Cellular Mechanisms of Neuronal Metal Transport and Toxicity
Cellular Mechanisms of Neuronal Metal Transport and Toxicity
批准号:
7216864
负责人:
Victor Faundez
金额:
$27.88万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-04-01 至 2010-03-31
关键词:
AcuteAmino AcidsBiochemicalBiologicalBiological AssayC-terminalCell SurvivalCell physiologyCellsCharacteristicsChronicChronic DiseaseConditionDefectEndosomesEngineeringEquilibriumExtracellular SpaceGenomicsGoalsHereditary DiseaseHomeostasisHumanMembrane ProteinsMetalsMitochondriaMolecular ChaperonesMolecular TargetMusMutationNatureNeurodegenerative DisordersNeuronsOrganellesPathogenesisPathologic ProcessesPathway interactionsPhysiologyPlayPopulationProcessProteinsProteomicsRangeRegulationResistanceRoleSignal TransductionSiteSorting - Cell MovementSynapsesSynaptic TransmissionSynaptic VesiclesTestingTissuesToxic effectUbiquitinVesicleZincamyloid formationbasechelationcofactorcytotoxicityepsinexcitotoxicitygain of functionmetal poisoningnon-genomicnovelprotein foldingreceptorresponsetooltraffickingzinc-binding protein
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Zinc plays fundamental and diverse roles in cells yet excess free zinc is associated with metal cytotoxicity. To balance these opposing effects, cells have evolved universal mechanisms controlling cytoplasmic metal concentration. Cells accomplish this goal by zinc extrusion into the extracellular space, chelation by cytosolic chaperones, or sequestration within intracellular compartments. This last mechanism is the less explored process and it constitutes the main focus of our proposal. Zinc plays fundamental roles in synaptic physiology as well as in acute and chronic pathological conditions, ranging from excitotoxicity to the formation of amyloid aggregates characteristic of neurodegenerative diseases. Despite these fundamental roles of zinc, our understanding of the contribution of intracellular compartment in metal sequestration and homoeostasis is limited. In neurons, organellar zinc is stored in synaptic vesicles (SVs) by the activity of a synaptic vesicle specific zinc transporter, ZnT3. We have isolated and characterized by proteomics a ZnT3- enriched vesicle population. In these vesicles, we have identified ~ 140 molecular targets, several of which either up- or down-regulate vesicular endosomal zinc stores. These molecules provide a unique set of tools to assess the role of intracellular organelles, en particular endosomes and SV, in normal and pathological metal homeostasis. Our studies suggest that ZnT3 transport function are regulated by the nature of the compartment in which the ZnT3 transporter resides. Consistent with this notion, we have identified three targeting mechanisms that control ZnT3 subcellular localization that have the potential to regulate ZnT3 zinc transport function. In this proposal, we will specifically explore these novel regulatory paradigms testing the hypothesis that endosome-specific zinc transporter interactions regulate zinc transporter activity and resistance to metal-induced cytotoxicity.
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Celllular mechanisms of neuronal metal transport and toxicity
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批准号:8599779
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资助金额:$37.98万
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财政年份:2006
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负责人:Victor Faundez
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Cellular Mechanisms of Neuronal Metal Transport and Toxicity
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批准号:7599255
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资助金额:$27.88万
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Celllular mechanisms of neuronal metal transport and toxicity
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资助金额:$37.98万
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Cellular Mechanisms of Neuronal Metal Transport and Toxicity
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批准号:7390860
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资助金额:$27.88万
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资助金额:$28.88万
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Mechanisms of Endosome Trafficking in Neurons
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IN VITRO ANALYSIS OF SECRETORY VESICLE DOCKING
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海外基金