A soft, scalable and adaptable multi-contact cuff electrode for targeted peripheral nerve modulation.

Valentina Paggi, Florian Fallegger, Ludovic Serex, Olivier Rizzo, Katia Galan, Alice Giannotti, Ivan Furfaro, Ciro Zinno, Fabio Bernini, Silvestro Micera, Stéphanie P Lacour
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引用次数: 0

Abstract

Background: Cuff electrodes target various nerves throughout the body, providing neuromodulation therapies for motor, sensory, or autonomic disorders. However, when using standard, thick silicone cuffs, fabricated in discrete circular sizes, complications may arise, namely cuff displacement or nerve compression, due to a poor adaptability to variable nerve shapes and sizes encountered in vivo. Improvements in cuff design, materials, closing mechanism and surgical approach are necessary to overcome these issues.

Methods: In this work, we propose a microfabricated multi-channel silicone-based soft cuff electrode with a novel easy-to-implant and size-adaptable design and evaluate a number of essential features such as nerve-cuff contact, nerve compression, cuff locking stability, long-term integration and stimulation selectivity. We also compared performance to that of standard fixed-size cuffs.

Results: The belt-like cuff made of 150 μm thick silicone membranes provides a stable and pressure-free conformal contact, independently of nerve size variability, combined with a straightforward implantation procedure. The adaptable design and use of soft materials lead to limited scarring and demyelination after 6-week implantation. In addition, multi-contact designs, ranging from 6 to 16 electrodes, allow for selective stimulation in models of rat and pig sciatic nerve, achieving targeted activation of up to 5 hindlimb muscles.

Conclusion: These results suggest a promising alternative to classic fixed-diameter cuffs and may facilitate the adoption of soft, adaptable cuffs in clinical settings.

用于外周神经定向调节的柔软、可扩展、可适应的多接触袖带电极。
背景:袖带电极针对全身各种神经,为运动、感觉或自律神经失调提供神经调控疗法。然而,在使用按离散圆形尺寸制造的标准厚硅胶袖带时,可能会出现并发症,即袖带移位或神经压迫,这是因为袖带对体内遇到的各种神经形状和尺寸的适应性较差。要克服这些问题,必须改进袖带设计、材料、闭合机制和手术方法:在这项工作中,我们提出了一种微细加工的多通道硅酮软袖带电极,其设计新颖、易于植入、尺寸适应性强,并对神经-袖带接触、神经压迫、袖带锁定稳定性、长期整合性和刺激选择性等一系列基本特性进行了评估。我们还将其性能与标准固定尺寸袖带进行了比较:结果:由 150 μm 厚硅胶膜制成的腰带式袖带能提供稳定、无压的保形接触,不受神经尺寸变化的影响,而且植入过程简单。适应性强的设计和软质材料的使用,使植入 6 周后的瘢痕和脱髓鞘现象非常有限。此外,6 至 16 个电极的多触点设计可对大鼠和猪坐骨神经模型进行选择性刺激,从而有针对性地激活多达 5 块后肢肌肉:这些结果表明,传统的固定直径袖带是一种很有前途的替代品,可促进在临床环境中采用柔软、适应性强的袖带。
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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来源期刊
CiteScore
6.90
自引率
0.00%
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审稿时长
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