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电突触可塑性的设计原则。

Design principles of electrical synaptic plasticity.

作者信息

O'Brien John

机构信息

McGovern Medical School, The University of Texas Health Science Center at Houston, 6431 Fannin St., MSB 7.024, Houston, TX 77030, USA.

出版信息

Neurosci Lett. 2019 Mar 16;695:4-11. doi: 10.1016/j.neulet.2017.09.003. Epub 2017 Sep 8.

Abstract

Essentially all animals with nervous systems utilize electrical synapses as a core element of communication. Electrical synapses, formed by gap junctions between neurons, provide rapid, bidirectional communication that accomplishes tasks distinct from and complementary to chemical synapses. These include coordination of neuron activity, suppression of voltage noise, establishment of electrical pathways that define circuits, and modulation of high order network behavior. In keeping with the omnipresent demand to alter neural network function in order to respond to environmental cues and perform tasks, electrical synapses exhibit extensive plasticity. In some networks, this plasticity can have dramatic effects that completely remodel circuits or remove the influence of certain cell types from networks. Electrical synaptic plasticity occurs on three distinct time scales, ranging from milliseconds to days, with different mechanisms accounting for each. This essay highlights principles that dictate the properties of electrical coupling within networks and the plasticity of the electrical synapses, drawing examples extensively from retinal networks.

摘要

基本上,所有具有神经系统的动物都将电突触作为通信的核心要素。电突触由神经元之间的间隙连接形成,提供快速、双向通信,完成与化学突触不同且互补的任务。这些任务包括神经元活动的协调、电压噪声的抑制、定义电路的电通路的建立以及高阶网络行为的调节。为了响应环境线索并执行任务,神经网络功能需要不断改变,电突触也因此具有广泛的可塑性。在一些网络中,这种可塑性会产生显著影响,完全重塑电路或消除某些细胞类型对网络的影响。电突触可塑性发生在三个不同的时间尺度上,从毫秒到数天不等,每个时间尺度都有不同的机制。本文重点介绍了决定网络内电耦合特性和电突触可塑性的原理,并广泛引用视网膜网络的例子。

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