0000000000067494

AUTHOR

Yael Grosjean

showing 18 related works from this author

7-ketocholesterol and 7β-hydroxycholesterol: in vitro and animal models used to characterize their activities and to identify molecules preventing th…

2020

International audience; Oxysterols are molecules derived by the oxidation of cholesterol and can be formed either by auto-oxidation, enzymatically or by both processes. Among the oxysterols formed by auto-oxidation, 7-ketocholesterol and 7beta-hydroxycholesterol are the main forms generated. These oxysterols, formed endogenously and brought in large quantities by certain foods, have major cytotoxic properties. They are powerful inducers of oxidative stress, inducing dysfunction of organelles (mitochondria, lysosomes and peroxisomes) that can cause cell death. These molecules are often identified in increased amounts in common pathological states such as cardiovascular diseases, certain eye …

0301 basic medicine[SDV]Life Sciences [q-bio]CellmicrofluidicMitochondrionPharmacologiemedicine.disease_causeBiochemistry0302 clinical medicineanimal modèleKetocholesterolsComputingMilieux_MISCELLANEOUSCells CulturedsignalingpathwaysCell DeathChemistry7β-hydroxycholesterolNeurodegenerative DiseasesPeroxisomeanimal models3. Good healthmedicine.anatomical_structureBiochemistryCardiovascular Diseases030220 oncology & carcinogenesisToxicity[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]modèle cellulaireSignal transductionProgrammed cell deathCataractCell Line03 medical and health sciencesPharmaceutical sciencesCell Line TumormedicineAnimalsHumans[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biologyhydroxycholestérol7-ketocholesterolPharmacologyOrganelles7-ketocholesterol;7β-hydroxycholesterol;cell models;animal models;microfluidic;signalingpathwaysInflammatory Bowel DiseasesIn vitroHydroxycholesterolscell modelsDisease Models Animal030104 developmental biologyvoie de signalisationSciences pharmaceutiques[SDV.AEN]Life Sciences [q-bio]/Food and NutritionOxidative stress
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Use of two odorants to control bactrocera oleae and ceratitis capitata

2020

International audience; Many insects are considered as pests because of the damage they cause to cultures. Growers and our society are waiting for environmentally safe strategies to prevent insect damages, without arming the environment and the biodiversity. Recently we discovered an innovative solution using some odorant molecules to control Drosophila suzukii behavior. Using this knowledge we started to investigate the possibility to apply this strategy to Bactrocera oleae (olive fruit fly) and Ceratitis capitata (Mediterranean fruit fly) to modify their social behavior. This new technology, which is protected by the patent n° EP19306102, could be particularly interesting to avoid infesta…

[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionbehavior[SDV.NEU.NB]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiologypest insectfungi[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiologyfatty acid[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionolfaction
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Human R1441C LRRK2 regulates the synaptic vesicle proteome and phosphoproteome in a Drosophila model of Parkinson's disease

2016

International audience; Mutations in leucine-rich repeat kinase 2 (LRRK2) cause late-onset, autosomal dominant familial Parkinsons disease (PD) and variation at the LRRK2 locus contributes to the risk for idiopathic PD. LRRK2 can function as a protein kinase and mutations lead to increased kinase activity. To elucidate the pathophysiological mechanism of the R1441C mutation in the GTPase domain of LRRK2, we expressed human wild-type or R1441C LRRK2 in dopaminergic neurons of Drosophila and observe reduced locomotor activity, impaired survival and an age-dependent degeneration of dopaminergic neurons thereby creating a new PD-like model. To explore the function of LRRK2 variants in vivo, we …

