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Finite-Element Model Predicts Current Density Distribution for Clinical Applications of tDCS and tACS

机译:有限元模型预测tDCS和tACS临床应用的电流密度分布

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摘要

Transcranial direct current stimulation (tDCS) has been applied in numerous scientific studies over the past decade. However, the possibility to apply tDCS in therapy of neuropsychiatric disorders is still debated. While transcranial magnetic stimulation (TMS) has been approved for treatment of major depression in the United States by the Food and Drug Administration (FDA), tDCS is not as widely accepted. One of the criticisms against tDCS is the lack of spatial specificity. Focality is limited by the electrode size (35 cm2 are commonly used) and the bipolar arrangement. However, a current flow through the head directly from anode to cathode is an outdated view. Finite-element (FE) models have recently been used to predict the exact current flow during tDCS. These simulations have demonstrated that the current flow depends on tissue shape and conductivity. To face the challenge to predict the location, magnitude, and direction of the current flow induced by tDCS and transcranial alternating current stimulation (tACS), we used a refined realistic FE modeling approach. With respect to the literature on clinical tDCS and tACS, we analyzed two common setups for the location of the stimulation electrodes which target the frontal lobe and the occipital lobe, respectively. We compared lateral and medial electrode configuration with regard to their usability. We were able to demonstrate that the lateral configurations yielded more focused stimulation areas as well as higher current intensities in the target areas. The high resolution of our simulation allows one to combine the modeled current flow with the knowledge of neuronal orientation to predict the consequences of tDCS and tACS. Our results not only offer a basis for a deeper understanding of the stimulation sites currently in use for clinical applications but also offer a better interpretation of observed effects.
机译:在过去的十年中,经颅直流电刺激(tDCS)已用于许多科学研究。然而,将tDCS应用于神经精神疾病的治疗仍存在争议。尽管美国食品药品管理局(FDA)批准了经颅磁刺激(TMS)治疗重度抑郁症,但tDCS并未得到广泛接受。对tDCS的批评之一是缺乏空间特异性。电极的大小受电极尺寸(通常使用35 cm 2 )和双极型结构的限制。但是,从阳极到阴极直接流经磁头的电流已经过时。最近已经使用有限元(FE)模型来预测tDCS期间的确切电流。这些模拟表明,电流取决于组织的形状和电导率。为了应对预测由tDCS和经颅交流电刺激(tACS)引起的电流的位置,大小和方向的挑战,我们使用了一种改进的逼真的有限元建模方法。关于临床tDCS和tACS的文献,我们分析了分别针对额叶和枕叶的刺激电极位置的两种常见设置。我们比较了外侧和内侧电极配置的可用性。我们能够证明,横向配置产生了更多集中的刺激区域以及目标区域中更高的电流强度。我们的仿真具有很高的分辨率,可以将建模的电流与神经元定向知识相结合,以预测tDCS和tACS的后果。我们的结果不仅为深入了解当前用于临床应用的刺激部位提供了基础,而且还为观察到的效果提供了更好的解释。

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