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具有延迟反馈的爆发性神经元的放电反应。

Firing responses of bursting neurons with delayed feedback.

作者信息

Wu Hui-Ying, Robinson Peter A, Kim Jong Won

机构信息

School of Physics, The University of Sydney, Sydney, NSW 2006, Australia.

出版信息

J Comput Neurosci. 2011 Aug;31(1):61-71. doi: 10.1007/s10827-010-0302-z. Epub 2010 Dec 17.

Abstract

Thalamic neurons, which play important roles in the genesis of rhythmic activities of the brain, show various bursting behaviors, particularly modulated by complex thalamocortical feedback via cortical neurons. As a first step to explore this complex neural system and focus on the effects of the feedback on the bursting behavior, a simple loop structure delayed in time and scaled by a coupling strength is added to a recent mean-field model of bursting neurons. Depending on the coupling strength and delay time, the modeled neurons show two distinct response patterns: one entrained to the unperturbed bursting frequency of the neurons and one entrained to the resonant frequency of the loop structure. Transitions between these two patterns are explored in the model's parameter space via extensive numerical simulations. It is found that at a fixed loop delay, there is a critical coupling strength at which the dominant response frequency switches from the unperturbed bursting frequency to the loop-induced one. Furthermore, alternating occurrence of these two response frequencies is observed when the delay varies at fixed coupling strength. The results demonstrate that bursting is coupled with feedback to yield new dynamics, which will provide insights into such effects in more complex neural systems.

摘要

丘脑神经元在大脑节律活动的产生中起着重要作用,表现出各种爆发行为,特别是受到经由皮层神经元的复杂丘脑皮层反馈的调节。作为探索这个复杂神经系统并聚焦于反馈对爆发行为影响的第一步,一个在时间上延迟并由耦合强度缩放的简单环路结构被添加到最近的爆发神经元平均场模型中。根据耦合强度和延迟时间,建模的神经元表现出两种不同的响应模式:一种被锁定到神经元的未受干扰的爆发频率,另一种被锁定到环路结构的共振频率。通过广泛的数值模拟在模型的参数空间中探索这两种模式之间的转变。研究发现,在固定的环路延迟下,存在一个临界耦合强度,在该强度下,主导响应频率从未受干扰的爆发频率切换到环路诱导的频率。此外,当延迟在固定耦合强度下变化时,观察到这两种响应频率交替出现。结果表明,爆发与反馈耦合以产生新的动力学,这将为更复杂神经系统中的此类效应提供见解。

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