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线圈方向对经颅磁刺激手部运动区诱发电场的影响。

Effects of coil orientation on the electric field induced by TMS over the hand motor area.

机构信息

Department of Computer Science and Engineering, Nagoya Institute of Technology, Nagoya, Japan.

出版信息

Phys Med Biol. 2014 Jan 6;59(1):203-18. doi: 10.1088/0031-9155/59/1/203. Epub 2013 Dec 13.

Abstract

Responses elicited by transcranial magnetic stimulation (TMS) over the hand motor area depend on the position and orientation of the stimulating coil. In this work, we computationally investigate the induced electric field for multiple coil orientations and locations in order to determine which parts of the brain are affected and how the sensitivity of motor cortical activation depends on the direction of the electric field. The finite element method is used for calculating the electric field induced by TMS in two individual anatomical models of the head and brain. The orientation of the coil affects both the strength and depth of penetration of the electric field, and the field strongly depends on the direction of the sulcus, where the target neurons are located. The coil position that gives the strongest electric field in the target cortical region may deviate from the closest scalp location by a distance on the order of 1 cm. Together with previous experimental data, the results support the hypothesis that the cortex is most sensitive to fields oriented perpendicular to the cortical layers, while it is relatively insensitive to fields parallel to them. This has important implications for targeting of TMS. To determine the most effective coil position and orientation, it is essential to consider both biological (the direction of the targeted axons) and physical factors (the strength and direction of the electric field).

摘要

经颅磁刺激(TMS)在手运动区上的刺激所引起的反应取决于刺激线圈的位置和方向。在这项工作中,我们通过计算来研究多个线圈位置和方向的感应电场,以确定大脑的哪些部位受到影响,以及运动皮质激活的灵敏度如何取决于电场的方向。我们使用有限元方法来计算头部和大脑的两个个体解剖模型中 TMS 引起的电场。线圈的方向会影响电场的强度和穿透深度,并且该场强烈依赖于目标神经元所在的沟的方向。在目标皮质区域中产生最强电场的线圈位置可能会偏离头皮位置 1 厘米左右。结合以前的实验数据,结果支持了这样一种假设,即皮层对垂直于皮层层的场最敏感,而对与之平行的场相对不敏感。这对 TMS 的靶向具有重要意义。为了确定最有效的线圈位置和方向,必须同时考虑生物因素(靶向轴突的方向)和物理因素(电场的强度和方向)。

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