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Combined Effects of Feedforward Inhibition and Excitation in Thalamocortical Circuit on the Transitions of Epileptic Seizures

机译:丘脑皮层回路中前馈抑制和激发对癫痫发作转变的联合作用

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摘要

The mechanisms underlying electrophysiologically observed two-way transitions between absence and tonic-clonic epileptic seizures in cerebral cortex remain unknown. The interplay within thalamocortical network is believed to give rise to these epileptic multiple modes of activity and transitions between them. In particular, it is thought that in some areas of cortex there exists feedforward inhibition from specific relay nucleus of thalamus (TC) to inhibitory neuronal population (IN) which has even more stronger functions on cortical activities than the known feedforward excitation from TC to excitatory neuronal population (EX). Inspired by this, we proposed a modified computational model by introducing feedforward inhibitory connectivity within thalamocortical circuit, to systematically investigate the combined effects of feedforward inhibition and excitation on transitions of epileptic seizures. We first found that the feedforward excitation can induce the transition from tonic oscillation to spike and wave discharges (SWD) in cortex, i.e., the epileptic tonic-absence seizures, with the fixed weak feedforward inhibition. Thereinto, the phase of absence seizures corresponding to strong feedforward excitation can be further transformed into the clonic oscillations with the increasing of feedforward inhibition, representing the epileptic absence-clonic seizures. We also observed the other fascinating dynamical states, such as periodic 2/3/4-spike and wave discharges, reversed SWD and clonic oscillations, as well as saturated firings. More importantly, we can identify the stable parameter regions representing the tonic-clonic oscillations and SWD discharges of epileptic seizures on the 2-D plane composed of feedforward inhibition and excitation, where the physiologically plausible transition pathways between tonic-clonic and absence seizures can be figured out. These results indicate the functional role of feedforward pathways in controlling epileptic seizures and the modified thalamocortical model may provide a guide for future efforts to mechanistically link feedforward pathways in the pathogenesis of epileptic seizures.
机译:电生理观察到的大脑皮层缺失和强直性阵挛性癫痫发作之间的双向转换的潜在机制仍然未知。据认为,丘脑皮层网络内的相互作用会引起这些癫痫的多种活动模式以及它们之间的过渡。特别是,人们认为在皮质的某些区域存在从丘脑的特定中继核(TC)到抑制性神经元群体(IN)的前馈抑制作用,该抑制作用比已知的从TC到兴奋性的前馈激发作用更强。神经元人口(EX)。受此启发,我们通过在丘脑皮层回路中引入前馈抑制连接性,提出了一种改进的计算模型,以系统地研究前馈抑制和激发对癫痫发作转变的综合作用。我们首先发现前馈激发可诱导皮层从强直振荡向尖峰和波放电(SWD)的过渡,即癫痫性强直性癫痫发作,并具有固定的弱前馈抑制作用。其中,与前馈强激发相对应的失神发作的阶段可以随着前馈抑制作用的增加而进一步转变为阵挛性振荡,代表癫痫性失神阵挛性发作。我们还观察到了其他令人着迷的动力学状态,例如周期性的2/3/4尖峰和波放电,反向的SWD和阵阵振荡以及饱和点火。更重要的是,我们可以识别出由前馈抑制和激发组成的二维平面上代表癫痫性发作的强直性阵挛振荡和SWD放电的稳定参数区域,其中强直性阵挛发作和失神性癫痫发作之间的生理上合理的过渡路径可以想通了。这些结果表明前馈途径在控制癫痫发作中的功能作用,并且改良的丘脑皮质模型可能为今后在癫痫发作的发病机理中机械性联系前馈途径提供指导。

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