0301 basic medicineProteomerab3 GTP-Binding Proteinsalpha-synucleindomainSyntaxin 1Interactomedopaminergic-neuronsAnimals Genetically Modifiedchemistry.chemical_compound0302 clinical medicinemicrotubule stabilityDrosophila ProteinsProtein Interaction MapsGenetics (clinical)LRRK2 GeneKinasephosphorylationBrainParkinson DiseaseArticlesGeneral Medicineautosomal-dominant parkinsonismLRRK2Drosophila melanogasterSynaptotagmin IProteomePhosphorylationSynaptic VesiclesNerve Tissue ProteinsBiologyLeucine-Rich Repeat Serine-Threonine Protein Kinase-203 medical and health sciencesGeneticsAnimalsHumansKinase activitygeneMolecular BiologyAlpha-synucleingtp-bindingDopaminergic Neuronsrepeat kinase 2Molecular biologyPhosphoric Monoester Hydrolasesnervous system diseasesDisease Models Animal030104 developmental biologyGene Expression Regulationchemistrymutation030217 neurology & neurosurgery[SDV.MHEP]Life Sciences [q-bio]/Human health and pathology
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Testing <em>Drosophila</em> Olfaction with a Y-maze Assay

2014

Detecting signals from the environment is essential for animals to ensure their survival. To this aim, they use environmental cues such as vision, mechanoreception, hearing, and chemoperception through taste, via direct contact or through olfaction, which represents the response to a volatile molecule acting at longer range. Volatile chemical molecules are very important signals for most animals in the detection of danger, a source of food, or to communicate between individuals. Drosophila melanogaster is one of the most common biological models for scientists to explore the cellular and molecular basis of olfaction. In order to highlight olfactory abilities of this small insect, we describ…

ChemoperceptionGeneral Immunology and MicrobiologybiologyGeneral Chemical EngineeringGeneral NeuroscienceMaze learningOlfactionDrosophila melanogasterbiology.organism_classificationDrosophilaSensory cueNeuroscienceGeneral Biochemistry Genetics and Molecular BiologyJournal of Visualized Experiments
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Direct Sensing of Nutrients via a LAT1-like Transporter in Drosophila Insulin-Producing Cells

2016

Summary Dietary leucine has been suspected to play an important role in insulin release, a hormone that controls satiety and metabolism. The mechanism by which insulin-producing cells (IPCs) sense leucine and regulate insulin secretion is still poorly understood. In Drosophila, insulin-like peptides (DILP2 and DILP5) are produced by brain IPCs and are released in the hemolymph after leucine ingestion. Using Ca2+-imaging and ex vivo cultured larval brains, we demonstrate that IPCs can directly sense extracellular leucine levels via minidiscs (MND), a leucine transporter. MND knockdown in IPCs abolished leucine-dependent changes, including loss of DILP2 and DILP5 in IPC bodies, consistent wit…

0301 basic medicineAmino Acid Transport Systemsheavy-chainmedicine.medical_treatmentInsulinsamino acid transporter0302 clinical medicinegenetics [Drosophila Proteins]cytology [Drosophila melanogaster]Glutamate DehydrogenaseHemolymphInsulin-Secreting Cellsmetabolism [Drosophila melanogaster]HemolymphDrosophila;Drosophila insulin-like peptides;amino acid transporter;food;glutamate dehydrogenase;glycemia;growth;insulin-producing cells;minidiscs;starvationDrosophila ProteinsProtein Isoformsmetabolism [Calcium]genetics [Insulins]genetics [Amino Acid Transport Systems]lcsh:QH301-705.5minidiscsGene knockdowncytology [Larva]pancreatic beta-cellglutamate dehydrogenaseBrainmetabolism [Hemolymph]secretionDrosophila melanogasterBiochemistryLarvaAlimentation et NutritionDrosophilaLeucineSignal Transductionglucose-transportgenetics [Glutamate Dehydrogenase]genetics [Protein Isoforms]growthamino-acidsmetabolism [Drosophila Proteins][SDV.BC]Life Sciences [q-bio]/Cellular BiologyNutrient sensingmetabolism [Larva]Biologyinsulin-producing cellsArticleGeneral Biochemistry Genetics and Molecular Biologymetabolism [Amino Acid Transport Systems]metabolism [Insulins]03 medical and health sciencesLeucineparasitic diseasesmedicineFood and NutritionAnimalsddc:610cytology [Insulin-Secreting Cells]cardiovascular diseasesAmino acid transporterMnd protein Drosophilaadministration & dosage [Leucine]metabolism [Protein Isoforms]Ilp5 protein Drosophilacytology [Brain]foodGlutamate dehydrogenaseInsulinNeurosciencesstarvationGlucose transportermetabolism [Insulin-Secreting Cells]glutamate-dehydrogenasel-leucineglycemia030104 developmental biologyGene Expression Regulationlcsh:Biology (General)metabolism [Brain]metabolism [Glutamate Dehydrogenase]Neurons and Cognitionmetabolism [Leucine]CalciumDrosophila insulin-like peptidesmetabolismfat-cells030217 neurology & neurosurgeryCell Reports
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Acides aminés : système nerveux olfactif et alimentation

