Metabolic regulation via intramitochondrial sAC
Metabolic regulation via intramitochondrial sAC
批准号:
9060960
负责人:
JOCHEN BUCK
金额:
$37.8万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-07-15 至 2018-04-30
关键词:
ATP Synthesis PathwayAblationAcuteAdenylate CyclaseAffectAnimalsAstrocytesBicarbonatesBiochemicalBioenergeticsBrainCalciumCarbon DioxideCatechol EstrogensCell membraneCellsChronicCiliaCitric Acid CycleCommunicationComplexCuesCultured CellsCyclic AMPCyclic AMP-Dependent Protein KinasesCytoplasmDataDefectDependenceDiabetes MellitusElectron TransportElectronsEmbryoEnzymesEpididymisEquilibriumExhibitsEyeFertilityFibroblastsFrequenciesFunctional disorderGlucoseGlucose tolerance testHealthHeterotrimeric GTP-Binding ProteinsHomeostasisHormonesInsulinKRP proteinKidneyKnockout MiceLinkMediatingMetabolicMetabolic DiseasesMetabolic stressMetabolismMitochondriaMusNADHNeuronsNeurotransmittersNutrientNutritive ValueOxidative PhosphorylationPancreasPathway interactionsPhenotypePhysiologic Intraocular PressurePhysiologicalPositioning AttributeProductionProtonsReactive Oxygen SpeciesRegulationResourcesRoleSecond Messenger SystemsSignal PathwaySignal TransductionSourceSystemTissuesairway epitheliumblood glucose regulationcarbonate dehydratasecell motilitydetection of nutrientelectron donorextracellularfeedingglucose metabolismglucose sensorin vivoinhibitor/antagonistmalemetabolic phenotypeoxidative damagephosphoproteomicsrespiratoryresponsesecond messengersensorsperm cellwasting
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): It has become widely accepted that cAMP acts locally, in independently regulated signaling microdomains. Soluble adenylyl cyclase (sAC) is molecularly, biochemically and functionally distinct from the other known mammalian sources of cAMP, the transmembrane adenylyl cyclases (tmACs). While tmACs are positioned at the plasma membrane where they are regulated by heterotrimeric G proteins in response to extracellular cues such as hormones and neurotransmitters, sAC is distributed throughout the cytoplasm and in intracellular compartments, including mitochondria, where it is poised to provide the second messenger regulating the intracellular and intra-organellar targets of cAMP. Inside mitochondria, sAC-generated cAMP regulates components of the electron transport chain (ETC), increasing electron flux and the overall rate of ATP synthesis. This intramitochondrial sAC-cAMP signaling pathway linking cellular nutrient utilization with energy production defines a mechanism of short-term modulation of oxidative phosphorylation which allows the cell's respiratory machinery to respond to transient changes in nutritional availability, environmental conditions, and energy requirements. In this application, we propose to elucidate the physiological significance of this pathway. We propose to (1) determine the consequences of both chronic and acute abrogation of the intramitochondrial sAC-cAMP pathway in cultured cells using pharmacological inhibitors and cells derived from sAC-C1 KO mice; and (2) discern which of the known metabolic phenotypes seen in sAC-C1 KO mice are caused by abrogation of the intramitochondrial sAC-cAMP pathway. Understanding the role of this pathway is likely to have important implications for cell intrinsic nutrient sensing, diabetes, and metabolism in general, and it will reveal the functional significance of this intracellular cAMP microdomain.
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海外基金