0000000000953589

AUTHOR

Jean-marie Heydel

showing 61 related works from this author

Validation of a set of reference genes to study response to herbicide stress in grasses

2012

Abstract Background Non-target-site based resistance to herbicides is a major threat to the chemical control of agronomically noxious weeds. This adaptive trait is endowed by differences in the expression of a number of genes in plants that are resistant or sensitive to herbicides. Quantification of the expression of such genes requires normalising qPCR data using reference genes with stable expression in the system studied as internal standards. The aim of this study was to validate reference genes in Alopecurus myosuroides, a grass (Poaceae) weed of economic and agronomic importance with no genomic resources. Results The stability of 11 candidate reference genes was assessed in plants res…

internal standardlcsh:MedicineplantBiologyGeneral Biochemistry Genetics and Molecular BiologyReference genesherbicide resistanceReference genePoaceaelcsh:Science (General)real-time pcrGenelcsh:QH301-705.5Medicine(all)GeneticsVegetal BiologyBiochemistry Genetics and Molecular Biology(all)business.industryNoxious weedplant;herbicide resistance;real-time pcr;internal standardEnvironmental and SocietyAlopecurus myosuroideslcsh:R[ SDV.BV.PEP ] Life Sciences [q-bio]/Vegetal Biology/Phytopathology and phytopharmacyGeneral Medicinebiology.organism_classification[SDV.BV.PEP]Life Sciences [q-bio]/Vegetal Biology/Phytopathology and phytopharmacyBiotechnologylcsh:Biology (General)Environnement et SociétébusinessWeedChemical controlBiologie végétaleResearch Articlelcsh:Q1-390BMC Research Notes
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Oral enzymatic detoxification system: Insights obtained from proteome analysis to understand its potential impact on aroma metabolization

2021

The oral cavity is an entry path into the body, enabling the intake of nutrients but also leading to the ingestion of harmful substances. Thus, saliva and oral tissues contain enzyme systems that enable the early neutralization of xenobiotics as soon as they enter the body. Based on recently published oral proteomic data from several research groups, this review identifies and compiles the primary detoxification enzymes (also known as xenobiotic-metabolizing enzymes) present in saliva and the oral epithelium. The functions and the metabolic activity of these enzymes are presented. Then, the activity of these enzymes in saliva, which is an extracellular fluid, is discussed with regard to the…

ProteomicsSalivaProteomeContext (language use)03 medical and health scienceschemistry.chemical_compound0302 clinical medicineDetoxificationdetoxification enzymesAroma030304 developmental biologychemistry.chemical_classificationMouth0303 health sciencessalivabiologyChemistryfood and beveragesMetabolismbiology.organism_classification3. Good healthstomatognathic diseasesEnzymeBiochemistryaroma030220 oncology & carcinogenesisOdorantsProteomeoral cavityXenobioticmetabolism[SDV.AEN]Life Sciences [q-bio]/Food and NutritionFood Science
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Vitamin A modulates the effects of thyroid hormone on UDP-glucuronosyltransferase expression and activity in rat liver.

2002

We studied the influence of thyroid hormones and vitamin A status on the regulation of UDP-glucuronosyltransferase (UGT) expression and the glucuronidation of thyroid hormones by UGTs. For this, we used an original model of rats fed with different vitamin A diets and implanted subcutaneously by osmotic minipumps delivering vehicle or thyroid hormones, which permitted the control of plasma thyroid hormone concentrations. The activity and expression of family 1 UGTs are correlated and were significantly modified by both thyroid status and amounts of retinol in the diet. Dietary vitamin A did not perturbe the UGT1A expression in thyroidectomized animals. Thyroid hormones and dietary vitamin A …

Gene isoformVitaminMaleendocrine systemmedicine.medical_specialtyThyroid Hormonesendocrine system diseasesMonosaccharide Transport ProteinsBilirubinGlucuronidationNaphtholsBiologydigestive systemBiochemistryGene Expression Regulation Enzymologicchemistry.chemical_compoundEndocrinologyInternal medicinemedicineAnimalsGlucuronosyltransferaseRats WistarVitamin AMolecular BiologyThyroidRetinolBilirubinDietRatsThyroxinemedicine.anatomical_structureEndocrinologychemistryLiverThyroid hormonesThyroidectomyTriiodothyronineHormoneMolecular and cellular endocrinology
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Induction of cytochrome P450 and/or detoxication enzymes by various extracts or rosemary: description of specific patterns

2001

The ability of rosemary to modulate cytochrome P450 (CYP) and detoxication enzymes in rat liver was evaluated by comparing the effects of dried leaves and leaf extracts with different chemical compositions: essential oil (EO) containing monoterpenes, a dichloromethane extract (DCME) containing phenolic diterpenes and a water-soluble extract (WSE) containing phenolic compounds such as rosmarinic acid and flavonoids. Chemical analyses were done in order to characterize the composition of extracts. Male Wistar rats received the leaves or extracts of rosemary in their diet at 0.5% (w/w) for 2 weeks. The effects of such treatments were evaluated for CYP (1A, 2B, 2E1), glutathione S-transferase (…

Male[SDV]Life Sciences [q-bio]ReductaseToxicologychemistry.chemical_compoundCytosol0302 clinical medicineCytochrome P-450 Enzyme System[SDV.IDA]Life Sciences [q-bio]/Food engineeringCYTOCHROME P 450AnticarcinogenComputingMilieux_MISCELLANEOUSchemistry.chemical_classificationGLUTATHIONE S-TRANSFERASE0303 health sciencesbiologyReverse Transcriptase Polymerase Chain ReactionChemistryRosmarinic acidOrgan SizeGeneral Medicine[SDV.IDA] Life Sciences [q-bio]/Food engineeringSpecific Pathogen-Free Organisms[SDV] Life Sciences [q-bio]LiverBiochemistryEnzyme Induction030220 oncology & carcinogenesisMicrosomes Liver[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process EngineeringImmunoblottingChemopreventiondigestive system03 medical and health sciencesAnimals[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process EngineeringRNA MessengerRats Wistar030304 developmental biologyLamiaceaePlant ExtractsBody WeightROMARINCytochrome P450GlutathioneUDP-GLUCURONOSYLTRANSFERASENAD(P)H Dehydrogenase (Quinone)RatsEnzymeMicrosomebiology.proteinRATFood Science
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Effects of endocrine disruptors on genes associated with 17 beta-estradiol metabolism and excretion