2019

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.NEU.NB]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUS
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Fatty Acid Smell, Anesthesia, and Use on Fruit Crops

2023

Odors convey important information to select a sex partner, to find a food source, or to detect a danger. Among those some volatile molecules have been shown to cause a reversible anesthesia. However, their mode of action appears still largely mysterious. Here we describe a novel property of Olfactory Receptor 47b (OR47b), on olfactory sensory neurons (OSNs) expressing male-specific transcription factor FruM. We found some interesting properties of a fatty acid that can be present on food sources and oviposition sites for Drosophilid species. We show that OR47b neurons projecting to VA1v glomerulus are sensitive to this odor, and that this influences Drosophila behavior causing a strong ave…

[SDV.AEN] Life Sciences [q-bio]/Food and NutritionDrosophila melanogaster[SDV.BA] Life Sciences [q-bio]/Animal biologyVolatile Fatty AcidDrosophila suzukiiAnesthesia[SDV.GEN] Life Sciences [q-bio]/GeneticsOlfactionFruit ProtectionCalcium Imaging
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Spatio-temporal expression of Prospero is finely tuned to allow the correct development and function of the nervous system in Drosophila melanogaster.

2007

0012-1606 (Print) Comparative Study Journal Article Research Support, Non-U.S. Gov't; Adaptive animal behaviors depend upon the precise development of the nervous system that underlies them. In Drosophila melanogaster, the pan-neural prospero gene (pros), is involved in various aspects of neurogenesis including cell cycle control, axonal outgrowth, neuronal and glial cell differentiation. As these results have been generally obtained with null pros mutants inducing embryonic lethality, the role of pros during later development remains poorly known. Using several pros-Voila (prosV) alleles, that induce multiple developmental and behavioral anomalies in the larva and in adult, we explored the…

Nervous systemDrosophila melanogaster/*embryologyTranscription Factors/genetics/*metabolismNervous SystemPolymerase Chain Reaction0302 clinical medicineMessenger/*metabolismAntenno-maxillary complexNervous System/*embryologyDrosophila ProteinsProtein IsoformsRegulation of gene expressionGenetics0303 health sciencesbiologyProtein Isoforms/genetics/metabolismNeurogenesisGene Expression Regulation DevelopmentalNuclear ProteinsDrosophila Proteins/genetics/*metabolismPhenotypehumanitiesmedicine.anatomical_structureDrosophila melanogasterPhenotypeDrosophilaDrosophila melanogastereducationContext (language use)ProsperoNerve Tissue ProteinsNerve Tissue Proteins/genetics/*metabolism03 medical and health sciencesNuclear Proteins/genetics/*metabolismmedicineIn Situ Nick-End LabelingAnimalsRNA MessengerMolecular Biology030304 developmental biologyDNA PrimersDevelopmental/*physiologyProsperoCell Biologybiology.organism_classificationGlial cell differentiationMitotic activityGlial cellGene Expression RegulationCentral nervous systemNeuronal cellsRNANeuroscience030217 neurology & neurosurgeryDevelopmental BiologyTranscription FactorsDevelopmental biology
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The Amino Acid Transporter JhI-21 Coevolves with Glutamate Receptors, Impacts NMJ Physiology, and Influences Locomotor Activity in Drosophila Larvae

