Search results for "TAS1R3"

showing 5 items of 5 documents

Tas1R1-Tas1R3 taste receptor variants in human fungiform papillae.

2009

International audience; Monosodium glutamate as well as metabotropic and ionotropic glutamate receptor agonists have been reported to be perceived as umami by humans. In spite of the fact that Tas1R1-Tas1R3 has been shown to mediate most of the glutamate taste sensation in mice other candidate receptors have been put forward for which a clear role in detection is still lacking. This work was aimed at investigating the molecular determinants underlying umami taste detection in humans. First, we show evidence supporting expression of Tas1R1 and Tas1R3 but not mGluRs in the fungiform papillae of several individuals. Next, we report a number of naturally occurring l-glutamate taste receptor var…

AdultMaleTasteTASTE RECEPTORSGlutamic AcidSNPFUNGIFORM PAPILLAEUmamiBiologyLigandsReceptors Metabotropic GlutamatePolymorphism Single NucleotideReceptors G-Protein-CoupledTAS1R103 medical and health sciencesGLUTAMATE0302 clinical medicineTAS1R3Allosteric RegulationTongueTaste receptorHumansProtein IsoformsMSG030304 developmental biologyAgedGenetics0303 health sciencesBinding SitesGeneral Neuroscience[SCCO.NEUR]Cognitive science/NeuroscienceGenetic VariationHUMANMiddle AgedTaste BudsProtein Structure TertiaryTAS2R38BiochemistryTasteTaste Threshold[ SCCO.NEUR ] Cognitive science/NeuroscienceMetabotropic glutamate receptor 1Ionotropic glutamate receptorFemaleUNAMI030217 neurology & neurosurgery
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Lipid-mediated release of GLP-1 by mouse taste buds from circumvallate papillae: putative involvement of GPR120 and impact on taste sensitivity

2012

Glucagon-like peptide-1 (GLP-1) signaling modulates sweet-taste sensitivity in the mouse. Because circumvallate papillae (CVPs) express both GLP-1 and its receptor, a local regulation has been suggested. However, whether dietary lipids are involved in this regulation, as shown in the gut, is unknown. By using a combination of biochemical, immunohistochemical, and behavioral approaches, the present data i) confirm the role of GLP-1 signaling in the attraction for sucrose, ii) demonstrate that minute quantities of long-chain FAs (LCFAs) reinforce the attraction for sucrose in a GLP-1 receptor-dependent manner, iii) suggest an involvement of the LCFA receptor GPR120 expressed in taste buds in …

CD36 Antigensmedicine.medical_specialtyTasteendocrine systemCD36Blotting WesternQD415-436eating behaviorReal-Time Polymerase Chain ReactionBiochemistryGlucagon-Like Peptide-1 ReceptorReceptors G-Protein-CoupledMiceEndocrinologyTAS1R3TAS1R2Glucagon-Like Peptide 1Cell Line TumorInternal medicinelong-chain fatty acidReceptors GlucagonmedicineAnimalsHumansSecretionObesityReceptorLingual papillaResearch Articlesbiologydigestive oral and skin physiologyGPR120healthCell BiologyTaste BudsImmunohistochemistryMice Inbred C57BLEndocrinologyobesity riskbiology.proteinJournal of Lipid Research
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Zizyphin modulates calcium signalling in human taste bud cells and fat taste perception in the mouse.

2017

Zizyphin, isolated from Zizyphus sps. leaf extracts, has been shown to modulate sugar taste perception, and the palatability of a sweet solution is increased by the addition of fatty acids. We, therefore, studied whether zizyphin also modulates fat taste perception. Zizyphin was purified from edible fruit of Zizyphus lotus L. Zizyphin induced increases in [Ca2+]i in human taste bud cells (hTBC). Zizyphin shared the endoplasmic reticulum Ca2+ pool and also recruited, in part, Ca2+ from extracellular environment via the opening of store-operated Ca2+ (SOC) channels. Zizyphin exerted additive actions on linoleic acid-induced increases in [Ca2+]i in these cells, indicating that zizyphin does no…

