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皮质网络中的相关性与种群动态

Correlations and population dynamics in cortical networks.

作者信息

Kriener Birgit, Tetzlaff Tom, Aertsen Ad, Diesmann Markus, Rotter Stefan

机构信息

Bernstein Center for Computational Neuroscience, and Neurobiology and Biophysics, Faculty of Biology, Albert-Ludwigs-University, Freiburg, Germany.

出版信息

Neural Comput. 2008 Sep;20(9):2185-226. doi: 10.1162/neco.2008.02-07-474.

Abstract

The function of cortical networks depends on the collective interplay between neurons and neuronal populations, which is reflected in the correlation of signals that can be recorded at different levels. To correctly interpret these observations it is important to understand the origin of neuronal correlations. Here we study how cells in large recurrent networks of excitatory and inhibitory neurons interact and how the associated correlations affect stationary states of idle network activity. We demonstrate that the structure of the connectivity matrix of such networks induces considerable correlations between synaptic currents as well as between subthreshold membrane potentials, provided Dale's principle is respected. If, in contrast, synaptic weights are randomly distributed, input correlations can vanish, even for densely connected networks. Although correlations are strongly attenuated when proceeding from membrane potentials to action potentials (spikes), the resulting weak correlations in the spike output can cause substantial fluctuations in the population activity, even in highly diluted networks. We show that simple mean-field models that take the structure of the coupling matrix into account can adequately describe the power spectra of the population activity. The consequences of Dale's principle on correlations and rate fluctuations are discussed in the light of recent experimental findings.

摘要

皮质网络的功能取决于神经元和神经元群体之间的集体相互作用,这反映在不同水平上可记录信号的相关性中。为了正确解释这些观察结果,了解神经元相关性的起源很重要。在这里,我们研究兴奋性和抑制性神经元的大型递归网络中的细胞如何相互作用,以及相关的相关性如何影响空闲网络活动的稳定状态。我们证明,只要遵循戴尔原则,此类网络的连接矩阵结构会在突触电流之间以及阈下膜电位之间诱导出相当大的相关性。相反,如果突触权重随机分布,即使对于密集连接的网络,输入相关性也可能消失。尽管从膜电位到动作电位(尖峰)时相关性会大幅减弱,但尖峰输出中产生的弱相关性仍可能导致群体活动出现大幅波动,即使在高度稀疏的网络中也是如此。我们表明,考虑耦合矩阵结构的简单平均场模型可以充分描述群体活动的功率谱。根据最近的实验结果讨论了戴尔原则对相关性和速率波动的影响。

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