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癫痫发作期间自适应自组织临界性失败。

Failure of adaptive self-organized criticality during epileptic seizure attacks.

机构信息

Biological Physics Section, Max Planck Institute for the Physics of Complex Systems, Dresden, Germany.

出版信息

PLoS Comput Biol. 2012 Jan;8(1):e1002312. doi: 10.1371/journal.pcbi.1002312. Epub 2012 Jan 5.

Abstract

Critical dynamics are assumed to be an attractive mode for normal brain functioning as information processing and computational capabilities are found to be optimal in the critical state. Recent experimental observations of neuronal activity patterns following power-law distributions, a hallmark of systems at a critical state, have led to the hypothesis that human brain dynamics could be poised at a phase transition between ordered and disordered activity. A so far unresolved question concerns the medical significance of critical brain activity and how it relates to pathological conditions. Using data from invasive electroencephalogram recordings from humans we show that during epileptic seizure attacks neuronal activity patterns deviate from the normally observed power-law distribution characterizing critical dynamics. The comparison of these observations to results from a computational model exhibiting self-organized criticality (SOC) based on adaptive networks allows further insights into the underlying dynamics. Together these results suggest that brain dynamics deviates from criticality during seizures caused by the failure of adaptive SOC.

摘要

临界动力学被认为是正常大脑功能的一种有吸引力的模式,因为信息处理和计算能力在临界状态下被发现是最佳的。最近对神经元活动模式的实验观察表明,这些活动模式遵循幂律分布,这是处于临界状态的系统的标志,这导致了一个假设,即人类大脑动力学可能处于有序和无序活动之间的相变状态。到目前为止,一个悬而未决的问题涉及到临界大脑活动的医学意义,以及它与病理状况的关系。使用来自人类侵入性脑电图记录的数据,我们表明,在癫痫发作期间,神经元活动模式偏离了通常观察到的临界动力学特征的幂律分布。将这些观察结果与基于自适应网络的自组织临界性(SOC)的计算模型的结果进行比较,可以进一步深入了解潜在的动力学。这些结果表明,在自适应 SOC 失效引起的癫痫发作期间,大脑动力学偏离了临界性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/428a/3252275/a842c6408c4e/pcbi.1002312.g001.jpg

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