THE STRUCTURE OF MITOCHONDRIA IN ROD AND CONE PHOTORECEPTORS
THE STRUCTURE OF MITOCHONDRIA IN ROD AND CONE PHOTORECEPTORS
批准号:
7722408
负责人:
DONALD A FOX
金额:
$3.12万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-05-01 至 2009-04-30
关键词:
Action PotentialsCa(2+)-Transporting ATPaseCell membraneComputer Retrieval of Information on Scientific Projects DatabaseCouplingDarknessEndoplasmic ReticulumExhibitsExocytosisFundingGoalsGrantInstitutionKineticsMetabolicMitochondriaNeuronsPhotonsPhotoreceptorsPresynaptic TerminalsProductionRegulationResearchResearch PersonnelResourcesRetinal ConeSourceStructureUnited States National Institutes of HealthVariantVertebrate Photoreceptorsneurotransmitter releasepresynapticresponseretinal rodsribbon synapsespatiotemporal
中文摘要
点击翻译按钮获取中文摘要
英文摘要
This subproject is one of many research subprojects utilizing the
resources provided by a Center grant funded by NIH/NCRR. The subproject and
investigator (PI) may have received primary funding from another NIH source,
and thus could be represented in other CRISP entries. The institution listed is
for the Center, which is not necessarily the institution for the investigator.
The overarching goal of our studies is to develop a comprehensive structural and functional understanding of rod spherule and cone pedicle ribbon synaptic terminals. Vertebrate photoreceptors are nonspiking neurons that maintain sustained depolarization and neurotransmitter release from ribbon synapses in darkness and produce light-dependent graded hyperpolarizing responses. In conventional neurons, Ca2+ enters presynaptic terminals during an action potential and its increased local concentration triggers transient exocytosis. In contrast, vertebrate photoreceptors are nonspiking neurons that maintain sustained depolarization and neurotransmitter release from ribbon synapses in darkness and produce light-dependent graded hyperpolarizing responses. Rods transmit single photon responses with high fidelity, whereas cones are less sensitive and exhibit faster response kinetics. These differences are likely due to variations in presynaptic Ca2+ dynamics. Metabolic coupling and cross-talk between mitochondria, endoplasmic reticulum (ER), plasma membrane Ca2+ ATPase (PMCA), and Na+-Ca2+ exchanger (NCX) coordinately control presynaptic ATP production and Ca2+ dynamics. The goal of our structural and functional studies is to determine the spatiotemporal regulation of ATP and Ca2+ dynamics in rod spherules and cone pedicles.
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THE STRUCTURE OF MITOCHONDRIA IN ROD AND CONE PHOTORECEPTORS
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