2008

International audience; In order to provide a global analysis of the effects of endocrine disruptors on the hormone cellular bioavailability, we combined 17 beta-estradiol (E2) cellular flow studies with real-time PCR and Western blot expression measurements of genes involved in the hormone metabolism and excretion. Three endocrine disruptors commonly found in food were chosen for this study, which was conducted in the estrogen receptor (ER) negative hepatoblastoma HepG2 cell line: bisphenol A (BPA), genistein (GEN) and resveratrol (RES). We showed that 24h after a single dose treatment with genistein, resveratrol or bisphenol A, the expression of ATP-binding cassette transporters (the mult…

medicine.medical_specialtyATP-BINDING CASSETTE TRANSPORTERS[SDV]Life Sciences [q-bio]Clinical BiochemistryBlotting WesternEstrogen receptorGenistein010501 environmental sciencesBiologyPharmacologyResveratrol01 natural sciencesBiochemistryCell LineENDOCRINE DISRUPTORS03 medical and health scienceschemistry.chemical_compoundEndocrinologyInternal medicineUDP-GLUCURONOSYLTRANFERASEmedicineHumansHormone metabolismRNA MessengerMolecular Biology030304 developmental biology0105 earth and related environmental sciencesDNA PrimersPharmacology0303 health sciencesBase SequenceEstradiolReverse Transcriptase Polymerase Chain ReactionMultidrug resistance-associated protein 2Organic ChemistrySULFOTRANSFERASEEndocrinologyEndocrine disruptorchemistryGene Expression Regulation13. Climate actionESTRADIOL METABOLISMMultidrug Resistance-Associated Proteinshormones hormone substitutes and hormone antagonistsHormone
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Odorant metabolizing enzymes in the peripheral olfactory process

2016

Odorant metabolizing enzymes in the peripheral olfactory process

0301 basic medicineMetabolizing enzymesanatomyChemistry[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritionmusculoskeletal neural and ocular physiologymammalOlfactionolfactoryCell biologyPeripheral03 medical and health sciences[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition030104 developmental biology0302 clinical medicinemedicine.anatomical_structurecortexmedicineepitheliumOlfactory epitheliumProcess (anatomy)[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgerypsychological phenomena and processes
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Effect of retinoids on UDP-glucuronosyltransferase 2B7 mRNA expression in Caco-2 cells.

2008

Human UDP-glucuronosyltransferase 2B7 (UGT2B7) is one of the major isoforms involved in the glucuronidation of endogenous compounds and xenobiotics. This isoform is the only human UGT shown to glucuronidate retinoids and their oxidized derivatives. In this study, the effects of all-trans retinoic acid (atRA), 9-cis RA, and the RAR agonist TTNPB, on UGT2B7 and UGT2B15 mRNA expression in Caco-2 cells have been examined. Each of these retinoids significantly suppressed UGT2B7 mRNA expression in a concentration-dependent manner with IC50 values of 3.5, 0.3, and 0.2 microM, respectively. However, no inhibition was observed when two other UGTs, UGT2B15 or -1A6, were exposed to atRA, 9-cis RA, or …

Gene isoformGlucuronosyltransferasemedicine.drug_classCell SurvivalGlucuronidationRetinoic acidPharmaceutical ScienceDown-RegulationTretinoinBenzoatesArticle03 medical and health scienceschemistry.chemical_compoundRetinoids0302 clinical medicineTretinoinmedicineHumansPharmacology (medical)RetinoidRNA MessengerGlucuronosyltransferaseAlitretinoinCells Cultured030304 developmental biologyPharmacology0303 health sciencesbiologyBiological activityUGT2B7Biochemistrychemistry030220 oncology & carcinogenesisbiology.proteinCaco-2 Cellsmedicine.drugDrug metabolism and pharmacokinetics
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Rat olfactory bulb and epithelium UDP-glucuronosyltransferase 2A1 (UGT2A1) expression: in situ mRNA localization and quantitative analysis.

2001

UDP-glucuronosyltransferases (UGTs) form a multigenic family of enzymes involved in the biotransformation and elimination of numerous endo- and xenobiotic compounds. Beside the diverse UGT isoforms present in the liver as well as in other tissues, the UGT2A1 isoform, also called olfactory UGT, was initially thought to be expressed in the nasal epithelium only. In this work, we demonstrate the UGT2A1 mRNA expression in the olfactory bulb, using in situ hybridization and quantitative reverse transcription-polymerase chain reaction (RT-PCR) techniques. Within the epithelium, UGT2A1 mRNA is mainly found in the sustentacular cells and to a lesser extent in Bowman's gland cells. Moreover, in situ…

Olfactory systemMaleCentral nervous systemNerve Tissue ProteinsIn situ hybridizationBiologyCellular and Molecular NeuroscienceMiceRapid amplification of cDNA endsOlfactory MucosaGene expressionmedicineAnimalsNeurons AfferentRNA MessengerGlucuronosyltransferaseRats WistarMolecular BiologyIn Situ HybridizationAir PollutantsMice Inbred BALB CSequence Homology Amino AcidReverse Transcriptase Polymerase Chain ReactionEpithelial CellsMolecular biologyOlfactory BulbEpitheliumOlfactory bulbRatsIsoenzymesmedicine.anatomical_structureInactivation MetabolicOlfactory epitheliumBrain research. Molecular brain research
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Effects of typical inducers on olfactory xenobiotic-metabolizing enzyme, transporter, and transcription factor expression in rats.

2010

International audience; Several xenobiotic-metabolizing enzymes (XMEs) have been identified in the olfactory mucosa (OM) of mammals. However, the molecular mechanisms underlying the regulation of these enzymes have been little explored. In particular, information on the expression of the transcriptional factors in this tissue is quite limited. The aim of the present study was to examine the impact of five typical inducers, Aroclor 1254, 3-methylcholanthrene, dexamethasone, phenobarbital, and ethoxyquin, on the activities and mRNA expression of several XMEs in the OM and in the liver of rats. We also evaluated the effects of these treatments on the mRNA expression of transcription factors an…

MaleLIVERMESH : Transcription FactorsMESH: Microsomes Liver[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionPharmaceutical ScienceMESH : CytochromesMESH: Down-RegulationMESH: Membrane Transport ProteinsMESH : Down-RegulationCytosol0302 clinical medicineGlucocorticoid receptorMESH : Membrane Transport ProteinsMESH: CytosolMESH: Reverse Transcriptase Polymerase Chain ReactionGene expressionConstitutive androstane receptorMESH: Up-RegulationMESH: AnimalsReceptorMESH : Up-RegulationMESH: Cytochromes0303 health sciencesPregnane X receptorMESH : Metabolic Detoxication Phase IbiologyReverse Transcriptase Polymerase Chain ReactionMESH : RatsMESH : CytosolINDUCTIONMESH : Reverse Transcriptase Polymerase Chain ReactionMESH: Transcription FactorsUp-Regulation3. Good healthMESH : Microsomes LiverHYDROCARBON HYDROXYLASE-ACTIVITYmedicine.anatomical_structurePHASE-IBiochemistryMESH: Metabolic Detoxication Phase IIEnzyme InductionMicrosomes LiverMESH: Metabolic Detoxication Phase IMESH: XenobioticsMESH: Enzyme InductionMESH: RatsMESH : MaleDown-RegulationMESH : XenobioticsPHENOL SULFOTRANSFERASEMESH : Rats WistarXenobiotics03 medical and health sciencesOlfactory mucosaOlfactory MucosamedicineAnimalsRats WistarMESH: Olfactory MucosaTranscription factor030304 developmental biologyPharmacologyMESH : Olfactory MucosaIDENTIFICATIONRECEPTORMESH : Enzyme InductionMembrane Transport ProteinsMESH : Metabolic Detoxication Phase IIUDP-GLUCURONOSYLTRANSFERASEMESH: Rats WistarAryl hydrocarbon receptorORGANIC ANION TRANSPORTERMolecular biologyMetabolic Detoxication Phase IIMESH: MaleRatsNASAL-MUCOSAbiology.proteinCytochromesMetabolic Detoxication Phase IMESH : Animals[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryTranscription Factors
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A self-inducible heterologous protein expression system in Escherichia coli

