丘脑底核的深部脑刺激:电极电容对激活体积影响的基于模型的分析

C. Butson, C.C. Mclntyre
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引用次数: 4

摘要

脑深部电刺激(DBS)已迅速成为一种有效的治疗运动障碍的临床方法。然而,我们对DBS的神经效应的理解是有限的,并且存在优化电极设计以提高治疗效果的重大机会。为了解决这些问题,我们开发了计算工具来预测神经对刺激的反应。几十年来,静电近似法一直应用于神经刺激模型,将电极作为完美的电流源,将神经组织作为纯导电介质。然而,临床DBS电极是电压控制的,利用不对称的双相刺激波形,并被三维各向异性、不均匀的组织介质包围。为了更准确地模拟人体DBS,我们开发了电极和组织介质的有限元模型(FEM),其中包含傅里叶有限元求解器,以同时确定组织中的时间和空间分布。然后将现场数据与多室神经元模型相结合,以预测神经激活。我们的研究结果表明,在典型的治疗性刺激参数设置下,与电压控制刺激相比,静电模型高估了激活体积(VOA) -30%。该误差与电极电容和刺激脉冲宽度直接相关。这些结果说明需要详细的神经刺激模型来准确预测DBS的效果
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep brain stimulation of the subthalamic nucleus: model-based analysis of the effects of electrode capacitance on the volume of activation
Deep brain stimulation (DBS) has rapidly emerged as an effective clinical treatment for movement disorders. However, our understanding of the neural effects of DBS is limited, and significant opportunities exist to optimize electrode design to enhance therapeutic effectiveness. To address these issues, we have developed computational tools to predict the neural response to stimulation. For decades the electrostatic approximation has been applied in neural stimulation modeling, treating the electrode as a perfect current source and the neural tissue as a purely conductive medium. However, clinical DBS electrodes are voltage controlled, utilize an asymmetrical biphasic stimulus waveform, and are surrounded by a 3D anisotropic, inhomogeneous tissue medium. To more accurately model DBS in the human, we have developed finite element models (FEM) of the electrode and tissue medium that incorporate a Fourier FEM solver to determine the potential distribution in the tissue in time and space simultaneously. The field data is then coupled to multi-compartment neuron models to predict neural activation. Our results show that electrostatic models overestimate the volume of activation (VOA) by -30% compared to voltage-controlled stimulation for typical therapeutic stimulation parameter settings. The error is directly related to the electrode capacitance and the stimulation pulse width. These results illustrate the need for detailed models of neural stimulation to accurately predict the effects of DBS
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