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基于可塑性相关网络变化和高阶统计的颞叶癫痫新见解。

New Insights on Temporal Lobe Epilepsy Based on Plasticity-Related Network Changes and High-Order Statistics.

机构信息

Laboratório de Neurogenética, Centro de Matemática, Computação e Cognição, Universidade Federal do ABC, São Bernardo do Campo, SP, Brazil.

Departamento de Fisiologia e Biofísica, Instituto de Ciências Biomédicas, Universidade de São Paulo, São Paulo, SP, Brazil.

出版信息

Mol Neurobiol. 2018 May;55(5):3990-3998. doi: 10.1007/s12035-017-0623-2. Epub 2017 May 29.

DOI:10.1007/s12035-017-0623-2
PMID:28555345
Abstract

Epilepsy is a disorder of the brain characterized by the predisposition to generate recurrent unprovoked seizures, which involves reshaping of neuronal circuitries based on intense neuronal activity. In this review, we first detailed the regulation of plasticity-associated genes, such as ARC, GAP-43, PSD-95, synapsin, and synaptophysin. Indeed, reshaping of neuronal connectivity after the primary, acute epileptogenesis event increases the excitability of the temporal lobe. Herein, we also discussed the heterogeneity of neuronal populations regarding the number of synaptic connections, which in the theoretical field is commonly referred as degree. Employing integrate-and-fire neuronal model, we determined that in addition to increased synaptic strength, degree correlations might play essential and unsuspected roles in the control of network activity. Indeed, assortativity, which can be described as a condition where high-degree correlations are observed, increases the excitability of neural networks. In this review, we summarized recent topics in the field, and data were discussed according to newly developed or unusual tools, as provided by mathematical graph analysis and high-order statistics. With this, we were able to present new foundations for the pathological activity observed in temporal lobe epilepsy.

摘要

癫痫是一种以大脑为特征的紊乱,表现为易发生反复发作的、无诱因的癫痫发作,这涉及到基于强烈神经元活动的神经元回路的重塑。在这篇综述中,我们首先详细介绍了与可塑性相关的基因的调控,如 ARC、GAP-43、PSD-95、突触素和突触小泡蛋白。事实上,原发性急性癫痫发生后神经元连接的重塑增加了颞叶的兴奋性。在此,我们还讨论了神经元群体的异质性,即突触连接的数量,在理论领域通常被称为度。我们使用整合和放电神经元模型确定,除了增加突触强度外,度相关性可能在网络活动的控制中发挥重要的、意想不到的作用。事实上,正关联性(assortativity),即观察到的高度数相关性的条件,会增加神经网络的兴奋性。在这篇综述中,我们总结了该领域的最新主题,并根据数学图分析和高阶统计等新开发或不常见的工具讨论了数据。通过这些,我们为颞叶癫痫中观察到的病理性活动提供了新的基础。

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