Male0301 basic medicinemedicine.medical_specialtyTasteLinoleic acidBiologyPeptides CyclicReceptors G-Protein-CoupledMice03 medical and health scienceschemistry.chemical_compoundAlkaloids0302 clinical medicineTAS1R3Internal medicinesweet tastemedicineAnimalsHumansPharmacology (medical)Calcium SignalingPalatabilityCells CulturedZizyphus lotus LCalcium signalingMice KnockoutPharmacologychemistry.chemical_classificationPlant ExtractsTaste PerceptionGPR120Fatty acid[ SDV.SP.PHARMA ] Life Sciences [q-bio]/Pharmaceutical sciences/PharmacologyZiziphusTaste BudsDietary FatsG protein-coupled bile acid receptorfat tastezizyphinMice Inbred C57BL030104 developmental biologyEndocrinologyBiochemistrychemistry030217 neurology & neurosurgery
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Activation of a Sweet Taste Receptor by Oleanane-Type Glycosides from Wisteria sinensis

2022

The phytochemical study of Wisteria sinensis (Sims) DC. (Fabaceae), commonly known as the Chinese Wisteria, led to the isolation of seven oleanane-type glycosides from an aqueous-ethanolic extract of the roots. After successive purifications by various chromatographic methods, like solid/liquid chromatographic methods, vacuum liquid chromatography (VLC), medium pressure liquid chromatography (MPLC), on normal and reverse phase (RP-18 silica gel), and size exclusion chromatography on Sephadex L, their structures were elucidated by an extensive 600 MHz NMR analysis including 1D and 2D NMR experiments as well as ESI-MS. Among the seven isolated saponins, two have never been reported before : 3…

Organic ChemistryPharmaceutical ScienceFabaceaeSweet taste receptorsWisteria sinensisTAS1R2/TAS1R3Analytical ChemistryChemistry (miscellaneous)Drug Discovery[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologyMolecular Medicine<i>Wisteria sinensis</i>; Fabaceae; triterpene glycosides; sweet taste; TAS1R2/TAS1R3Physical and Theoretical Chemistry2D-NMRMolecules
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Triterpenoid saponins from the cultivar “Green Elf” of Pittosporum tenuifolium

2021

Four oleanane-type glycosides were isolated from a horticultural cultivar “Green Elf” of the endemic Pittosporum tenuifolium (Pittosporaceae) from New Zealand: three acylated barringtogenol C glycosides from the leaves, with two previously undescribed 3-O-β-d-glucopyranosyl-(1→2)-[α-l-arabinopyranosyl-(1→3)]-β-d-glucuronopyranosyl-21-O-angeloyl-28-O-acetylbarringtogenol C, 3-O-β-d-galactopyranosyl-(1→2)-[α-l-arabinopyranosyl-(1→3)]-β-d-glucuronopyranosyl-21-O-angeloyl-28-O-acetylbarringtogenol C, and the known 3-O-β-d-glucopyranosyl-(1→2)-[α-l-arabinopyranosyl-(1→3)]-β-d-glucuronopyranosyl-21-O-angeloyl-28-O-acetylbarringtogenol C (Eryngioside L). From the roots, the known 3-O-β-d-glucopyra…

PittosporaceaeSaponinPittosporaceaePharmaceutical ScienceOrganic chemistry01 natural sciencesTAS1R2/TASR3Analytical ChemistryTriterpenoidTAS1R3QD241-441sweet tasteDrug Discovery[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyCultivarPhysical and Theoretical Chemistrytaste inhibitor2. Zero hungerchemistry.chemical_classificationbiologyTraditional medicine010405 organic chemistryPittosporum tenuifoliumbarringtogenol CGlycosideSweet tastebiology.organism_classification0104 chemical sciencesPittosporum tenuifolium010404 medicinal & biomolecular chemistry<i>Pittosporum tenuifolium</i>chemistryChemistry (miscellaneous)Molecular Medicine[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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