Verardo Claudio, Romeni Simone, Micera Silvestro
The Biorobotics Institute and Department of Excellence in Robotics and AI, Scuola Superiore Sant'Anna, Pisa, Italy.
Modular Implantable Neuroprostheses (MINE) Laboratory, Università Vita-Salute San Raffaele & Scuola Superiore Sant'Anna, Milan, Italy.
iScience. 2025 Apr 22;28(5):112495. doi: 10.1016/j.isci.2025.112495. eCollection 2025 May 16.
Unmyelinated fibers account for a remarkable fraction of the peripheral nervous system and their activity is linked to many autonomic and somatic functions. While electrical recording of such activity from human-sized peripheral nerves holds significant potential for neuroengineering applications, it has been shown only in acute settings via microneurography. This leaves unclear whether current implantable electrodes could achieve the same outcome. To address this matter, we simulated recordings from the human vagus nerve through a transverse intrafascicular multichannel electrode (TIME), a microneurographic (μNG) needle, and a commercial cuff electrode. Recording signals were studied fiber-wise across relevant electrode insertions, revealing that the possibility of recording unmyelinated activity is shared by the TIME but unlikely by the cuff. These results suggest that no physical limitations of implantable electrodes underlie the missing evidence of recordings from unmyelinated fibers, and draw attention to experimental design choices that may have concealed this capability thus far.
无髓鞘纤维在外周神经系统中占比显著,其活动与许多自主和躯体功能相关。虽然从人体大小的外周神经进行此类活动的电记录在神经工程应用中具有巨大潜力,但目前仅通过微神经ography在急性情况下得到了证实。目前尚不清楚当前的可植入电极是否能达到相同的效果。为了解决这个问题,我们通过横向束内多通道电极(TIME)、微神经ography(μNG)针和商用袖带电极模拟了从人类迷走神经的记录。在相关电极插入的情况下,对记录信号进行了逐纤维研究,结果表明,TIME有可能记录无髓鞘活动,而袖带电极则不太可能。这些结果表明,可植入电极不存在物理限制导致无法记录无髓鞘纤维活动,同时也提醒人们关注可能迄今掩盖了这种能力的实验设计选择。