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Modeling the current distribution during transcranial direct current stimulation.

机译:模拟经颅直流电刺激过程中的电流分布。

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OBJECTIVE: To investigate the spatial distribution of the magnitude and direction of the current density in the human head during transcranial direct current stimulation (tDCS). METHODS: The current density distribution was calculated using a numerical method to implement a standard spherical head model into which current was injected by means of large electrodes. The model was positioned in 'MNI space' to facilitate the interpretation of spatial coordinates. RESULTS: The magnitude and direction of the current density vector are illustrated in selected brain slices for four different electrode montages. Approximately half of the current injected during tDCS is shunted through the scalp, depending on electrode dimension and position. Using stimulating currents of 2.0 mA, the magnitude of the current density in relevant regions of the brain is of the order of 0.1 A/m2, corresponding to an electric field of 0.22 V/m. CONCLUSIONS: Calculations based on a spherical model of the head can provide useful information about the magnitude and direction of the current density vector in the brain during tDCS, taking into account the geometry and position of the electrodes. Despite the inherent limitations of the spherical head model, the calculated values are comparable to those used in the most recent in vitro studies on modulation of neuronal activity. SIGNIFICANCE: The methodology presented in this paper may be used to assess the current distribution during tDCS using new electrode montages, to help optimize montages that target a specific region of the brain or to preliminarily investigate compliance with safety guidelines.
机译:目的:研究经颅直流电刺激(tDCS)时人头部电流密度的大小和方向的空间分布。方法:使用数值方法计算电流密度分布,以实现标准的球形头模型,该模型通过大电极注入电流。该模型位于“ MNI空间”中,以方便空间坐标的解释。结果:电流密度矢量的大小和方向在四个不同电极蒙太奇的选定脑切片中得到了说明。根据电极尺寸和位置,在tDCS期间注入的电流中约有一半会通过头皮分流。使用2.0 mA的刺激电流,大脑相关区域的电流密度的大小约为0.1 A / m2,对应于0.22 V / m的电场。结论:基于头部的球形模型的计算可以提供有关tDCS期间大脑中电流密度矢量的大小和方向的有用信息,同时考虑电极的几何形状和位置。尽管球头模型存在固有的局限性,但计算值可与最近进行的有关神经元活动调节的体外研究中使用的值相比较。重要性:本文中介绍的方法可用于使用新的电极蒙太奇评估tDCS期间的电流分布,帮助优化针对大脑特定区域的蒙太奇,或初步研究对安全指导的依从性。

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