2016

AbstractEscherichia coli is an important experimental, medical and industrial cell factory for recombinant protein production. The inducible lac promoter is one of the most commonly used promoters for heterologous protein expression in E. coli. Isopropyl-β-D-thiogalactoside (IPTG) is currently the most efficient molecular inducer for regulating this promoter’s transcriptional activity. However, limitations have been observed in large-scale and microplate production, including toxicity, cost and culture monitoring. Here, we report the novel SILEX (Self-InducibLe Expression) system, which is a convenient, cost-effective alternative that does not require cell density monitoring or IPTG inducti…

0106 biological sciences0301 basic medicineExpression systemslac operonHeterologousGene ExpressionmechanismLac repressorBiology[ SDV.MP.BAC ] Life Sciences [q-bio]/Microbiology and Parasitology/Bacteriologymedicine.disease_cause01 natural sciencesArticlelaw.inventionApplied microbiologylactose03 medical and health scienceslawlac repressor010608 biotechnologyt1r3 taste receptor[SDV.BBM.GTP]Life Sciences [q-bio]/Biochemistry Molecular Biology/Genomics [q-bio.GN]Gene expressionmedicineEscherichia coliFood and NutritionInducerstationary-phaserecombinant geneinducerEscherichia coliMultidisciplinaryhsp70PromoterMolecular biology[SDV.MP.BAC]Life Sciences [q-bio]/Microbiology and Parasitology/BacteriologyRecombinant Proteins030104 developmental biologycloned genesBiochemistry[ SDV.BBM.GTP ] Life Sciences [q-bio]/Biochemistry Molecular Biology/Genomics [q-bio.GN]Alimentation et NutritionRecombinant DNA[SDV.BBM.GTP] Life Sciences [q-bio]/Biochemistry Molecular Biology/Genomics [q-bio.GN]bacteriophage-t7 rna-polymerase[SDV.MP.BAC] Life Sciences [q-bio]/Microbiology and Parasitology/Bacteriology
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Odorant metabolism in olfactory mucus: characterization and impact on olfactory perception

2018

[SDV] Life Sciences [q-bio][SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BA] Life Sciences [q-bio]/Animal biology[SDV.MHEP.PHY] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO][SDV.MHEP.PHY]Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO][SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[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 Nutrition
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Odorant Metabolism Analysis by an Automated Ex Vivo Headspace Gas-Chromatography Method

2015

International audience; In the olfactory epithelium (OE), odorant metabolizing enzymes have the dual function of volatile component detoxification and active clearance of odorants from the perireceptor environment to respectively maintain the integrity of the tissues and the sensitivity of the detection. Although emphasized by recent studies, this enzymatic mechanism is poorly documented in mammals. Thus, olfactory metabolism has been characterized mainly in vitro and for a limited number of odorants. The automated ex vivo headspace gas-chromatography method that was developed here was validated to account for odorant olfactory metabolism. This method easily permits the measurement of the f…

0301 basic medicineodorant metabolizing enzymesPhysiology[SDV]Life Sciences [q-bio][ SDV.BA ] Life Sciences [q-bio]/Animal biologyheadspace gas-chromatographylocalizationAutomationBehavioral Neurosciencerabbit (Oryctolagus cuniculus)rat olfactory mucosaComputingMilieux_MISCELLANEOUSchemistry.chemical_classificationnewborn rabbit[SDV.BA]Life Sciences [q-bio]/Animal biologyperireceptor eventsmammary pheromoneSensory Systemsmedicine.anatomical_structureBiochemistryPheromonepartition-coefficientsRabbitsbiotransformationpsychological phenomena and processesolfactionChromatography GasOlfactionequilibrium03 medical and health sciencesOlfactory mucosaOlfactory MucosaPhysiology (medical)medicineAnimals[CHIM]Chemical Sciences[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyChromatographyMetabolismIn vitro030104 developmental biologyEnzymechemistry13. Climate actionOdorantsolfactory epitheliumacetateepitheliumOlfactory epitheliumEx vivonasal-mucosa
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UDP-glucuronosyltransferases (UGTs) in neuro-olfactory tissues: expression, regulation, and function.

2010

International audience; This work aims to review uridine diphosphate (UDP)-glucuronosyltransferase (UGT) expression and activities along different neuronal structures involved in the common physiological process of olfaction: olfactory epithelium, olfactory bulb, and olfactory cortex. For the first time, using high-throughput in situ hybridization data generated by the Allen Brain Atlas (ABA), we present quantitative analysis of spatial distribution of UGT genes in the mouse brain. The olfactory area is a central nervous system site with the highest expression of UGTs, including UGT isoforms not previously identified in the brain. Since there is evidence of the transfer of xenobiotics to th…

Olfactory systemMESH : RNA Messenger[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionMESH: GlucuronosyltransferaseMESH : Blood-Brain BarrierMESH: Blood-Brain Barrierchemistry.chemical_compound0302 clinical medicineMESH: SmellPharmacology (medical)MESH: AnimalsMESH: Uridine DiphosphateMESH: Nerve Tissue ProteinsGlucuronosyltransferaseGeneral Pharmacology Toxicology and PharmaceuticsMESH : Olfactory BulbMESH : Nerve Tissue Proteins0303 health sciencesMESH: Gene Expression Regulation EnzymologicOlfactory PathwaysOlfactory BulbMESH : OdorsCell biologySmellmedicine.anatomical_structureBlood-Brain BarrierMESH: Olfactory Bulbmedicine.medical_specialtyCentral nervous systemNerve Tissue ProteinsIn situ hybridizationOlfactionBiologydigestive systemGene Expression Regulation EnzymologicOlfactory Receptor NeuronsUridine DiphosphateMESH : Gene Expression Regulation Enzymologic03 medical and health sciencesInternal medicinemedicineAnimalsRNA MessengerMESH : Uridine Diphosphate030304 developmental biologyMESH: RNA MessengerMESH: OdorsMESH : Olfactory PathwaysMESH : GlucuronosyltransferaseMESH: Olfactory Receptor NeuronsOlfactory bulbUridine diphosphateEndocrinologychemistryOdorantsMESH : SmellMESH : Olfactory Receptor NeuronsMESH : AnimalsOlfactory epithelium[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryFunction (biology)MESH: Olfactory Pathways
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CHARACTERIZATION OF MICROSOMAL CYTOCHROME P450-DEPENDENT MONOOXYGENASES IN THE RAT OLFACTORY MUCOSA