2015

AbstractChanges in synaptic physiology underlie neuronal network plasticity and behavioral phenomena, which are adjusted during development. The Drosophila larval glutamatergic neuromuscular junction (NMJ) represents a powerful synaptic model to investigate factors impacting these processes. Amino acids such as glutamate have been shown to regulate Drosophila NMJ physiology by modulating the clustering of postsynaptic glutamate receptors and thereby regulating the strength of signal transmission from the motor neuron to the muscle cell. To identify amino acid transporters impacting glutmatergic signal transmission, we used Evolutionary Rate Covariation (ERC), a recently developed bioinforma…

0301 basic medicinejuvenile-hormonemelanogasterAmino Acid Transport Systemsextracellular glutamateprotein-protein interactionsPhysiology[ SDV.BA ] Life Sciences [q-bio]/Animal biologySynaptic Transmissionin-vivo0302 clinical medicinePostsynaptic potentialDrosophila Proteinsgenesglial xctMotor NeuronsAnimal biologyMultidisciplinary[SDV.BA]Life Sciences [q-bio]/Animal biologyGlutamate receptorBiological Evolutiondrosophilemedicine.anatomical_structureReceptors GlutamateLarvaExcitatory postsynaptic potentialDrosophila[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Drosophila ProteinSignal Transductionevolutionary rate covariationNeuromuscular JunctionPresynaptic TerminalsNeurotransmissionBiologyMotor ActivityArticlesynaptic vesicle03 medical and health sciencesGlutamatergicneuromuscular-junctionBiologie animalemedicineAnimalsAmino acid transporterevolutionary rate covariation;protein-protein interactions;juvenile-hormone;neuromuscular-junction;synaptic vesicle;in-vivo;extracellular glutamate;glial xct;melanogaster;genesfungiNeurosciencesExcitatory Postsynaptic PotentialsMotor neuron030104 developmental biology[ SDV.NEU ] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Neurons and CognitionMutation030217 neurology & neurosurgeryScientific Reports
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7-Ketocholesterol effects on survival and growth in Drosophila melanogaster

2021

International audience

[SDV.BA] Life Sciences [q-bio]/Animal biology[SDV.BA]Life Sciences [q-bio]/Animal biology[SDV.NEU.NB]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology[SDV.BC]Life Sciences [q-bio]/Cellular Biology[SDV.BC] Life Sciences [q-bio]/Cellular BiologyComputingMilieux_MISCELLANEOUS
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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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Sex-specific anesthesia via olfactory receptor inhibition in Drosophila

2021

International audience

[SDV.NEU.NB]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/NeurobiologyComputingMilieux_MISCELLANEOUS
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La recherche publique en France en 2019 : Diagnostic et propositions du Comité national

2019

Projet porté par le Comité National du CNRS.; Dans le contexte de la préparation d’une loi de programmation pluriannuelle de la recherche, ce document présente la contribution du Comité national de la recherche scientifique à l’analyse de la situation de la recherche publique en France, de son évolution récente (depuis la loi LRU de 2008) et de ses perspectives, ainsi qu’un ensemble de propositions qui ont été finalisées et ont fait l’objet d’une approbation solennelle lors de la session plénière du Comité national organisée à Paris le 4 juillet 2019.

[SDE] Environmental Sciences[SPI] Engineering Sciences [physics][SDV]Life Sciences [q-bio][MATH] Mathematics [math][INFO] Computer Science [cs][PHYS] Physics [physics][SHS]Humanities and Social Sciences[SDU] Sciences of the Universe [physics][SPI]Engineering Sciences [physics][SCCO]Cognitive science[CHIM] Chemical Sciences[CHIM]Chemical Sciences[NLIN] Nonlinear Sciences [physics][INFO]Computer Science [cs][NLIN]Nonlinear Sciences [physics][MATH]Mathematics [math]ComputingMilieux_MISCELLANEOUS[PHYS]Physics [physics][QFIN]Quantitative Finance [q-fin][SCCO] Cognitive science[QFIN] Quantitative Finance [q-fin][STAT] Statistics [stat][SDV] Life Sciences [q-bio][STAT]Statistics [stat][SDU]Sciences of the Universe [physics][SDE]Environmental Sciences[SHS] Humanities and Social Sciences[SHS.HIST]Humanities and Social Sciences/History
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Role of MINIDISCS, a SLC7A amino-acid transporter, on glutamatergic activity in Drosophila melanogaster mushroom bodies.

