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图论分析在大脑复杂网络中的应用。

The application of graph theoretical analysis to complex networks in the brain.

作者信息

Reijneveld Jaap C, Ponten Sophie C, Berendse Henk W, Stam Cornelis J

机构信息

Department of Neurology, VU University Medical Center, P.O. Box 7057, 1007 MB Amsterdam, The Netherlands.

出版信息

Clin Neurophysiol. 2007 Nov;118(11):2317-31. doi: 10.1016/j.clinph.2007.08.010. Epub 2007 Sep 27.

Abstract

Considering the brain as a complex network of interacting dynamical systems offers new insights into higher level brain processes such as memory, planning, and abstract reasoning as well as various types of brain pathophysiology. This viewpoint provides the opportunity to apply new insights in network sciences, such as the discovery of small world and scale free networks, to data on anatomical and functional connectivity in the brain. In this review we start with some background knowledge on the history and recent advances in network theories in general. We emphasize the correlation between the structural properties of networks and the dynamics of these networks. We subsequently demonstrate through evidence from computational studies, in vivo experiments, and functional MRI, EEG and MEG studies in humans, that both the functional and anatomical connectivity of the healthy brain have many features of a small world network, but only to a limited extent of a scale free network. The small world structure of neural networks is hypothesized to reflect an optimal configuration associated with rapid synchronization and information transfer, minimal wiring costs, resilience to certain types of damage, as well as a balance between local processing and global integration. Eventually, we review the current knowledge on the effects of focal and diffuse brain disease on neural network characteristics, and demonstrate increasing evidence that both cognitive and psychiatric disturbances, as well as risk of epileptic seizures, are correlated with (changes in) functional network architectural features.

摘要

将大脑视为一个由相互作用的动态系统构成的复杂网络,为诸如记忆、规划和抽象推理等高级大脑过程以及各种类型的脑部病理生理学提供了新的见解。这种观点为将网络科学中的新见解,如小世界网络和无标度网络的发现,应用于大脑解剖和功能连接的数据提供了机会。在本综述中,我们首先介绍一些关于网络理论的历史和近期进展的背景知识。我们强调网络的结构特性与这些网络动态之间的相关性。随后,我们通过计算研究、体内实验以及人类功能磁共振成像、脑电图和脑磁图研究的证据表明,健康大脑的功能和解剖连接都具有小世界网络的许多特征,但在无标度网络方面仅具有有限的程度。神经网络的小世界结构被假设为反映了一种与快速同步和信息传递、最小布线成本、对某些类型损伤的恢复力以及局部处理与全局整合之间的平衡相关的最优配置。最后,我们综述了关于局灶性和弥漫性脑部疾病对神经网络特征影响的现有知识,并证明越来越多的证据表明,认知和精神障碍以及癫痫发作风险都与功能网络架构特征(的变化)相关。

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