2005

Nasal administration of a drug ensures therapeutic action by rapid systemic absorption and/or the entry of some molecules into the brain through different routes. Many recent studies have pointed out the presence of xenobiotic-metabolizing enzymes in rat olfactory mucosa (OM). Nevertheless, very little is known about the precise identity of isoforms of cytochrome P450 (P450)-dependent monooxygenases (P450) and their metabolic function in this tissue. Therefore, we evaluated mRNA expression of 19 P450 isoforms by semiquantitative reverse transcriptase-polymerase chain reaction and measured their microsomal activity toward six model substrates. For purposes of comparison, studies were conduct…

MaleGene isoformPharmaceutical ScienceOlfactionSubstrate SpecificityOlfactory mucosaOlfactory MucosaMicrosomesmedicineAnimalsRNA MessengerEnzyme InhibitorsRats WistarPharmacologychemistry.chemical_classificationbiologyReverse Transcriptase Polymerase Chain ReactionCYP1A2Cytochrome P450MonooxygenaseRatsIsoenzymesKineticsEnzymemedicine.anatomical_structureBiochemistrychemistryMicrosomes Liverbiology.proteinMicrosomeAryl Hydrocarbon HydroxylasesDrug Metabolism and Disposition
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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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Carboxyl nonsteroidal anti-inflammatory drugs are efficiently glucuronidated by microsomes of the human gastrointestinal tract.

2004

Limited studies have been carried out on the biotransformation of carboxyl nonsteroidal anti-inflammatory drugs (NSAIDs) in the liver. However, the role of the intestine in NSAID metabolism has not been investigated. In this report, the contribution of UDP-glucuronosyltransferases (UGTs) in the human gastrointestinal (GI) tract from five donors to the glucuronidation of the NSAIDs, RS-ketoprofen, S-naproxen, RS- and S-etodolac, was investigated. UGT activity and, for some donors, mRNA levels were evaluated. All NSAIDs were glucuronidated throughout the GI tract; however, glucuronidation was low in stomach and duodenum as compared to the remainder of the intestine. RT-PCR analysis demonstrat…

medicine.medical_specialtyBiophysicsGlucuronidationAdministration OralPharmacologydigestive systemBiochemistryGene Expression Regulation EnzymologicFirst pass effectGlucuronidesNaproxenInternal medicineMicrosomesmedicineHumansRNA MessengerGlucuronosyltransferaseMolecular BiologyChromatography High Pressure LiquidGastrointestinal tractChemistryReverse Transcriptase Polymerase Chain ReactionStomachHuman gastrointestinal tractAnti-Inflammatory Agents Non-SteroidalUGT2B7Gastrointestinal Tractmedicine.anatomical_structureEndocrinologyKetoprofenDuodenumMicrosomeEtodolacBiochimica et biophysica acta
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Odorant metabolism catalyzed by olfactory mucosal enzymes influences peripheral olfactory responses in rats.

2013

International audience; A large set of xenobiotic-metabolizing enzymes (XMEs), such as the cytochrome P450 monooxygenases (CYPs), esterases and transferases, are highly expressed in mammalian olfactory mucosa (OM). These enzymes are known to catalyze the biotransformation of exogenous compounds to facilitate elimination. However, the functions of these enzymes in the olfactory epithelium are not clearly understood. In addition to protecting against inhaled toxic compounds, these enzymes could also metabolize odorant molecules, and thus modify their stimulating properties or inactivate them. In the present study, we investigated the in vitro biotransformation of odorant molecules in the rat …

MaleAnatomy and Physiology[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionSensory PhysiologyEnzyme Metabolismlcsh:MedicineQuinolonesBiochemistryCarboxylesterasechemistry.chemical_compoundPentanols0302 clinical medicineCoumarinsEnzyme Inhibitorslcsh:Sciencechemistry.chemical_classification0303 health sciencesMultidisciplinaryEnzyme ClassesEsterasesSensory SystemsEnzymes3. Good healthElectrophysiologyProtein Transportmedicine.anatomical_structureBiochemistryMedicineSensory PerceptionMetabolic PathwaysResearch ArticleIsoamyl acetateBiologyNeurological SystemXenobiotics03 medical and health sciencesOlfactory mucosaOlfactory MucosaTransferasesmedicineAnimalsRats WistarBiology030304 developmental biologyOlfactory Systemlcsh:RGlycosyltransferasesCytochrome P450MonooxygenaseOlfactory PerceptionRatsMetabolismEnzymechemistryOdorantsBiocatalysisbiology.proteinlcsh:Q[SDV.AEN]Life Sciences [q-bio]/Food and NutritionOlfactory epithelium030217 neurology & neurosurgeryDrug metabolismNeuroscience
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When the nose must remain responsive: glutathione conjugation of the mammary pheromone in the newborn rabbit

2014

In insects, xenobiotic-metabolizing enzymes were demonstrated to regulate pheromones inactivation, clearing them from the olfactory periphery and keeping receptors ready for stimulation renewal. Here, we investigate whether similar processes could occur in mammals, focusing on the pheromonal communication between female rabbits and their newborns. Lactating rabbits emit in their milk a volatile aldehyde, 2-methylbut-2-enal, that elicits searching-grasping in neonates; called the mammary pheromone (MP), it is critical for pups which are constrained to find nipples within the 5 min of daily nursing. For newborns, it is thus essential to remain sensitive to this odorant during the whole nursin…

Vomeronasal organPhysiologyIngénierie des alimentsStimulationPheromonesBehavioral Neurosciencechemistry.chemical_compoundnursingnewbornODORANT-BINDING PROTEINS[SDV.IDA]Life Sciences [q-bio]/Food engineeringDinitrochlorobenzenerabbit (Oryctolagus cuniculus)EXPRESSION PATTERNSAcroleinReceptorGlutathione TransferaseGENE-EXPRESSIONglutathione transferases[ SDV.IDA ] Life Sciences [q-bio]/Food engineeringperireceptor eventsLOCALIZATIONmammary pheromoneGlutathioneSensory SystemsSmellmedicine.anatomical_structureOrgan SpecificitySex pheromonePheromoneFemaleRabbitsENZYMESolfactionmedicine.medical_specialtyOlfactionBiologyNoseGene Expression Regulation EnzymologicPhysiology (medical)Internal medicinemedicineFood engineeringAnimalsLactationAldehydesALDEHYDEGlutathioneFeeding BehaviorUDP-GLUCURONOSYLTRANSFERASEglutathione transferases;mammary pheromone;newborn;nursing;olfaction;perireceptor events;rabbit (Oryctolagus cuniculus);xenobiotic-metabolizing enzymes;RAT OLFACTORY EPITHELIUM;ODORANT-BINDING PROTEINS;S-TRANSFERASE;UDP-GLUCURONOSYLTRANSFERASE;EXPRESSION PATTERNS;VOMERONASAL ORGAN;GENE-EXPRESSION;LOCALIZATION;ALDEHYDE;ENZYMESxenobiotic-metabolizing enzymesRAT OLFACTORY EPITHELIUMS-TRANSFERASENasal MucosaEndocrinologychemistryAnimals NewbornOlfactory epitheliumVOMERONASAL ORGAN
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Expression and differential localization of xenobiotic transporters in the rat olfactory neuro-epithelium.

