A model of stimulus induced epileptic spike-wave discharges

P. Taylor, G. Baier, S. Cash, J. Dauwels, J. Slotine, Yujiang Wang
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引用次数: 30

Abstract

Recent clinical and experimental evidence suggests that the spike-wave discharges (SWD) of absence seizures result from local activity within a hyperexcitable cortical region with rapid generalization through thalamocortical networks. The cortical focus is said to react more strongly to stimulation than other areas. We seek to develop a model which is in agreement with these recent experimental findings and suggest a possible explanation. In this study we extend an existing neural field model of thalamocortical interaction to account for multiple cortical regions which are connected according connectivity inferred from a clinically diagnosed epileptic patient. We stimulate at different model electrodes and investigate the resulting seizure duration. We observe that stimulation of only a small subset (11%) of model electrodes can lead to the rapid generalisation of SWD via both corticocortical and thalamocortical pathways. We find that the resulting model dynamics (seizure duration) varies significantly dependent upon the nodes stimulated and the amplitude of the stimulus. Our model indicates that heterogeneities in corticocortical connectivity could serve as a possible reason for the cortical focus and provides a platform for in silico hypothesis generation in complement to in vivo hypothesis validation.
刺激诱发的癫痫尖波放电模型
最近的临床和实验证据表明,失神性癫痫发作的尖波放电(SWD)是由高兴奋皮质区域的局部活动引起的,并通过丘脑皮质网络迅速推广。据说,皮质焦点对刺激的反应比其他区域更强烈。我们试图建立一个与这些最近的实验结果一致的模型,并提出一个可能的解释。在这项研究中,我们扩展了现有的丘脑皮质相互作用的神经场模型,以解释根据临床诊断的癫痫患者推断的连接而连接的多个皮质区域。我们在不同的模型电极上进行刺激,并研究由此产生的癫痫发作持续时间。我们观察到,只有一小部分(11%)的模型电极的刺激可以通过皮质和丘脑皮质途径导致SWD的快速泛化。我们发现,由此产生的模型动力学(癫痫发作持续时间)在很大程度上取决于受刺激的节点和刺激的幅度。我们的模型表明,皮质-皮质连接的异质性可能是皮层聚焦的一个可能原因,并为计算机假设生成提供了一个平台,以补充体内假设验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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