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I 波起源和调制。

I-wave origin and modulation.

机构信息

Institute of Neurology, Università Cattolica, Rome, Italy.

出版信息

Brain Stimul. 2012 Oct;5(4):512-25. doi: 10.1016/j.brs.2011.07.008. Epub 2011 Sep 6.

DOI:10.1016/j.brs.2011.07.008
PMID:21962980
Abstract

The human motor cortex can be activated by transcranial magnetic stimulation (TMS) evoking a high-frequency repetitive discharge of corticospinal neurones. The exact physiologic mechanisms producing the corticospinal activity still remain unclear because of the complexity of the interactions between the currents induced in the brain and the circuits of cerebral cortex, composed of multiple excitatory and inhibitory neurons and axons of different size, location, orientation and function. The aim of current paper is to evaluate whether the main characteristics of the activity evoked by single- and paired-pulse and repetitive TMS, can be accounted by the interaction of the induced currents in the brain with the key anatomic features of a simple cortical circuit composed of the superficial population of excitatory pyramidal neurons of layers II and III, the large pyramidal neurons in layer V, and the inhibitory GABA cells. This circuit represents the minimum architecture necessary for capturing the most essential cortical input-output operations of neocortex. The interaction between the induced currents in the brain and this simple model of cortical circuitry might explain the characteristics and nature of the repetitive discharge evoked by TMS, including its regular and rhythmic nature and its dose-dependency and pharmacologic modulation. The integrative properties of the circuit also provide a good framework for the interpretation of the changes in the cortical output produced by paired and repetitive TMS.

摘要

经颅磁刺激(TMS)可激活人类运动皮层,引起皮质脊髓神经元高频重复放电。由于大脑中诱导电流与由多个兴奋性和抑制性神经元及不同大小、位置、方向和功能的轴突组成的大脑皮层回路之间的相互作用十分复杂,因此产生皮质脊髓活动的确切生理机制仍不清楚。本文的目的是评估单脉冲和双脉冲以及重复 TMS 诱发的活动的主要特征是否可以用大脑中诱导电流与由浅层 II 和 III 层兴奋性锥体神经元、V 层大锥体神经元和 GABA 抑制性细胞组成的简单皮质回路的关键解剖特征之间的相互作用来解释。该回路代表了捕获新皮层最基本皮质输入输出操作所需的最小结构。大脑中诱导电流与这种简单的皮质电路模型之间的相互作用可以解释 TMS 诱发的重复放电的特征和性质,包括其规则和节律性以及其剂量依赖性和药物调节。该电路的整合特性也为解释由双脉冲和重复 TMS 产生的皮质输出变化提供了良好的框架。

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