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树突棘阻止突触电压箝位。

Dendritic Spines Prevent Synaptic Voltage Clamp.

机构信息

Department of Brain and Cognitive Sciences, McGovern Institute for Brain Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Department of Brain and Cognitive Sciences, McGovern Institute for Brain Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Neuron. 2018 Jan 3;97(1):75-82.e3. doi: 10.1016/j.neuron.2017.11.016. Epub 2017 Dec 14.

Abstract

Synapses are the fundamental units of information processing in the mammalian brain. Much of our understanding of their functional properties comes from voltage-clamp analysis, the predominant approach for investigating synaptic physiology. Here, we reveal that voltage clamp is completely ineffective for most excitatory synapses due to spine electrical compartmentalization. Under local dendritic voltage clamp, single-spine activation produced large spine head depolarizations that severely distorted measurements and recruited voltage-dependent channels. To overcome these voltage-clamp errors, we developed an approach to provide new, accurate measurements of synaptic conductance. Single-synapse AMPA conductance was much larger than previously appreciated, producing saturation effects on synaptic currents. We conclude that electrical compartmentalization profoundly shapes both synaptic function and how that function can be assessed with electrophysiological methods.

摘要

突触是哺乳动物大脑中信息处理的基本单位。我们对其功能特性的大部分理解来自电压钳分析,这是研究突触生理学的主要方法。在这里,我们揭示了由于脊柱电分隔,电压钳对于大多数兴奋性突触完全无效。在局部树突电压钳下,单棘突激活会产生很大的棘突头部去极化,严重扭曲测量结果并募集电压依赖性通道。为了克服这些电压钳误差,我们开发了一种提供新的、准确的突触电导测量方法。单突触 AMPA 电导比以前认为的要大得多,对突触电流产生饱和效应。我们的结论是,电分隔深刻地塑造了突触功能以及如何用电生理方法评估这种功能。

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