2011

International audience; Transporters, such as multidrug resistance P-glycoproteins (MDR), multidrug resistance-related proteins (MRP) and organic anion transporters (OATs), are involved in xenobiotic metabolism, particularly the cellular uptake or efflux of xenobiotics (and endobiotics) or their metabolites. The olfactory epithelium is exposed to both inhaled xenobiotics and those coming from systemic circulation. This tissue has been described as a pathway for xenobiotics to the brain via olfactory perineural space. Thereby, olfactory transporters and xenobiotic metabolizing enzymes, dedicated to the inactivation and the elimination of xenobiotics, have been involved in the toxicological p…

Male[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionMESH : Multidrug Resistance-Associated Proteinsp glycoproteinATP-binding cassette transporterMESH : HepatocytesReceptors OdorantMESH : P-GlycoproteinMESH: HepatocytesMESH : Lymphatic Vessels0302 clinical medicineMESH : Protein Transportugt2a1MESH: SmellMESH: Receptors OdorantMESH: AnimalsReceptorxenobiotic metabolizingmucosa0303 health sciencesMESH : Gene Expression RegulationMESH : RatsGeneral NeuroscienceMESH : OdorsMESH: Gene Expression RegulationSmellProtein Transportmedicine.anatomical_structureBiochemistryLivertransporterbarrierEffluxMultidrug Resistance-Associated ProteinsMESH: Multidrug Resistance-Associated ProteinsMESH: XenobioticsMESH: Protein TransportMESH: P-GlycoproteinMESH: RatsMESH: Lymphatic VesselsMESH : Maleodorant clearancebrainMESH : XenobioticsxenobioticBiologysystemMESH : Rats WistarOlfactory Receptor NeuronsXenobiotics03 medical and health sciencesbulbOlfactory Mucosamultidrug resistanceMESH : Receptors OdorantmedicineAnimalsATP Binding Cassette Transporter Subfamily B Member 1Rats WistardetoxificationMESH: Olfactory Mucosa030304 developmental biologyLymphatic VesselsMESH : Olfactory MucosaMESH: OdorsMESH : LiverTransporterMESH: Rats WistarMESH: Olfactory Receptor NeuronsEpitheliumMESH: MaleOlfactory bulbRatsenzymeGene Expression RegulationOdorantsHepatocytesMESH : SmellMESH : Olfactory Receptor NeuronsMESH : Animalsolfactory epitheliumOlfactory epitheliumperireceptor event[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryDrug metabolismMESH: Liver
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Oxidative stress and xenobiotic detoxification enzymes in rat astrocytes: Correlations with brain aging

2012

Meeting Abstract; International audience

AgingChemistry[SDV.MHEP.GEG]Life Sciences [q-bio]/Human health and pathology/Geriatry and gerontology[ SDV.TOX ] Life Sciences [q-bio]/ToxicologyCell Biology[ SDV.MHEP.GEG ] Life Sciences [q-bio]/Human health and pathology/Geriatry and gerontologyDetoxification enzymesmedicine.disease_causeBiochemistrychemistry.chemical_compoundEndocrinologyBiochemistry[SDV.TOX]Life Sciences [q-bio]/ToxicologyGeneticsmedicineXenobioticMolecular BiologyBrain agingOxidative stressComputingMilieux_MISCELLANEOUS
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Influence of vitamin A status on the regulation of uridine (5′-)diphosphate-glucuronosyltransferase (UGT) 1A1 and UGT1A6 expression by L-triiodothyro…

2001

The uridine (5′-)diphosphate-glucuronosyltransferases (UGT) are involved in the phase II of various xenobiotics and endogenous compounds. They are responsible for glucuronidation of many substrates, especially including bilirubin (UGT1A1) and phenolic compounds (UGT1A6). We previously showed that the expression of both isoforms is regulated at the transcriptional level by thyroid hormone in rat liver. In this present study, effects of vitamin A dietary intake (0, 1.72, 69 ug retinol acetate/g food) on the regulation of UGT1A1 and UGT1A6 activity and expression by 3,5,3′ triiodo-L-THYRONINE (l-T3) were examined in the same organ. Activities were determined toward bilirubin and 4-nitrophenol.…

MaleUGT1A6Vitaminmedicine.medical_specialtyGlucuronosyltransferaseTriiodothyronine ReverseCellular detoxificationGlucuronidationMedicine (miscellaneous)digestive systemchemistry.chemical_compoundInternal medicinemedicineAnimalsRNA MessengerGlucuronosyltransferaseRats WistarVitamin ANutrition and DieteticsTriiodothyroninebiologyReverse Transcriptase Polymerase Chain ReactionRetinolRatsEndocrinologyGene Expression RegulationLiverchemistryMicrosomes Liverbiology.proteinHormoneBritish Journal of Nutrition
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Effect of oxidative stress on UDP-glucuronosyltransferases in rat astrocytes.

2012

WOS:000309170300003; International audience; The present work reports data regarding effects of an induced oxidative stress on the mainly expressed isoforms of UDP-glucuronosyltransferases (UGTs) in the brain. UGT1A6 and UGT1A7 expression and enzymatic activities toward the 1-naphthol were analyzed in rat cultured astrocytes following the exposure for 48 h to redox-cycling xenobiotic compounds such as quinones and bipyridinium ions. The expression of NADPH:cytochrome P450 reductase and NAD(P)H:quinone oxidoreductase 1 (NQO1) was also investigated. Oxidative stress induced significant deleterious changes in astrocyte morphology, decreased cell viability and inhibited catalytic function of UG…

