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场效应与发作期同步性:人体观察的见解

Field effects and ictal synchronization: insights from in homine observations.

作者信息

Weiss Shennan A, McKhann Guy, Goodman Robert, Emerson Ronald G, Trevelyan Andrew, Bikson Marom, Schevon Catherine A

机构信息

Department of Neurology, Schevon Lab, Columbia University New York, NY, USA.

Department of Neurosurgery, Columbia University New York, NY, USA.

出版信息

Front Hum Neurosci. 2013 Dec 5;7:828. doi: 10.3389/fnhum.2013.00828.

Abstract

It has been well established in animal models that electrical fields generated during inter-ictal and ictal discharges are strong enough in intensity to influence action potential firing threshold and synchronization. We discuss recently published data from microelectrode array recordings of human neocortical seizures and speculate about the possible role of field effects in neuronal synchronization. We have identified two distinct seizure territories that cannot be easily distinguished by traditional EEG analysis. The ictal core exhibits synchronized neuronal burst firing, while the surrounding ictal penumbra exhibits asynchronous and relatively sparse neuronal activity. In the ictal core large amplitude rhythmic ictal discharges produce large electric fields that correspond with highly synchronous neuronal firing. In the penumbra rhythmic ictal discharges are smaller in amplitude, but large enough to influence spike timing, yet neuronal synchrony is not observed. These in homine observations are in accord with decades of animal studies supporting a role of field effects in neuronal synchronization during seizures, yet also highlight how field effects may be negated in the presence of strong synaptic inhibition in the penumbra.

摘要

在动物模型中已经充分证实,发作间期和发作期放电期间产生的电场强度足以影响动作电位发放阈值和同步性。我们讨论了最近发表的关于人类新皮质癫痫发作的微电极阵列记录数据,并推测场效应在神经元同步中的可能作用。我们已经确定了两个不同的癫痫发作区域,传统脑电图分析不易区分它们。发作期核心表现出同步的神经元爆发性放电,而周围的发作期半暗带表现出异步且相对稀疏的神经元活动。在发作期核心,大幅度的节律性发作期放电产生与高度同步神经元放电相对应的大电场。在半暗带,节律性发作期放电幅度较小,但足以影响尖峰时间,然而未观察到神经元同步。这些人体观察结果与数十年来的动物研究一致,支持场效应在癫痫发作期间神经元同步中的作用,但也突出了在半暗带存在强突触抑制时场效应可能如何被抵消。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e9e/3851829/63fe09195c31/fnhum-07-00828-g0001.jpg

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