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用于未来神经假体的高度灵活的精密编织多电极探针及组合学

Highly Flexible Precisely Braided Multielectrode Probes and Combinatorics for Future Neuroprostheses.

作者信息

Kim Taegyo, Schmidt Kendall, Deemie Christopher, Wycech Joanna, Liang Hualou, Giszter Simon F

机构信息

Neurobiology and Anatomy Department, Drexel University College of Medicine, Philadelphia, PA, United States.

School of Biomedical Engineering, Science and Health Systems, Drexel University, Philadelphia, PA, United States.

出版信息

Front Neurosci. 2019 Jun 18;13:613. doi: 10.3389/fnins.2019.00613. eCollection 2019.

Abstract

The braided multielectrode probe (BMEP) is an ultrafine microwire bundle interwoven into a precise tubular braided structure, which is designed to be used as an invasive neural probe consisting of multiple microelectrodes for electrophysiological neural recording and stimulation. Significant advantages of BMEPs include highly flexible mechanical properties leading to decreased immune responses after chronic implantation in neural tissue and dense recording/stimulation sites (24 channels) within the 100-200 μm diameter. In addition, because BMEPs can be manufactured using various materials in any size and shape without length limitations, they could be expanded to applications in deep central nervous system (CNS) regions as well as peripheral nervous system (PNS) in larger animals and humans. Finally, the 3D topology of wires supports combinatoric rearrangements of wires within braids, and potential neural yield increases. With the newly developed next generation micro braiding machine, we can manufacture more precise and complex microbraid structures. In this article, we describe the new machine and methods, and tests of simulated combinatoric separation methods. We propose various promising BMEP designs and the potential modifications to these designs to create probes suitable for various applications for future neuroprostheses.

摘要

编织多电极探针(BMEP)是一种超细微丝束,交织成精确的管状编织结构,设计用作侵入性神经探针,由多个微电极组成,用于神经电生理记录和刺激。BMEP的显著优点包括高度灵活的机械性能,导致在神经组织中长期植入后的免疫反应降低,以及在直径100 - 200μm范围内密集的记录/刺激位点(24个通道)。此外,由于BMEP可以使用各种材料制造,尺寸和形状不限且无长度限制,它们可扩展到更大动物和人类的中枢神经系统(CNS)深部区域以及周围神经系统(PNS)的应用中。最后,导线的三维拓扑结构支持编织内导线的组合重排,并可能增加神经产量。借助新开发的下一代微编织机,我们可以制造更精确、更复杂的微编织结构。在本文中,我们描述了新机器和方法,以及模拟组合分离方法的测试。我们提出了各种有前景的BMEP设计以及对这些设计的潜在修改,以创建适用于未来神经假体各种应用的探针。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7041/6591490/62c593516e43/fnins-13-00613-g001.jpg

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