MESH : Oxidative StressMESH : RNA MessengerAntioxidantTranscription Geneticmedicine.medical_treatmentToxicologyNAD(P)H:quinone oxidoreductase 1MESH: GlucuronosyltransferaseAntioxidantsSubstrate SpecificityRats Sprague-Dawley0302 clinical medicineMESH: NADPH-Ferrihemoprotein ReductaseMESH: GlucuronidesNAD(P)H Dehydrogenase (Quinone)MESH : CatalysisMESH: AnimalsMESH : NAD(P)H Dehydrogenase (Quinone)GlucuronosyltransferaseCells Culturedchemistry.chemical_classificationMESH : Cell Survival0303 health sciencesMESH : Substrate SpecificityMESH : Animals NewbornCytochrome P450 reductaseGeneral MedicineMESH: Cell SurvivalMESH: Pyridinium CompoundsMESH : AntioxidantsMESH: Cells CulturedOxidative phosphorylationGene Expression Regulation EnzymologicMESH : QuinonesMESH : Glucuronides03 medical and health sciencesRNA MessengerCell ShapeNADPH-Ferrihemoprotein ReductaseMESH : Oxidation-ReductionMESH : Pyridinium CompoundsMESH: NaphtholsMESH : GlucuronosyltransferaseMESH: AntioxidantsMESH: CatalysischemistryOxidative stressAstrocytesReactive Oxygen Species030217 neurology & neurosurgeryMESH: Oxidation-ReductionTime Factors[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionMESH : Reactive Oxygen SpeciesNADPH:cytochrome P450 reductasePyridinium CompoundsNaphtholsMESH: Rats Sprague-DawleyProtein oxidationmedicine.disease_causeMESH: Animals NewbornMESH: NAD(P)H Dehydrogenase (Quinone)Protein CarbonylationMESH : OxidantsMESH: OxidantsMelatoninMESH: MelatoninMESH: Oxidative StressMESH : MelatoninMESH : RatsMESH: Gene Expression Regulation EnzymologicQuinonesMESH: Reactive Oxygen SpeciesOxidantsBiochemistryMESH : Protein CarbonylationOxidation-ReductionUDP-glucuronosyltransferaseMESH : Time FactorsMESH: Protein CarbonylationMESH: RatsCell SurvivalMESH : NaphtholsBiologyCatalysisMESH: QuinonesMESH : Gene Expression Regulation EnzymologicGlucuronidesMESH : Cells CulturedmedicineAnimalsMESH: Cell Shape030304 developmental biologyMESH: RNA MessengerReactive oxygen speciesMESH: Transcription GeneticMESH: Time FactorsMESH : AstrocytesMESH : Transcription GeneticNAD(P)H Dehydrogenase (Quinone)MESH : Rats Sprague-DawleyRatsMESH: AstrocytesAnimals NewbornMESH : NADPH-Ferrihemoprotein ReductaseMESH: Substrate SpecificityMESH : AnimalsNAD+ kinaseMESH : Cell Shape[SDV.AEN]Life Sciences [q-bio]/Food and NutritionOxidative stress
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Interactions between odorants and glutathione transferases in the human olfactory cleft

2020

AbstractXenobiotic metabolizing enzymes and other proteins, including odorant-binding proteins located in the nasal epithelium and mucus, participate in a series of processes modulating the concentration of odorants in the environment of olfactory receptors (ORs) and finely impact odor perception. These enzymes and transporters are thought to participate in odorant degradation or transport. Odorant biotransformation results in 1) changes in the odorant quantity up to their clearance and the termination of signaling and 2) the formation of new odorant stimuli (metabolites). Enzymes, such as cytochrome P450 and glutathione transferases (GSTs), have been proposed to participate in odorant clea…

0301 basic medicinePhysiologyOlfaction03 medical and health sciencesBehavioral NeuroscienceGSTP1chemistry.chemical_compound0302 clinical medicineOlfactory MucosaPhysiology (medical)glutathione transferasemedicine[SDV.MHEP.PHY]Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]HumanshumanReceptorGSTP1odorantchemistry.chemical_classificationbiologymusculoskeletal neural and ocular physiology[SCCO.NEUR]Cognitive science/NeuroscienceCytochrome P450TransporterGlutathioneSensory Systems3. Good health030104 developmental biologymedicine.anatomical_structureEnzymeGSTA1chemistryBiochemistryOdorantsbiology.proteinOlfactory epithelium[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgerypsychological phenomena and processesolfaction
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Flavour from the molecules to the behaviour

2022

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology
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Characterization of rat glutathione transferases in olfactory epithelium and mucus

2019

International audience; The olfactory epithelium is continuously exposed to exogenous chemicals, including odorants. During the past decade, the enzymes surrounding the olfactory receptors have been shown to make an important contribution to the process of olfaction. Mammalian xenobiotic metabolizing enzymes, such as cytochrome P450, esterases and glutathione transferases (GSTs), have been shown to participate in odorant clearance from the olfactory receptor environment, consequently contributing to the maintenance of sensitivity toward odorants. GSTs have previously been shown to be involved in numerous physiological processes, including detoxification, steroid hormone biosynthesis, and am…

MaleProteomicsPhysiologyScienceMaterials ScienceEnzyme MetabolismRespiratory SystemResearch and Analysis MethodsBiochemistryOlfactory Receptor NeuronsOlfactory Mucosa[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologyMedicine and Health SciencesGlutathione ChromatographyAnimals[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyAmino Acid SequenceRats Wistar[SDV.MHEP.OS]Life Sciences [q-bio]/Human health and pathology/Sensory OrgansEnzyme ChemistryMaterialsImmunohistochemistry TechniquesGlutathione TransferaseAffinity ChromatographyChromatographic TechniquesQRBiology and Life SciencesProteinsGlutathioneImmunohistochemistryBody FluidsEnzymesRatsHistochemistry and Cytochemistry TechniquesMucusNasal Mucosa[SDV.MHEP.OS] Life Sciences [q-bio]/Human health and pathology/Sensory OrgansAmino Acid Specific ChromatographyPhysical SciencesOdorantsEnzymologyImmunologic TechniquesMedicineAnatomyPeptidesResearch Article
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[Thu-P1-027] Pheromone-induced odour learning and outstanding detection abilities in the newborn rabbit

2022

Perception of the wide, complex and changing odour environment requires that the olfactory system engages processing mechanisms ensuring efficient detection and discrimination of stimuli ending in specific motor actions and in adaptation. In newborn rabbits detecting and responding to the mammary pheromone (MP) emitted by the mother is crucial for survival, since the MP is a strong releaser of typical head-searching/oral grasping behaviour allowing to locate and orally grasp the maternal nipples during the daily nursing. Strikingly, the MP also functions as a natural reinforcer, i.e. as an unconditioned stimulus able to promote appetitive conditioning to a new odorant (CS) in a single and v…

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition
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Olfactory xenobiotic metabolizing enzymes have an impact on the stimulating properties of some odorants

2010

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutrition[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUS
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Activity and expression of drug metabolizing enzymes in olfactory mucosa of rats treated by hepatic inducers

