Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
批准号:
8379574
负责人:
Nancy Brown
金额:
$28.5万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
AcidsAddressAffectAfrican AmericanAgonistAldosteroneAlkane 1-monooxygenaseAllelesAmilorideAndrogensAnimal ModelAnimalsAntihypertensive AgentsArachidonic AcidsAsiansAttenuatedBiological MarkersBlood PressureBlood VesselsBody FluidsCYP4A11 geneCardiovascular systemCaucasiansCaucasoid RaceCerebrumCessation of lifeClinical ResearchComplications of Diabetes MellitusCongestive Heart FailureCytochrome P450CytosineDataDevelopmentDiabetes MellitusDietDiseaseDiureticsEarly DiagnosisEarly treatmentEicosanoidsEnd stage renal failureEnzymesEpithelialExcretory functionExperimental ModelsFunctional disorderFutureGenderGene StructureGenesGeneticGenetic PolymorphismGenetic VariationGenotypeGhanaGoalsHealthHomologous GeneHumanHydroxyeicosatetraenoic AcidsHydroxylationHypertensionIndividualInjuryInsulin ResistanceInterventionKidneyKidney DiseasesKnock-outKnockout MiceLeadLigandsMedicalMetabolicMetabolic syndromeMixed Function OxygenasesMolecularMorbidity - disease rateMusMyocardial InfarctionNatriuresisNephrosclerosisOrganPeroxisome Proliferator-Activated ReceptorsPhenotypePhysiologicalPlasmaPlayPopulation StudyPrevalenceProductionProtein IsoformsProteinsProteinuriaRenal HypertensionRenal functionReninRodentRodent ModelRoleSerineSiteSodiumSodium ChannelSodium ChlorideStrokeTestingThymidineTubular formationUnited StatesUrineVariantVasoconstrictor AgentsVasodilationVasodilator Agentsbaseblood pressure regulationclinical Diagnosisepithelial Na+ channelgenetic epidemiologyhemodynamicshuman diseaseimprovedinhibitor/antagonistinsightinsulin sensitivityinterdisciplinary approachkidney vascular structureloss of functionmenmortalitynovel strategiespreventreceptorrenal tubular transportresponsesalt intakesocioeconomicsurinaryvasoconstriction
中文摘要
肾脏在控制体液的体积和组成,管状和/或
英文摘要
The kidney plays a key role in the control of body fluid volume and composition, and tubular and/or
hemodynamic dysfunction are common features of diseases such as hypertension and diabetes. The renal
P450 arachidonic acid (AA) monooxygenase biosynthesizes hydroxy- and epoxy-AA derivatives that are
known to modulate tubular transport and vascular reactivity. Animal models of P450 gene dysfunction
confirmed the physiological importance of these enzymes, characterized their pathophysiological roles, and
provided insights into the mechanism of action of their metabolites. Studies of the pathophysiological roles of
human P450s identified associations between P450 gene variants with hypertension, the progression of
renal disease, and with components of metabolic syndrome. This application proposes to build upon these
studies and to address: a) mechanisms by which the P450-eicosanoids regulate renal tubular transport and
vascular reactivity, b) the role of P450s in human hypertension and renal complications of diabetes, and c)
the molecular basis of these pathophysiological roles. To achieve these goals, we developed a multidisciplinary
approach for studies of P450-isoform specific phenotypes at the cellular, organ and whole animal
levels, the analysis of associations between alterations in human P450 gene structure/expression and
disease, and for clinical studies of their metabolic and functional consequences. Cyp2c and Cyp4a knockout
mice will be used to study gene-dependent changes in: a) renal EET and/or 20-HETE synthase expression,
b) tubular transport and/or vascular reactivity, and c) systemic blood pressure and the progression of renal
disease. Associations between CYP2C8/2C9 or CYP4A11 genotypes with blood pressure, insulin sensitivity,
and urine and plasma EET and 20-HETE levels will be explored to define pathophysiological correlations
between variant alleles, AA epoxidation/hydroxylation, and individual responses to changes in dietary salt
intake, the administration of diuretics, or peroxisomal proliferator activated receptor (alpha) ligands. Our
long term goals are to provide a molecular understanding of role(s) of P450 eicosanoids in renal
physiological, their mechanism and site of action, and relevance to human disease. These are needed for
the development of meaningful approaches for: a) the unequivocal definition of human pathophysiological
significance, and b) future pharmacological targeting, and clinical diagnosis and intervention.
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Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
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批准号:7758891
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项目类别:
-
资助金额:$35.03万
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财政年份:2009
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负责人:Nancy Brown
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依托单位:
Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
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批准号:8326677
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项目类别:
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资助金额:$29.02万
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财政年份:--
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负责人:Nancy Brown
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依托单位:
Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
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批准号:8521251
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项目类别:
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资助金额:$26.94万
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财政年份:--
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负责人:Nancy Brown
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依托单位:
Human Hypertension and P450 Co-Hydroxylases and Epoxygenases
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批准号:8111792
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项目类别:
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资助金额:$30.21万
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财政年份:--
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负责人:Nancy Brown
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依托单位:
海外基金