driving the female-spliced form of the transformer gene (tra), revealing sites in the dorsal brain, lateral protocerebrum, suboesophageal, thoracic and abdominal ganglia, and suggesting the importance of cross-talk between these regions in the implementation of the courtship sequence.

MaleNuclear Proteins/analysis/*geneticsProtocerebrumNervous systemDorsumanimal structuresSexual Behaviormedia_common.quotation_subjectGene ExpressionHigh resolutionGenetically ModifiedBiologyNervous SystemAnimals Genetically ModifiedCourtshipSexual Behavior AnimalCellular and Molecular NeuroscienceGeneticsmedicineDrosophila ProteinsAnimalsCluster AnalysisDrosophila melanogaster/*geneticsNervous System/*chemistrymedia_commonBrain ChemistryGeneticsCourtship displayHistocytochemistryMosaicismAnimalfungiNuclear Proteinsbiology.organism_classificationSexual dimorphismDrosophila melanogastermedicine.anatomical_structureEvolutionary biologyGangliaFemaleDrosophila melanogasterGanglia/chemistryJournal of Neurogenetics
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