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在具有电突触和阈下共振的网络中,由噪声驱动的稳态产生的振荡。

Oscillations emerging from noise-driven steady state in networks with electrical synapses and subthreshold resonance.

作者信息

Tchumatchenko Tatjana, Clopath Claudia

机构信息

Department Theory of Neural Dynamics, Max Planck Institute for Brain Research, Max-von-Laue Strasse 4, 60438 Frankfurt am Main, Germany.

Department of Bioengineering, Imperial College London, South Kensington Campus, London SW7 2AZ, UK.

出版信息

Nat Commun. 2014 Nov 18;5:5512. doi: 10.1038/ncomms6512.

Abstract

Oscillations play a critical role in cognitive phenomena and have been observed in many brain regions. Experimental evidence indicates that classes of neurons exhibit properties that could promote oscillations, such as subthreshold resonance and electrical gap junctions. Typically, these two properties are studied separately but it is not clear which is the dominant determinant of global network rhythms. Our aim is to provide an analytical understanding of how these two effects destabilize the fluctuation-driven state, in which neurons fire irregularly, and lead to an emergence of global synchronous oscillations. Here we show how the oscillation frequency is shaped by single neuron resonance, electrical and chemical synapses.The presence of both gap junctions and subthreshold resonance are necessary for the emergence of oscillations. Our results are in agreement with several experimental observations such as network responses to oscillatory inputs and offer a much-needed conceptual link connecting a collection of disparate effects observed in networks.

摘要

振荡在认知现象中起着关键作用,并且在许多脑区都有观察到。实验证据表明,神经元类别表现出可能促进振荡的特性,如阈下共振和电突触。通常,这两种特性是分别研究的,但尚不清楚哪一种是全局网络节律的主要决定因素。我们的目标是对这两种效应如何破坏波动驱动状态(即神经元不规则放电的状态)并导致全局同步振荡的出现提供一种分析性理解。在这里,我们展示了振荡频率是如何由单个神经元共振、电突触和化学突触塑造的。振荡的出现需要同时存在间隙连接和阈下共振。我们的结果与一些实验观察结果一致,如网络对振荡输入的响应,并提供了一个急需的概念联系,将在网络中观察到的一系列不同效应联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4d2/4243246/6382b997e764/ncomms6512-f1.jpg

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