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首页> 外文期刊>Trends in Neurosciences >The chemical synapse goes electric: Ca2+- and voltage-sensitive GPCRs control neurotransmitter release.
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The chemical synapse goes electric: Ca2+- and voltage-sensitive GPCRs control neurotransmitter release.

机译:化学突触变成电动的:Ca2 +和电压敏感的GPCR控制神经递质的释放。

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It is widely believed that the initiation of transmitter release in fast synapses is triggered by rapid Ca2+ entry and that the termination of release is governed by removal of Ca2+ from below the release sites. We argue that, although Ca2+ is essential for release, fast-entry kinetics render Ca2+ incapable of being the limiting factor for the initiation of release, and the relatively slow removal of Ca2+ cannot be the limiting factor for the termination of release. We suggest, and provide supporting evidence for, a novel general mechanism for control of fast transmitter release (in the range of milliseconds) from nerve terminals. According to this mechanism, two factors control release: Ca2+ and voltage-sensitive presynaptic inhibitory G-protein-coupled receptors (GPCRs). Inhibitory autoreceptors are known to mediate slow feedback inhibition of transmitter release. We discuss the evidence showing that these receptors also control the initiation and termination of transmitter release by directly interacting with core proteins in the exocytotic machinery. This novel mechanism has important implications for understanding the regulation of transmitter release, synaptic plasticity and neuronal circuit properties.
机译:普遍认为,快速突触中递质释放的启动是由快速的Ca2 +进入触发的,并且释放的终止是通过从释放位点下方去除Ca2 +来控制的。我们认为,尽管Ca2 +对于释放至关重要,但快速进入动力学使Ca2 +无法成为释放开始的限制因素,而相对缓慢的Ca2 +去除不能成为释放终止的限制因素。我们建议并为控制神经递质从神经末梢快速释放(在毫秒范围内)的新型发射器的一般机制提供支持证据。根据此机制,两个因素控制释放:Ca2 +和电压敏感的突触前抑制性G蛋白偶联受体(GPCR)。已知抑制性自受体介导递质释放的缓慢反馈抑制。我们讨论的证据表明,这些受体还通过与胞外机制中的核心蛋白直接相互作用来控制发射器释放的起始和终止。这种新颖的机制对于理解调节递质释放,突触可塑性和神经元回路特性具有重要意义。

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