Computer Simulation of the Electrical Stimulation of the Human Vestibular System: Effects of the Reactive Component of Impedance on Voltage Waveform and Nerve Selectivity.

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Simone D'Alessandro, Michael Handler, Rami Saba, Carolyn Garnham, Daniel Baumgarten
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引用次数: 1

Abstract

The vestibular system is responsible for our sense of balance and spatial orientation. Recent studies have shown the possibility of partially restoring the function of this system using vestibular implants. Electrical modeling is a valuable tool in assisting the development of these implants by analyzing stimulation effects. However, previous modeling approaches of the vestibular system assumed quasi-static conditions. In this work, an extended modeling approach is presented that considers the reactive component of impedance and the electrode-tissue interface and their effects are investigated in a 3D human vestibular computer model. The Fourier finite element method was employed considering the frequency-dependent electrical properties of the different tissues. The electrode-tissue interface was integrated by an instrumental electrode model. A neuron model of myelinated fibers was employed to predict the nerve responses to the electrical stimulus. Morphological changes of the predicted voltage waveforms considering the dielectric tissue properties were found compared to quasi-static simulations, particularly during monopolar electrode configuration. Introducing the polarization capacitance and the scar tissue around the electrode in combination with a power limitation leads to a considerable current reduction applied through the active electrode and, consequently, to reduced voltage amplitudes of the stimulus waveforms. The reactive component of impedance resulted in better selectivity for the excitation of target nerves compared to the quasi-static simulation at the expense of slightly increased stimulus current amplitudes. We conclude that tissue permittivity and effects of the electrode-tissue interface should be considered to improve the accuracy of the simulations.

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人类前庭系统电刺激的计算机模拟:阻抗反应分量对电压波形和神经选择性的影响。
前庭系统负责我们的平衡感和空间方向感。最近的研究表明,使用前庭植入物可以部分恢复该系统的功能。电建模是通过分析刺激效应来帮助这些植入物发展的一个有价值的工具。然而,以前的前庭系统建模方法假设了准静态条件。在这项工作中,提出了一种扩展的建模方法,该方法考虑了阻抗的反应成分和电极-组织界面,并在三维人体前庭计算机模型中研究了它们的影响。考虑到不同组织的电学特性随频率的变化,采用傅里叶有限元法。电极-组织界面通过仪器电极模型集成。采用有髓鞘纤维神经元模型预测电刺激下的神经反应。与准静态模拟相比,考虑介电组织特性的预测电压波形的形态学变化被发现,特别是在单极电极配置期间。引入极化电容和电极周围的疤痕组织,结合功率限制,导致通过活性电极施加的相当大的电流减少,从而降低了刺激波形的电压幅值。与准静态模拟相比,阻抗的反应成分对目标神经的激发具有更好的选择性,但代价是刺激电流幅度略有增加。我们得出结论,组织介电常数和电极-组织界面的影响应该被考虑,以提高模拟的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.10
自引率
12.50%
发文量
57
审稿时长
6-12 weeks
期刊介绍: JARO is a peer-reviewed journal that publishes research findings from disciplines related to otolaryngology and communications sciences, including hearing, balance, speech and voice. JARO welcomes submissions describing experimental research that investigates the mechanisms underlying problems of basic and/or clinical significance. Authors are encouraged to familiarize themselves with the kinds of papers carried by JARO by looking at past issues. Clinical case studies and pharmaceutical screens are not likely to be considered unless they reveal underlying mechanisms. Methods papers are not encouraged unless they include significant new findings as well. Reviews will be published at the discretion of the editorial board; consult the editor-in-chief before submitting.
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