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时间同步的突触抑制塑造 NMDA 尖峰,影响皮质神经元的局部树突处理和全局输入输出特性。

Timed Synaptic Inhibition Shapes NMDA Spikes, Influencing Local Dendritic Processing and Global I/O Properties of Cortical Neurons.

机构信息

Edmond and Lily Safra Center for Brain Sciences, the Hebrew University of Jerusalem, Jerusalem 91904, Israel.

Blue Brain Project, École polytechnique fédérale de Lausanne (EPFL), Biotech Campus, 1202 Geneva, Switzerland.

出版信息

Cell Rep. 2017 Nov 7;21(6):1550-1561. doi: 10.1016/j.celrep.2017.10.035.

Abstract

The NMDA spike is a long-lasting nonlinear phenomenon initiated locally in the dendritic branches of a variety of cortical neurons. It plays a key role in synaptic plasticity and in single-neuron computations. Combining dynamic system theory and computational approaches, we now explore how the timing of synaptic inhibition affects the NMDA spike and its associated membrane current. When impinging on its early phase, individual inhibitory synapses strongly, but transiently, dampen the NMDA spike; later inhibition prematurely terminates it. A single inhibitory synapse reduces the NMDA-mediated Ca current, a key player in plasticity, by up to 45%. NMDA spikes in distal dendritic branches/spines are longer-lasting and more resilient to inhibition, enhancing synaptic plasticity at these branches. We conclude that NMDA spikes are highly sensitive to dendritic inhibition; sparse weak inhibition can finely tune synaptic plasticity both locally at the dendritic branch level and globally at the level of the neuron's output.

摘要

NMDA 峰是一种在多种皮质神经元的树突分支中局部引发的长时程非线性现象。它在突触可塑性和单神经元计算中起着关键作用。我们现在结合动态系统理论和计算方法来探讨突触抑制的时间如何影响 NMDA 峰及其相关的膜电流。当单个抑制性突触在 NMDA 峰的早期相作用时,它们会强烈但短暂地抑制 NMDA 峰;而后期的抑制则会过早地终止它。单个抑制性突触可将 NMDA 介导的 Ca 电流减少多达 45%,这是可塑性中的关键因素。在远端树突分支/棘突中的 NMDA 峰持续时间更长,对抑制的抵抗力更强,从而增强了这些分支的突触可塑性。我们的结论是,NMDA 峰对树突抑制非常敏感;稀疏的弱抑制可以在树突分支水平上局部精细地调节突触可塑性,也可以在神经元输出水平上全局地调节。

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