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了解经颅磁刺激对脑组织的生物物理效应:脑刺激与认知之间的桥梁。

Understanding the biophysical effects of transcranial magnetic stimulation on brain tissue: the bridge between brain stimulation and cognition.

作者信息

Neggers Sebastiaan F W, Petrov Petar I, Mandija Stefano, Sommer Iris E C, van den Berg Nico A T

机构信息

Department of Psychiatry, Brain Center Rudolf Magnus, University Medical Center Utrecht, Utrecht, The Netherlands.

Department of Psychiatry, Brain Center Rudolf Magnus, University Medical Center Utrecht, Utrecht, The Netherlands.

出版信息

Prog Brain Res. 2015;222:229-59. doi: 10.1016/bs.pbr.2015.06.015. Epub 2015 Aug 4.

Abstract

Transcranial magnetic stimulation (TMS) is rapidly being adopted in neuroscience, medicine, psychology, and biology, for basic research purposes, diagnosis, and therapy. However, a coherent picture of how TMS affects neuronal processing, and especially how this in turn influences behavior, is still largely unavailable despite several studies that investigated aspects of the underlying neurophysiological effects of TMS. Perhaps as a result from this "black box approach," TMS studies show a large interindividual variability in applied paradigms and TMS treatment outcome can be quite variable, hampering its general efficacy and introduction into the clinic. A better insight into the biophysical, neuronal, and cognitive mechanisms underlying TMS is crucial in order to apply it effectively in the clinic and to increase our understanding of brain-behavior relationship. Therefore, computational and experimental efforts have been started recently to understand and control the effect TMS has on neuronal functioning. Especially, how the brain shapes magnetic fields induced by a TMS coil, how currents are generated locally in the cortical surface, and how they interact with complex functional neuronal circuits within and between brain areas are crucial to understand the observed behavioral changes and potential therapeutic effects resulting from TMS. Here, we review the current knowledge about the biophysical underpinnings of single-pulse TMS and argue how to move forward to fully understand and exploit the powerful technique that TMS can be.

摘要

经颅磁刺激(TMS)正在迅速被神经科学、医学、心理学和生物学领域采用,用于基础研究、诊断和治疗。然而,尽管有多项研究探讨了TMS潜在神经生理效应的各个方面,但关于TMS如何影响神经元处理,尤其是这如何反过来影响行为的连贯图景仍很大程度上未知。也许正是由于这种“黑箱方法”,TMS研究在应用范式上显示出很大的个体间差异,并且TMS治疗结果可能差异很大,这妨碍了其总体疗效以及引入临床。为了在临床上有效应用TMS并增进我们对脑-行为关系的理解,更好地洞察TMS背后的生物物理、神经元和认知机制至关重要。因此,最近已经开始了计算和实验方面的努力,以了解和控制TMS对神经元功能的影响。特别是,大脑如何塑造由TMS线圈感应产生的磁场,皮层表面如何局部产生电流,以及它们如何与脑区内和脑区之间复杂的功能性神经元回路相互作用,对于理解观察到的行为变化以及TMS产生的潜在治疗效果至关重要。在此,我们综述了关于单脉冲TMS生物物理基础的当前知识,并论证如何进一步全面理解和利用TMS这种强大的技术。

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