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用于记录和刺激应用的高接触密度、平面界面神经电极的制造。

Fabrication of High Contact-Density, Flat-Interface Nerve Electrodes for Recording and Stimulation Applications.

作者信息

Dweiri Yazan M, Stone Matthew A, Tyler Dustin J, McCallum Grant A, Durand Dominique M

机构信息

Neural Engineering Center, Case Western Reserve University; Jordan University of Science and Technology.

Advanced Platform Technology Center, U.S. Department of Veterans Affairs.

出版信息

J Vis Exp. 2016 Oct 4(116):54388. doi: 10.3791/54388.

Abstract

Many attempts have been made to manufacture multi-contact nerve cuff electrodes that are safe, robust and reliable for long term neuroprosthetic applications. This protocol describes a fabrication technique of a modified cylindrical nerve cuff electrode to meet these criteria. Minimum computer-aided design and manufacturing (CAD and CAM) skills are necessary to consistently produce cuffs with high precision (contact placement 0.51 ± 0.04 mm) and various cuff sizes. The precision in spatially distributing the contacts and the ability to retain a predefined geometry accomplished with this design are two criteria essential to optimize the cuff's interface for selective recording and stimulation. The presented design also maximizes the flexibility in the longitudinal direction while maintaining sufficient rigidity in the transverse direction to reshape the nerve by using materials with different elasticities. The expansion of the cuff's cross sectional area as a result of increasing the pressure inside the cuff was observed to be 25% at 67 mm Hg. This test demonstrates the flexibility of the cuff and its response to nerve swelling post-implant. The stability of the contacts' interface and recording quality were also examined with contacts' impedance and signal-to-noise ratio metrics from a chronically implanted cuff (7.5 months), and observed to be 2.55 ± 0.25 kΩ and 5.10 ± 0.81 dB respectively.

摘要

人们已多次尝试制造多触点神经袖套电极,使其在长期神经假体应用中安全、耐用且可靠。本方案描述了一种改良圆柱形神经袖套电极的制造技术,以满足这些标准。要始终如一地高精度(触点放置精度为0.51±0.04毫米)生产袖套并制造各种尺寸的袖套,需要具备最低限度的计算机辅助设计和制造(CAD和CAM)技能。这种设计在空间上分布触点的精度以及保持预定义几何形状的能力,是优化袖套界面以进行选择性记录和刺激的两个关键标准。所提出的设计还在纵向方向上最大限度地提高了灵活性,同时通过使用具有不同弹性的材料在横向方向上保持足够的刚性以重塑神经。在袖套内压力增加至67毫米汞柱时,观察到袖套横截面积的扩张为25%。该测试证明了袖套的灵活性及其对植入后神经肿胀的反应。还通过长期植入袖套(7.5个月)的触点阻抗和信噪比指标检查了触点界面的稳定性和记录质量,分别观察到为2.55±0.25千欧和5.10±0.81分贝。

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