2022

[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology
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Exploration of CYP27A1 function in eye cholesterol signaling between glia and neurons in Drosophila.

2022

[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiology
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Biocontrol of drosophila suzukii by two fatty acids

2020

International audience; Olfaction is a crucial sense for insects to detect food, seek partners or escape dangers. Volatile molecules are mainly perceived through insects' antenna. Odors bind to specific olfactory receptors located in sensilla. Olfactory sensory neurons then synapse on corresponding specific glomeruli of the antennal lobe, the primary olfaction center. This olfactory information is processed in higher centers to trigger a behavioral response. Understanding how odors can influence insect behavior is fundamental in order to protect cultures from pests. In this work, 2 volatile fatty acids are shown to modify significantly Drosophila suzukii courtship and copulation at increasi…

copulation[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.NEU.NB]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Neurobiologyfungi[SDV.NEU.NB] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/NeurobiologyDrosophila[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionvolatile fatty acidolfaction
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Composition répulsive et utilisations

2021

La présente invention se rapporte à l'utilisation d’au moins un acide gras, avantageusement volatile et odorant, choisi dans le groupe 5 comprenant l’acide propionique, l’acide butyrique et/ou un dérivé de ceux-ci comme principe actif répulsif et/ou pour contrôler la reproduction de brachycères, et à l’utilisation d’une composition, en particulier phytosanitaire, comprenant au moins un acide gras, avantageusement volatile et odorant, choisi dans le groupe comprenant l’acide propionique, 10 l’acide butyrique et/ou un dérivé de ceux-ci comme principe actif répulsif et/ou pour contrôler la reproduction de brachycères avantageusement par olfaction, et non-insecticide. La présente invention trou…

reproduction[SDV.BA] Life Sciences [q-bio]/Animal biologyDrosophila suzukiibiocontrôleinsectes ravageurs de cultureolfaction
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Prospero mutants induce precocious sexual behavior in Drosophila males.

2007

0001-8244 (Print) Journal Article Research Support, Non-U.S. Gov't; Brain maturation, a developmental process influenced by both endogenous and environmental factors, can affect sexual behavior. In vertebrates and invertebrates, sexual maturation is under the influence of hormones and neuromodulators, but the role of developmental genes in this process is still poorly understood. We report that prospero (pros), a gene crucial for nervous system development, can change the age of onset of sexual behavior in Drosophila melanogaster males: adult males carrying a single copy of several pros mutations court females and mate at a younger age than control males. However, these pros mutations had n…

MaleAgingmedia_common.quotation_subjectSexual BehavioreducationNerve Tissue ProteinsTranscription Factors/*geneticsCrossesmedicine.disease_causeCourtship03 medical and health sciencesSexual Behavior Animal0302 clinical medicineGeneticGeneticsmedicineNuclear Proteins/*geneticsAnimal/*physiologySexual maturityAnimalsDrosophila ProteinsMatingHydrocarbons/analysisGenetics (clinical)Ecology Evolution Behavior and SystematicsCrosses Genetic030304 developmental biologymedia_commonGenetics0303 health sciencesMutationbiologyDrosophila Proteins/*geneticsNuclear ProteinsProsperobiology.organism_classificationPhenotypeNerve Tissue Proteins/*geneticshumanitiesHydrocarbonsDrosophila melanogasterPhenotypeMutationFemaleDrosophila melanogasterAge of onset030217 neurology & neurosurgeryDrosophila melanogaster/cytology/*genetics/growth & development/physiologyTranscription FactorsBehavior genetics
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