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组织各向异性对经颅直流电刺激中电场径向和切向分量的影响

The effect of tissue anisotropy on the radial and tangential components of the electric field in transcranial direct current stimulation.

作者信息

Metwally Mohamed K, Han Seung Moo, Kim Tae-Seong

机构信息

Department of Biomedical Engineering, College of Electronics and Information, Kyung Hee University, 1 Seocheon-dong, Giheung-gu, Yongin-si, Gyeonggi-do, 446-701, Republic of Korea.

出版信息

Med Biol Eng Comput. 2015 Oct;53(10):1085-101. doi: 10.1007/s11517-015-1301-z. Epub 2015 May 5.

Abstract

Transcranial direct current stimulation (tDCS) is considered to be a promising technique for noninvasive brain stimulation and brain disease therapy. Recent studies have investigated the distribution of the electric field (EF) magnitude over gyri and sulci and the effect of tissue homogeneity with isotropic electrical conductivities. However, it is well known that the skull and white matter (WM) are highly anisotropic electrically, requiring investigations of their anisotropic effects on the magnitude and the directional components of the induced EF due to the high dependency between neuromodulation and the EF direction. In this study, we investigated the effects of the skull and WM anisotropy on the radial and tangential components of the EF via gyri-specific high-resolution finite element head models. For tDCS, three configurations were investigated: the conventional rectangular pad electrode, a 4(cathodes) +1(anode) ring configuration, and a bilateral configuration. The results showed that the skull anisotropy has a crucial influence on the distribution of the radial EF component. The affected cortical regions by the radial EF were reduced about 22 % when considering the skull anisotropy in comparison with the regions with the skull isotropy. On the other hand, the WM anisotropy strongly alters the EF directionality, especially within the sulci. The electric current tends to flow radially to the cortical surface with the WM anisotropy. This effect increases the affected cortical areas by the radial EF component within the sulcal regions. Our results suggest that one must examine the distribution of the EF components in tDCS, not just the magnitude of the EF alone.

摘要

经颅直流电刺激(tDCS)被认为是一种用于无创脑刺激和脑部疾病治疗的有前景的技术。最近的研究已经调查了电场(EF)强度在脑回和脑沟上的分布以及具有各向同性电导率的组织均匀性的影响。然而,众所周知,颅骨和白质(WM)在电学上具有高度各向异性,由于神经调节与EF方向之间的高度相关性,需要研究它们对感应EF的大小和方向分量的各向异性影响。在本研究中,我们通过特定脑回的高分辨率有限元头部模型研究了颅骨和WM各向异性对EF的径向和切向分量的影响。对于tDCS,研究了三种配置:传统的矩形贴片电极、4(阴极)+1(阳极)环形配置和双侧配置。结果表明,颅骨各向异性对径向EF分量的分布有至关重要的影响。与考虑颅骨各向同性的区域相比,考虑颅骨各向异性时,受径向EF影响的皮质区域减少了约22%。另一方面,WM各向异性强烈改变EF的方向性,尤其是在脑沟内。在WM各向异性的情况下,电流倾向于径向流向皮质表面。这种效应增加了脑沟区域内径向EF分量所影响的皮质面积。我们的结果表明,在tDCS中必须检查EF分量的分布,而不仅仅是EF的大小。

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