2008

International audience; Several drug-metabolizing enzymes (DME), such as cytochrome P450- dependent monooxygenases (CYP) and transferases have been characterized in the olfactory epithelium. Some of them are preferentially expressed in this tissue, while others are similar to those present in the liver. The role of these enzymes remains unclear. Since the olfactory mucosa is in direct contact with the external environment, these enzymes can contribute to the detoxification of chemical compounds. In addition, these enzymes could be involved in the olfaction process, especially in the biotransformation of odorants. Indeed, the rapid inactivation and clearance of odorants is a prerequisite for…

OLFACTION PROCESSBIOTRANSFORMATION OF ODORANTS[CHIM.OTHE] Chemical Sciences/OtherOLFACTORY EPITHELIUMDRUG-METABOLIZING ENZYMESROLEOLFACTORY MUCOSA[CHIM.OTHE]Chemical Sciences/Other
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Real time monitoring of the metabolic capacity of ex-vivo rat olfactory mucosa by on-line PTR-MS

2016

Real time monitoring of the metabolic capacity of ex-vivo rat olfactory mucosa by on-line PTR-MS. Congrès français de Spectrométrie de Masse et d'Analyse Protéomique (SMAP 2015)

[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionptr-ms[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritionfood and beveragesvolatile metabolite[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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Function of nasal odorant metabolism in mammalian olfaction

2018

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.MHEP.PHY] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO][SDV.MHEP.PHY]Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO][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 Nutrition
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Glutathione conjugation of the rabbit mammary pheromone 2-methylbut-2-enal

2008

International audience; In the process of smell, the olfactory signal is initiated by the binding of odorous molecules to olfactory receptors. In the receptor environment,associated events are supposed to modulate this signal.Thus, the xenobiotic metabolizing enzymes, potentially involved in the clearance of the odorous molecules, could modulate the availability of these molecules for the olfactory receptors, and consequently could participate indirectly in the olfactory signal termination. A mammary pheromone, which is an odorous aldehyde (2-methylbut-2-enal or 2MB2) has been recently characterized in the rabbit by our group. The aim of this work was to elucidate the metabolism of 2MB2 in …

ODOROUS MOLECULES[CHIM.OTHE] Chemical Sciences/OtherRABBIT OLFACTORY MUCOSAOLFACTORY RECEPTORSOLFACTORY SIGNAL[CHIM.OTHE]Chemical Sciences/OtherMAMMARY PHEROMONE
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Les systèmes de détoxification dans le signal olfactif

2018

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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Impact of aldehyde dehydrogenases and aldo-keto reductases on human olfactory peri-receptor events

2023

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionflavorenzymesaldehydes[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biologyhuman[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionmetabolism
researchProduct

Characterization of rat glutathione transferases in olfactory mucus and epithelium

2019

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.NEU.PC]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Psychology and behavior[SDV.IDA]Life Sciences [q-bio]/Food engineering[SDV.NEU.PC] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]/Psychology and behavior[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.IDA] Life Sciences [q-bio]/Food engineering[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUS
researchProduct

Biotransformation of odorants modifies the olfactory signal

2009

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUSolfactory signal
researchProduct

New insights in vertebrate >

2016

International audience

PhysiologyFood Science & Technology[ SDV.NEU ] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Neurosciences[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Behavioral SciencesComputingMilieux_MISCELLANEOUS
researchProduct

Inhibition of the mammary pheromone catabolism by a second odorant present in the same mixture

2014

National audience

[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA]Life Sciences [q-bio]/Food engineering[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA] Life Sciences [q-bio]/Food engineeringComputingMilieux_MISCELLANEOUS
researchProduct

Implication des enzymes dans la perception chimio-sensorielle : une piste dans les troubles olfacto-gustatifs induits par des xénobiotiques ?

2019

International audience

[SDV.TOX.TCA] Life Sciences [q-bio]/Toxicology/Toxicology and food chain[CHIM] Chemical Sciences[CHIM]Chemical Sciences[SDV.TOX.TCA]Life Sciences [q-bio]/Toxicology/Toxicology and food chainComputingMilieux_MISCELLANEOUS
researchProduct

Périréception et protéines porteuses

2012

ISBN-10 : 978-2-7592-1770-0 ; issn : 1777-4624

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutrition[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUS
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Aroma volatile metabolites at olfactory mucosa level evidenced by in vitro PTR-Tof-MS studies

2016

International audience; Olfactory mucosa can metabolize odorants through various enzymatic mechanisms participating in their clearance and therefore in the termination of the olfactory signal. Preliminary ex-vivo studies using headspace-GC revealed the formation of volatile metabolites when odorant molecules were injected above a fresh explant of rat olfactory mucosa. However, this method did not allow accessing the data during the first five minutes of contact between the odorant and the mucosa, thus limiting the olfactory biological significance. Using a direct-injection mass spectrometry technique (PTR-MS) we have been able for the first time to investigate the first moments of the enzym…

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineering[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritionfood and beverages[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[ SPI.GPROC ] Engineering Sciences [physics]/Chemical and Process Engineering[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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The NAOMI (Nasal Odorant Metabolites) consortium: an international, multidisciplinary consortium investigating how metabolites resulting from nasal e…

2021

International audience; A functional sense of smell is essential for evaluating and enjoying food, receiving information about conspecifics, and detecting threats via airborne chemical cues. Olfactory dysfunction has been associated with an impaired quality of life, reflected by a higher incidence of undesirable mental states such as depression and social insecurity. Addressing and overcoming related olfactory dysfunction issues require a detailed understanding of peripheral and central processes involved in olfaction. Consequently, there is a growing body of research unravelling molecular and cellular interactions that shape olfactory sensation. Recent studies have demonstrated that in the…

odorant metabolizing enzymes[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionnasal tissue[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biologyperireceptor events[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionmetabolitesolfaction
researchProduct

Molecules of the flavor

2022

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology
researchProduct

Major sulfation pathway for resveratrol metabolism in human hepatic derived cells and resveratrol –dependent inducibility of conjugating enzymes. Per…

2007

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology
researchProduct

Odorant-odorant metabolic competitions: ex vivo inhibition of the mammary pheromone catabolism

2016

International audience

pheromone[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biology[ SDV.BBM ] Life Sciences [q-bio]/Biochemistry Molecular BiologyComputingMilieux_MISCELLANEOUS
researchProduct

New insights in vertebrate 'biotransfolfaction'

2016

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BIO]Life Sciences [q-bio]/Biotechnology[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[SDV.BIO] Life Sciences [q-bio]/Biotechnology
researchProduct

How odorant metabolizing enzymes shape odor perception?

