Metwally Mohamed K, Cho Young Sun, Park Hae-Jeong, Kim Tae-Seong
Department of Biomedical Engineering, Kyung Hee University, Yongin, Gyeonggi, Republic of Korea.
Annu Int Conf IEEE Eng Med Biol Soc. 2012;2012:5514-7. doi: 10.1109/EMBC.2012.6347243.
Transcranial Direct Current Stimulation (tDCS) is considered as one of the promising techniques for noninvasive brain stimulation and brain disease therapy. In this study, we have investigated the effect of skull and white matter (WM) anisotropy on the induced electric field (EF) by tDCS in two different montages; one using a pair of clinically used rectangular pad electrodes and the other 4(cathodes)+1(anode) ring electrodes. Using a gyri-specific finite element (FE) head model, we simulated tDCS and investigated the radial and tangential components of the induced EF in terms of their distribution over the cortical surface besides the distribution of the transverse and longitudinal components within WM. The results show that the tangential component of the EF on the cortical surface seems to be the main cause of the cortical stimulation of tDCS. Also WM anisotropy seems to increase the dispersion of the transverse component of the EF that affects the dispersion of the EF magnitude within the WM region.
经颅直流电刺激(tDCS)被认为是用于无创脑刺激和脑部疾病治疗的有前景的技术之一。在本研究中,我们研究了颅骨和白质(WM)各向异性对两种不同电极配置下tDCS诱发电场(EF)的影响;一种使用一对临床常用的矩形贴片电极,另一种是4个(阴极)+1个(阳极)环形电极。使用特定脑回的有限元(FE)头部模型,我们模拟了tDCS,并研究了诱发EF的径向和切向分量在皮质表面的分布,以及WM内横向和纵向分量的分布。结果表明,皮质表面EF的切向分量似乎是tDCS皮质刺激的主要原因。此外,WM各向异性似乎会增加EF横向分量的离散度,这会影响WM区域内EF大小的离散度。