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与大组织位移兼容的体内柔性电极的开发与表征

Development and characterization of in vivo flexible electrodes compatible with large tissue displacements.

作者信息

Wester B A, Lee R H, LaPlaca M C

机构信息

Department of Biomedical Engineering, Georgia Institute of Technology, 313 Ferst Dr., Atlanta, GA 30332-0535, USA.

出版信息

J Neural Eng. 2009 Apr;6(2):024002. doi: 10.1088/1741-2560/6/2/024002. Epub 2009 Mar 2.

Abstract

Electrical activity is the ultimate functional measure of neuronal tissue and recording that activity remains a key technical challenge in neuroscience. The mechanical mismatch between rigid electrodes and compliant brain tissue is a critical limitation in applications where movement is an inherent component. An electrode that permits recording of neural activity, while minimizing tissue disruption, is beneficial for applications that encompass both normal physiological movements and those which require consistent recording during large tissue displacements. In order to test the extreme of this range of movement, flexible electrodes were developed to record activity during and immediately following cortical impact in the rat. Photolithography techniques were used to fabricate flexible electrodes that were readily insertable into the brain using a parylene C base and gold conduction lines and contact pads, permitting custom geometry. We found that this electrode configuration retained mechanical and electrical integrity following both durability studies and large movements within the cortex. This novel flexible electrode configuration provides a novel platform for experimentally examining neuronal activity during a range of brain movements.

摘要

电活动是神经元组织的最终功能指标,记录这种活动仍然是神经科学中的一项关键技术挑战。刚性电极与顺应性脑组织之间的机械不匹配是运动作为固有组成部分的应用中的一个关键限制。一种能够记录神经活动同时将组织破坏降至最低的电极,对于涵盖正常生理运动以及需要在大组织位移期间进行持续记录的应用是有益的。为了测试这一运动范围的极限,开发了柔性电极以记录大鼠皮质撞击期间及之后立即的活动。使用光刻技术制造柔性电极,该电极使用聚对二甲苯C基底以及金导线和接触垫,易于插入大脑,允许定制几何形状。我们发现,在耐久性研究以及皮质内的大幅度运动之后,这种电极配置保持了机械和电气完整性。这种新型柔性电极配置为实验研究一系列脑运动期间的神经元活动提供了一个新平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b63d/9044011/854b6bad843d/nihms-1797784-f0001.jpg

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