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经颅直流电刺激的皮层兴奋性:一种计算方法。

Cortical Excitability through Anodal Transcranial Direct Current Stimulation: a Computational Approach.

机构信息

Biomedical Systems Laboratory, Multimedia, Analytics, Networks and Systems Group, School of Computing and Electrical Engineering, Indian Institute of Technology Mandi, Kamand, Mandi, Himachal Pradesh, India.

出版信息

J Med Syst. 2020 Jan 3;44(2):48. doi: 10.1007/s10916-019-1490-3.

Abstract

The present study analyzes the effect of various anodal transcranial direct current stimulation (tDCS) configurations in terms of electric field and voltage distribution. The work aims to assess the role of tDCS configurations considering subject's specific anatomy in a computational framework. The study considers the effect of conventional and high definition transcranial direct current stimulation (HD-tDCS) by using synthetic magnetic resonance image (MRI) volumes for normal brain and brain with multiple sclerosis (MS) lesions. The configurations presented in this study compare the effect of various m x n HD-tDCS and conventional tDCS on standard Montreal Neurological Institute (MNI152) head model which is a T1 MRI volume obtained by averaging 152 individuals at 1 mm resolution. The study evaluates the role of disc, ring, and pad electrodes in various configurations of tDCS application. The approximate surface area for each electrode in HD-tDCS application considered in the study is 113 mm. The significant difference in voltage distribution has been observed due to 1 × 1 HD-tDCS configuration on synthetic MRI of normal and lesion brain using disc and ring electrodes. For region specific approach, outer ring structured electrode configuration - an extended m x n HD-tDCS configuration is presented in this study. The proposed outer ring HD-tDCS configuration has been compared with m × 1 and m × 2 HD-tDCS configurations with different types of electrodes in terms of focality, induced electric field and voltage generated. On the basis of the insights gained from the analysis of various tDCS configurations on standard, normal and lesion structural data, the design of HD-tDCS as a tool in neuro-rehabilitation has been proposed. This computational model approach is useful in fixing various parameters of current stimulation: intensity, type and arrangement of electrodes and target region by using structural MRI data of an individual prior to the real stimulation in clinical trials.

摘要

本研究分析了各种阳极经颅直流电刺激(tDCS)配置在电场和电压分布方面的效果。该工作旨在评估在计算框架中考虑受试者特定解剖结构的 tDCS 配置的作用。该研究考虑了常规和高定义经颅直流电刺激(HD-tDCS)的影响,使用正常大脑和多发性硬化症(MS)病变大脑的合成磁共振成像(MRI)体积。本研究中提出的配置比较了各种 m x n HD-tDCS 和常规 tDCS 对标准蒙特利尔神经学研究所(MNI152)头部模型的影响,该模型是通过在 1 毫米分辨率下对 152 个人进行平均获得的 T1 MRI 体积。该研究评估了盘形、环形和垫形电极在各种 tDCS 应用配置中的作用。在研究中考虑的 HD-tDCS 应用中,每个电极的近似表面积为 113 毫米。使用盘形和环形电极,在正常和病变大脑的合成 MRI 上观察到 1x1 HD-tDCS 配置的电压分布有显著差异。对于特定区域的方法,本研究提出了一种外环形结构电极配置——一种扩展的 m x n HD-tDCS 配置。在聚焦性、诱导电场和产生的电压方面,与 m x 1 和 m x 2 HD-tDCS 配置相比,提出的外环形 HD-tDCS 配置与不同类型的电极进行了比较。基于对标准、正常和病变结构数据上各种 tDCS 配置的分析得出的见解,提出了将 HD-tDCS 设计为神经康复工具。这种计算模型方法可用于在临床试验前使用个体的结构 MRI 数据来固定电流刺激的各种参数:强度、电极类型和排列以及目标区域。

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