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经颅磁刺激、突触可塑性与网络振荡

Transcranial magnetic stimulation, synaptic plasticity and network oscillations.

作者信息

Huerta Patricio T, Volpe Bruce T

机构信息

Weill Medical College at Cornell University, Department of Neurology and Neuroscience, Burke Cornell Medical Research Institute, White Plains, NY 10605, USA.

出版信息

J Neuroeng Rehabil. 2009 Mar 2;6:7. doi: 10.1186/1743-0003-6-7.

Abstract

Transcranial magnetic stimulation (TMS) has quickly progressed from a technical curiosity to a bona-fide tool for neurological research. The impetus has been due to the promising results obtained when using TMS to uncover neural processes in normal human subjects, as well as in the treatment of intractable neurological conditions, such as stroke, chronic depression and epilepsy. The basic principle of TMS is that most neuronal axons that fall within the volume of magnetic stimulation become electrically excited, trigger action potentials and release neurotransmitter into the postsynaptic neurons. What happens afterwards remains elusive, especially in the case of repeated stimulation. Here we discuss the likelihood that certain TMS protocols produce long-term changes in cortical synapses akin to long-term potentiation and long-term depression of synaptic transmission. Beyond the synaptic effects, TMS might have consequences on other neuronal processes, such as genetic and protein regulation, and circuit-level patterns, such as network oscillations. Furthermore, TMS might have non-neuronal effects, such as changes in blood flow, which are still poorly understood.

摘要

经颅磁刺激(TMS)已迅速从一项技术上的新奇事物发展成为神经学研究的一项名副其实的工具。其推动力在于,使用TMS在正常人类受试者中揭示神经过程以及治疗难治性神经疾病(如中风、慢性抑郁症和癫痫)时取得了令人鼓舞的结果。TMS的基本原理是,大多数位于磁刺激范围内的神经元轴突会被电激发,触发动作电位,并将神经递质释放到突触后神经元中。之后会发生什么仍然难以捉摸,尤其是在重复刺激的情况下。在这里,我们讨论了某些TMS方案在皮质突触中产生类似于突触传递的长时程增强和长时程抑制的长期变化的可能性。除了突触效应外,TMS可能会对其他神经元过程产生影响,如基因和蛋白质调控,以及对电路水平的模式产生影响,如网络振荡。此外,TMS可能会产生非神经元效应,如血流变化,目前对此仍知之甚少。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f27/2653496/c76c3d389e93/1743-0003-6-7-1.jpg

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