Search results for "BILE-ACID"

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Germ-free housing conditions do not affect aortic root and aortic arch lesion size of late atherosclerotic low-density lipoprotein receptor-deficient…

2020

The microbiota has been linked to the development of atherosclerosis, but the functional impact of these resident bacteria on the lesion size and cellular composition of atherosclerotic plaques in the aorta has never been experimentally addressed with the germ-free low-density lipoprotein receptor-deficient (Ldlr(-/-)) mouse atherosclerosis model. Here, we report that 16 weeks of high-fat diet (HFD) feeding of hypercholesterolemicLdlr(-/-)mice at germ-free (GF) housing conditions did not impact relative aortic root plaque size, macrophage content, and necrotic core area. Likewise, we did not find changes in the relative aortic arch lesion size. However, late atherosclerotic GFLdlr(-/-)mice …

0301 basic medicineAortic archMalePathologyaortic rootAortic rootaortic archFunctional impactAorta ThoracicHYPERCHOLESTEROLEMIAMice0302 clinical medicineDeficient mouse610 Medicine & healthMice KnockoutBILE-ACIDSCellular compositionMicrobiotaCHOLESTEROLGUT MICROBIOTAGastroenterologyinflammatory markersHousing AnimalPlaque Atheroscleroticmacrophagessmooth muscle cellsInfectious Diseasesgerm-free030211 gastroenterology & hepatologyFemalelipids (amino acids peptides and proteins)SEXTRIMETHYLAMINEmedicine.symptomMicrobiology (medical)medicine.medical_specialty610 Medicine & healthBiologyMETABOLISMlesion sizeMicrobiologyLesion03 medical and health sciencesINFLAMMATIONmedicine.arterymedicineAnimalsGerm-Free LifeHumanslcsh:RC799-869AddendumMice Inbred C57BLDisease Models Animal030104 developmental biologyReceptors LDLlow-density lipoprotein receptor-deficient mouseageLDL receptorlcsh:Diseases of the digestive system. Gastroenterologyatherosclerosis
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Impact of plant sterols enrichment dose on gut microbiota from lean and obese subjects using TIM-2 in vitro fermentation model

2019

There are scarce data on plant sterols (PS) and gut microbiota relationship. The purpose of this study is to compare the interaction between PS and gut microbiota through in vitro colonic fermentation studies using a validated system (TIM-2) with a PS-enriched dose (similar to 2 g/day) from two sources (food PS-source ingredient and commercial standard) using microbiota from lean and obese populations. Fecal sterols, short chain fatty acids (SCFA) and microbiota composition were determined by GC/MS, IEC, and 16S-sequencing, respectively.PS-feeding decreased coprostanol and ethylcoprostanol concentration and increased the production of acetate and butyrate (mainly with lean microbiota). In a…

0301 basic medicineCHROMATOGRAPHYMedicine (miscellaneous)ButyrateGut microbiotaGut floradigestive systemPlant sterolsNEUTRAL STEROLS03 medical and health sciencesIngredientchemistry.chemical_compoundBUTYRATE0404 agricultural biotechnologyfluids and secretionsTX341-641Food scienceFecesBILE-ACIDS030109 nutrition & dieteticsNutrition and DieteticsbiologyPHYTOSTEROLSCholesterolNutrition. Foods and food supplyCHOLESTEROLHUMANSShort chain fatty acids04 agricultural and veterinary sciencesbiology.organism_classificationCANCER040401 food scienceIn vitroPRODUCTSCoprostanolCHAIN FATTY-ACIDSchemistryFermentationTIM-2 in vitro modelFecal sterolsFood ScienceJournal of Functional Foods
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Coordinated induction of drug transporters and phase I and II metabolism in human liver slices

2008

Although regulation of phase I drug metabolism in human liver is relatively well studied, the regulation of phase II enzymes and of drug transporters is incompletely characterized. Therefore, we used human liver slices to investigate the PXR, CAR and AhR-mediated induction of drug transporters and phase I and II metabolic enzymes. Precision-cut human liver slices were incubated for 5 or 24 h with prototypical inducers: phenobarbital (PB) (50 mu M) for CAR, beta-naphthoflavone (BNF) (25 mu M) for AhR, and rifampicin (RIF) (10 mu M) for PXR, and gene expression of the phase I enzymes CYP1A1, 1A2, 3A4, 3A5, 2136, 2A6, the phase II enzymes UGT1A1 and 1A6, and the transporters MRP2, MDR1, BSEP, …

DIFFERENTIAL REGULATIONQUANTITATIVE RT-PCRRAT-LIVERGene ExpressionPharmaceutical Sciencedrug transportersIn Vitro TechniquesPharmacologydigestive systemCytochrome P-450 Enzyme SystemUDP-GLUCURONOSYLTRANSFERASE 1A1Constitutive androstane receptorHumansSTELLATE CELL ACTIVATIONEnzyme inducerinductionliver slicesCONSTITUTIVE ANDROSTANE RECEPTORchemistry.chemical_classificationPregnane X receptorbiologyCYP3A4Multidrug resistance-associated protein 2TransporterPRIMARY HUMAN HEPATOCYTESMetabolic Detoxication Phase IIdrug metabolismEnzymeLiverPharmaceutical PreparationsBiochemistrychemistryEnzyme Inductionbiology.proteinMetabolic Detoxication Phase IPREGNANE-X-RECEPTORCarrier ProteinsPROTOTYPICAL INDUCERSDrug metabolismBILE-ACIDEuropean Journal of Pharmaceutical Sciences
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