Resistive and reactive changes to the impedance of intracortical microelectrodes can be mitigated with polyethylene glycol under acute in vitro and in vivo settings.

Frontiers in neuroengineering Pub Date : 2014-08-04 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00033
Salah Sommakia, Janak Gaire, Jenna L Rickus, Kevin J Otto
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引用次数: 33

Abstract

The reactive response of brain tissue to implantable intracortical microelectrodes is thought to negatively affect their recordable signal quality and impedance, resulting in unreliable longitudinal performance. The relationship between the progression of the reactive tissue into a glial scar and the decline in device performance is unclear. We show that exposure to a model protein solution in vitro and acute implantation result in both resistive and capacitive changes to electrode impedance, rather than purely resistive changes. We also show that applying 4000 MW polyethylene glycol (PEG) prevents impedance increases in vitro, and reduces the percent change in impedance in vivo following implantation. Our results highlight the importance of considering the contributions of non-cellular components to the decline in neural microelectrode performance, and present a proof of concept for using a simple dip-coated PEG film to modulate changes in microelectrode impedance.

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在体外和体内急性环境下,聚乙二醇可以减轻皮质内微电极阻抗的电阻性和反应性变化。
大脑组织对植入的皮质内微电极的反应性反应被认为会对其可记录的信号质量和阻抗产生负面影响,导致不可靠的纵向性能。反应性组织进展为胶质瘢痕与器械性能下降之间的关系尚不清楚。我们表明,暴露于体外模型蛋白溶液和急性植入导致电极阻抗的电阻性和容性变化,而不是纯粹的电阻性变化。我们还表明,应用4000 MW聚乙二醇(PEG)可以防止体外阻抗增加,并减少植入后体内阻抗变化的百分比。我们的研究结果强调了考虑非细胞成分对神经微电极性能下降的贡献的重要性,并提出了使用简单的浸涂PEG膜来调制微电极阻抗变化的概念证明。
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