2020

International audience; Lingering in the background of every odorant-receptor interaction is an odor metabolizing enzyme. Over the last several years, a fascinating set of studies in rodents, rabbits, insects and humans has demonstrated that these enzymes participate in the active biotransformation of odorous molecules within the perireceptor environment. These mechanisms may exert two unique effects: first, to maintain odor sensitivity by reducing receptor saturation, and second, to transform the local milieu of the odor components giving rise to unique odor percepts. This symposium will focus on the impact of odorant metabolizing enzymes (OMEs) on functional and behavioral aspects of olfa…

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biologyodorant metabolism[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biologyperireceptorodorant metabolizing enzyme[SDV.AEN]Life Sciences [q-bio]/Food and Nutritionpsychological phenomena and processesolfaction
researchProduct

Odorants' metabolism in Human: a critical role in odor perception revealed

2018

odorant metabolizing enzymes[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.MHEP.PHY] Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO][SDV.MHEP.PHY]Life Sciences [q-bio]/Human health and pathology/Tissues and Organs [q-bio.TO]human perception[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]olfactory metabolism[SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC][SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
researchProduct

Role of CYTOCHROME p450 in the perception of caffeine in Drosophila melanogaster

2011

Poster

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionComputingMethodologies_GENERAL1 page[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
researchProduct

Rôle des enzymes du métabolisme des xénobiotiques dans la perception de la caféine chez la drosophile

2010

National audience; Les animaux ont développé des systèmes de communication avec leur environnement indispensables à leur survie et leur reproduction. Les systèmes chimiosensoriels gustatifs et olfactifs détectent et transmettent au niveau central les informations chimiques de l’environnement (xénobiotique) afin que l’individu distingue les sources alimentaires des substances toxiques et reconnaisse ses proies de ses congénères. Ces systèmes, pour être efficaces, doivent être très sensibles et discriminants, et éviter la saturation des récepteurs. Dans l’espace péri-récepteur, les enzymes du métabolisme des xénobiotiques (EMX), impliquées normalement dans la détoxication, pourraient égalemen…

cytochrome P450[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineeringchimiosensoriel[SDV.IDA]Life Sciences [q-bio]/Food engineeringxénobiotique[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA] Life Sciences [q-bio]/Food engineering
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Métabolisme périphérique des odorants : arrêt ou modulation du signal olfactif ?

2015

Métabolisme périphérique des odorants : arrêt ou modulation du signal olfactif ?. 1. réunion du GDR (Groupe De Réflexion) Odorant Odeur Olfaction

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT][SDV.OT] Life Sciences [q-bio]/Other [q-bio.OT][ SDV.AEN ] Life Sciences [q-bio]/Food and Nutrition[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT][SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
researchProduct

Endocrine disruptors found in food modulate estradiol cellular metabolism

2007

[SDV] Life Sciences [q-bio][SDV.AEN] Life Sciences [q-bio]/Food and Nutrition
researchProduct

Major sulfation pathway for resveratrol metabolism in human hepatic derived cells and resveratrol –dependent inducibility of conjugating enzymes. Per…

2007

[SDV] Life Sciences [q-bio][SDV.AEN] Life Sciences [q-bio]/Food and Nutrition
researchProduct

ARET : colloque 2018 au CSGA Dijon. 28 et 29 mai 2018 - CSGA, 9E boulevard Jeanne d'Arc, Dijon

2018

L'Association pour la REcherche en Toxicologie (ARET) organise un colloque sur le thème "Substances odorantes et sapides : du plaisir des sens aux cibles biologiques", lundi 28 et mardi 29 mai 2018 au CSGA. Ce colloque bénéficie du soutien du département AlimH. Invité d'honneur de la table ronde: Roland Salesse.

[SDV.TOX] Life Sciences [q-bio]/Toxicology[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition
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Drosophila melanogaster glutathione transferase overexpressed in the sensory organs after exposure to bitter molecules in food

2016

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biology[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
researchProduct

Caffeine metabolism in Drosophila melanogaster

2015

International audience

[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA]Life Sciences [q-bio]/Food engineering[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA] Life Sciences [q-bio]/Food engineeringComputingMilieux_MISCELLANEOUS
researchProduct

P45 - Drosophila melanogaster glutathione transferase overexpressed in the sensory organs after exposure to bitter molecules in food

2016

International audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biology[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
researchProduct

Structural and enzymatic characterization of a Drosophila melanogaster glutathione transferase overexpressed in the sensory organs after exposure to …

2016

Glutathione transferases (GSTs) are ubiquitous key detoxification enzymes that catalyze the conjugation of glutathione to a large variety of xenobiotic chemical including odorants and sapid molecules. A previous study in Drosophila melanogaster demonstrated the existence of a GST specifically expressed in the antenna and involved in signal termination by catalyzing biotransformation of odorant molecules. Genomic analysis allows identifying forty GSTs in Drosophila melanogaster but their biochemistry is poorly documented. Here we demonstrated that among the GSTs, dmelGSTD2-2 was strongly and preferentially overexpressed in the sensory organs (antennae, proboscis, legs, wings) after an exposu…

[SDV.OT]Life Sciences [q-bio]/Other [q-bio.OT]food[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritioneducationévènements périrécepteurs[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionenzymestomatognathic systemDrosophila[ SDV.OT ] Life Sciences [q-bio]/Other [q-bio.OT][SDV.AEN]Life Sciences [q-bio]/Food and Nutritionhealth care economics and organizationsComputingMilieux_MISCELLANEOUSolfaction
researchProduct

Role of xenobiotic metabolizing enzymes in the perception of caffeine in Drosophila melanogaster

2012

Poster

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionComputingMethodologies_GENERAL1 page[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
researchProduct

Role of human metabolizing enzymes in food perception

2022

Flavor is the main factor determining food acceptability. Flavor corresponds to the combination of the signals from the gustatory system, the olfactory system and the trigeminal system. Interactions between proteins and flavor molecules in oral/nasal cavities are proposed to modulate flavor perception through a series of events knowns as perireceptor events. Among these proteins involved in this modulation are found enzymes mainly known for their role in the detoxification process. These enzymes are able to recognize a large panel of molecules. We proposed to explore the role of these enzymes in food perception. We demonstrated that enzymatic activities present in the oral epithelium and sa…

taste[SDV.AEN] Life Sciences [q-bio]/Food and Nutritionflavorenzymesmetabolismodorant[SDV.BBM.BC] Life Sciences [q-bio]/Biochemistry Molecular Biology/Biochemistry [q-bio.BM]
researchProduct

Function of nasal odorant metabolism in vertebrate olfaction

2021

National audience

[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular Biology[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biologyenzymes du métabolisme des odorants[SDV.AEN]Life Sciences [q-bio]/Food and NutritionComputingMilieux_MISCELLANEOUSolfaction
researchProduct

Role of CYP6d5 in the metabolism and the sensory perception of caffeine in Drosophila melanogaster

2014

National audience

[SPI.GPROC] Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA]Life Sciences [q-bio]/Food engineering[SPI.GPROC]Engineering Sciences [physics]/Chemical and Process Engineering[SDV.IDA] Life Sciences [q-bio]/Food engineeringComputingMilieux_MISCELLANEOUS
researchProduct