IEEE Trans Neural Syst Rehabil Eng. 2014 Mar;22(2):400-10. doi: 10.1109/TNSRE.2013.2267936.
Neural prostheses are limited by the availability of peripheral neural electrodes to record the user's intention or provide sensory feedback through functional electrical stimulation. Our objective was to compare the ability of the novel “transverse intrafascicular multi-channel electrode” (TIME) and an earlier generation “thin-film longitudinal intrafascicular electrode” (tfLIFE) to selectively stimulate nerve fascicles and activate forelimb muscles in pigs. TIME was designed to access a larger subpopulation of fascicles than tfLIFE and should therefore be able to selectively activate a larger number of muscles. Electrodes were implanted in the median nerve, and sequential electric stimulation was applied to individual contacts. The compound muscle action potentials of seven muscles were recorded to quantify muscle recruitment. As expected, TIME was able to recruit more muscles with higher selectivity than tfLIFE (significant difference when comparing the performance of an entire electrode); a similar activation current was used (no significant difference). Histological analysis revealed that electrodes were located between fascicles, which influenced the selectivity and activation current level. In conclusion, TIME is a viable neural interface for selective activation of multiple fascicles in human-sized nerves that may assist to pave the way for future neuroprosthesis applications.
神经假体受到外周神经电极可用性的限制,这些电极可通过功能性电刺激来记录用户的意图或提供感觉反馈。我们的目的是比较新型“横切束内多通道电极”(TIME)和早期的“薄膜纵切束内电极”(tfLIFE)在选择性刺激神经束并激活猪前肢肌肉方面的能力。TIME 的设计目的是比 tfLIFE 接入更大的神经束亚群,因此应该能够选择性地激活更多的肌肉。将电极植入正中神经,并对单个触点进行顺序电刺激。记录七个肌肉的复合肌肉动作电位,以量化肌肉募集情况。正如预期的那样,TIME 比 tfLIFE 能够招募更多的肌肉,并且具有更高的选择性(当比较整个电极的性能时存在显著差异);使用了相似的激活电流(无显著差异)。组织学分析显示,电极位于神经束之间,这影响了选择性和激活电流水平。总之,TIME 是一种可行的神经接口,可用于选择性地激活人类大小神经中的多个神经束,这可能有助于为未来的神经假体应用铺平道路。