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Highly Heterogeneous Excitatory Connections Require Less Amount of Noise to Sustain Firing Activities in Cortical Networks

机译:高度异类的兴奋性连接需要较少的噪声以维持皮质网络中的射击活动

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摘要

Cortical networks both in vivo and in vitro sustain asynchronous irregular firings with extremely low frequency. To realize such self-sustained activity in neural network models, balance between excitatory and inhibitory activities is known to be one of the keys. In addition, recent theoretical studies have revealed that another feature commonly observed in cortical networks, i.e., sparse but strong connections and dense weak connections, plays an essential role. The previous studies, however, have not thoroughly considered the cooperative dynamics between a network of such heterogeneous synaptic connections and intrinsic noise. The noise stimuli, representing inherent nature of the neuronal activities, e.g., variability of presynaptic discharges, should be also of significant importance for sustaining the irregular firings in cortical networks. Here, we numerically demonstrate that highly heterogeneous distribution, typically a lognormal type, of excitatory-to-excitatory connections, reduces the amount of noise required to sustain the network firing activities. In the sense that noise consumes an energy resource, the heterogeneous network receiving less amount of noise stimuli is considered to realize an efficient dynamics in cortex. A noise-driven network of bi-modally distributed synapses further shows that many weak and a few very strong synapses are the key feature of the synaptic heterogeneity, supporting the network firing activity.
机译:体内和体外的皮质网络都以极低的频率维持异步不规则点火。为了在神经网络模型中实现这种自我维持的活动,兴奋和抑制活动之间的平衡是关键之一。另外,最近的理论研究表明,在皮质网络中通常观察到的另一特征,即稀疏而强的连接和密集的弱连接起着重要的作用。但是,先前的研究尚未充分考虑这种异类突触连接的网络与固有噪声之间的协作动力学。噪声刺激代表神经元活动的固有性质,例如突触前放电的变化,对于维持皮层网络的不规则放电也具有重要意义。在这里,我们从数值上证明了高度异质的分布(通常是对数正态类型)的兴奋性到兴奋性连接减少了维持网络激发活动所需的噪声量。从噪声消耗能量的意义上讲,接收较少数量的噪声刺激的异构网络被认为可以实现皮质中的有效动力学。噪声驱动的双峰分布突触网络进一步表明,许多弱突触和一些非常强突触是突触异质性的关键特征,支持网络激发活动。

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