Electrode impedance analysis of chronic tungsten microwire neural implants: understanding abiotic vs. biotic contributions.

Frontiers in neuroengineering Pub Date : 2014-05-08 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00013
Viswanath Sankar, Erin Patrick, Robert Dieme, Justin C Sanchez, Abhishek Prasad, Toshikazu Nishida
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引用次数: 63

Abstract

Changes in biotic and abiotic factors can be reflected in the complex impedance spectrum of the microelectrodes chronically implanted into the neural tissue. The recording surface of the tungsten electrode in vivo undergoes abiotic changes due to recording site corrosion and insulation delamination as well as biotic changes due to tissue encapsulation as a result of the foreign body immune response. We reported earlier that large changes in electrode impedance measured at 1 kHz were correlated with poor electrode functional performance, quantified through electrophysiological recordings during the chronic lifetime of the electrode. There is a need to identity the factors that contribute to the chronic impedance variation. In this work, we use numerical simulation and regression to equivalent circuit models to evaluate both the abiotic and biotic contributions to the impedance response over chronic implant duration. COMSOL® simulation of abiotic electrode morphology changes provide a possible explanation for the decrease in the electrode impedance at long implant duration while biotic changes play an important role in the large increase in impedance observed initially.

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慢性钨微丝神经植入物的电极阻抗分析:了解非生物与生物的贡献。
生物和非生物因素的变化可以反映在长期植入神经组织的微电极的复杂阻抗谱中。体内钨电极的记录表面由于记录部位的腐蚀和绝缘脱层而发生非生物变化,同时由于异物免疫反应而发生组织包封而发生生物变化。我们之前报道过,在1 kHz测量的电极阻抗的大变化与电极功能性能差相关,通过电极慢性寿命期间的电生理记录进行量化。有必要确定导致慢性阻抗变化的因素。在这项工作中,我们使用数值模拟和回归等效电路模型来评估非生物和生物对慢性植入期间阻抗响应的贡献。COMSOL®模拟的非生物电极形态变化为长时间植入时电极阻抗下降提供了可能的解释,而生物变化在最初观察到的阻抗大幅增加中起重要作用。
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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