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Computational modeling of depth-EEG signals observed in interictal to ictal transition in human temporal lobe epilepsy

机译:在人类颞叶癫痫发作的发作过程中观察到的深度脑电信号的计算模型

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Focuses on high-frequency EEG activities (gamma band), a characteristic electrophysiological pattern observed during interictal to ictal transition in human epilepsy. Starting from recently published results about i) the behavior of inhibitory interneurons in hippocampal or neocortical networks in the generation of gamma frequency oscillations, ii) the nonuniform alteration of GABAergic inhibition in experimental epilepsy (reduced dendritic inhibition and increased somatic inhibition) and iii) the possible depression of GABA/sub A,fast/ circuit activity by GABA/sub A,slow/ inhibitory post-synaptic currents, this paper describes a new computational macroscopic model of EEG activity that includes a physiologically relevant fast inhibitory feedback loop. Results show that strikingly realistic activities are produced by the model when compared to real depth-EEG epileptic signals recorded with intracerebral electrodes. They show that the transition between interictal to fast ictal activity is explained, in the model, by the impairment of dendritic inhibition.
机译:专注于高频脑电活动(γ波段),这是人类癫痫发作从发作到发作的一种典型的电生理模式。从最近发表的以下结果开始:i)抑制性中间神经元在伽马频率振荡的产生中在海马或新皮层网络中的行为; ii)实验性癫痫中GABA能抑制的不均匀改变(减少的树突状抑制和增加的体细胞抑制),以及iii) GABA / sub A可能抑制GABA / sub A的快速/电路活动,突触后电流缓慢/抑制,本文描述了一种新的脑电活动的宏观计算模型,其中包括生理相关的快速抑制反馈回路。结果表明,与用脑内电极记录的真实深度EEG癫痫信号相比,该模型产生了惊人的现实活动。他们表明,在模型中,由树突抑制作用的损害解释了从发作期到快速发作之间的过渡。

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