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首页> 外文期刊>NeuroImage >Transcranial direct current stimulation (tDCS) in a realistic head model.
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Transcranial direct current stimulation (tDCS) in a realistic head model.

机译:在现实的头部模型中经颅直流电刺激(tDCS)。

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摘要

Distributions of current produced by transcranial direct current stimulation (tDCS) in humans were predicted by a finite-element model representing several individual and collective refinements over prior efforts. A model of the entire human head and brain was made using a finely meshed (1.1x1.1x1.4mm(3) voxel) tissue dataset derived from the MRI data set of a normal human brain. The conductivities of ten tissues were simulated (bone, scalp, blood, CSF, muscle, white matter, gray matter, sclera, fat, and cartilage). We then modeled the effect of placing a "stimulating" electrode with a saline-like conductivity over F3, and a similar "reference" electrode over a right supraorbital (RS) location, as well as the complements of these locations, to compare expectations derived from the simulation with experimental data also using these locations in terms of the presence or absence of subjective and objective effects. The sensitivity of the results to changes in conductivity values were examined by varying white matter conductivity over a factor of ten. Our simulations established that high current densities were found directly under the stimulating and reference electrodes, but values of the same order of magnitude occurred in other structures, and many areas of the brain that might be behaviorally active were also subjected to what may be substantial amounts of current. The modeling also suggests that more targeted stimulations might be achieved by different electrode topologies.
机译:通过颅内直流电刺激(tDCS)在人体内产生的电流分布是通过一个有限元模型来预测的,该模型代表了先前工作中的几个个体和集体的改进。使用源自正常人脑的MRI数据集的细网格(1.1x1.1x1.4mm(3)体素)组织数据集制作了整个人的头部和大脑的模型。模拟了十种组织(骨骼,头皮,血液,CSF,肌肉,白质,灰质,巩膜,脂肪和软骨)的电导率。然后,我们模拟了在F3上放置一个类似盐水的“刺激性”电极,在右眶上(RS)位置以及这些位置的补体上放置一个类似的“参考”电极的效果,以比较预期的结果从带有实验数据的模拟中也可以根据主观和客观效果的存在或不存在使用这些位置。通过改变白质电导率十倍来检查结果对电导率值变化的敏感性。我们的模拟结果表明,在刺激电极和参比电极的正下方可以找到高电流密度,但是在其他结构中出现了相同数量级的值,并且大脑中许多可能具有行为活跃性的区域也受到了相当大的影响当前。该模型还表明,通过不同的电极拓扑可以实现更有针对性的刺激。

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