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用于长期外周神经映射和精确控制的可打印微尺度界面。

Printable microscale interfaces for long-term peripheral nerve mapping and precision control.

作者信息

Otchy Timothy M, Michas Christos, Lee Blaire, Gopalan Krithi, Nerurkar Vidisha, Gleick Jeremy, Semu Dawit, Darkwa Louis, Holinski Bradley J, Chew Daniel J, White Alice E, Gardner Timothy J

机构信息

Department of Biology, Boston University, Boston, MA, 02215, USA.

Neurophotonics Center, Boston University, Boston, MA, 02215, USA.

出版信息

Nat Commun. 2020 Aug 21;11(1):4191. doi: 10.1038/s41467-020-18032-4.

Abstract

The nascent field of bioelectronic medicine seeks to decode and modulate peripheral nervous system signals to obtain therapeutic control of targeted end organs and effectors. Current approaches rely heavily on electrode-based devices, but size scalability, material and microfabrication challenges, limited surgical accessibility, and the biomechanically dynamic implantation environment are significant impediments to developing and deploying peripheral interfacing technologies. Here, we present a microscale implantable device - the nanoclip - for chronic interfacing with fine peripheral nerves in small animal models that begins to meet these constraints. We demonstrate the capability to make stable, high signal-to-noise ratio recordings of behaviorally-linked nerve activity over multi-week timescales. In addition, we show that multi-channel, current-steering-based stimulation within the confines of the small device can achieve multi-dimensional control of a small nerve. These results highlight the potential of new microscale design and fabrication techniques for realizing viable devices for long-term peripheral interfacing.

摘要

生物电子医学这一新兴领域试图解码和调节外周神经系统信号,以实现对目标终末器官和效应器的治疗控制。当前的方法严重依赖基于电极的设备,但尺寸可扩展性、材料和微制造挑战、有限的手术可达性以及生物力学动态植入环境,都是开发和部署外周接口技术的重大障碍。在此,我们展示了一种微型可植入设备——纳米夹,用于在小动物模型中与细小外周神经进行长期连接,该设备开始满足这些限制条件。我们展示了在数周时间尺度上对与行为相关的神经活动进行稳定、高信噪比记录的能力。此外,我们表明,在小型设备范围内基于电流控制的多通道刺激可以实现对小神经的多维控制。这些结果凸显了新的微型设计和制造技术在实现可行的长期外周接口设备方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6751/7442820/27d33f77fcdc/41467_2020_18032_Fig1_HTML.jpg

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