下肢丧失患者植入式神经界面的长期性能和稳定性。

Eileen Petros, Michael Miller, Jeremy Dunning, Gilles Pinault, Dustin Tyler, Ronald Triolo, Hamid Charkhkar
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摘要

目的:高密度神经袖带通过与周围神经系统直接连接,成功地用于恢复肢体丧失患者的体感觉。通过这些装置产生的感觉改善了各种功能结果,包括站立平衡、行走对称和在复杂地形上导航。在肢体丧失患者的下肢部署神经接口具有独特的挑战,特别是由于重复性肌肉收缩和膝关节和髋关节的自然运动范围,分别是经胫和经股截肢者。这项研究表征了这些周围神经接口的长期性能,这对于告知设计修改以优化功能至关重要。方法:我们评估了4名单侧经胫骨肢体丧失患者植入16接触神经袖带及其相关部件的纵向性能。主要结果测量包括感觉阈值的电荷密度和电阻抗。主要结果:在158个通道中(即神经袖口内的个体接触及其相应的导联),63%持续反应,34%部分反应,3%无反应。更小的连接器组件和更大的导联长度显著提高了性能,最后两个参与者的反应明显改善,分别有77%和93%的通道持续响应,而前两个参与者的反应率分别为50%和9%。意义:总的来说,植入式神经袖带在高度活跃的肢体丧失个体的残肢中表现出强大的稳定性。此外,采用策略来减少组件中过渡点的压力,显著提高了系统的整体性能。
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Long-term performance and stability of implanted neural interfaces in individuals with lower limb loss.

Objective.High-density nerve cuffs have been successfully utilized to restore somatosensation in individuals with lower-limb loss by interfacing directly with the peripheral nervous system. Elicited sensations via these devices have improved various functional outcomes, including standing balance, walking symmetry, and navigating complex terrains. Deploying neural interfaces in the lower limbs of individuals with limb loss presents unique challenges, particularly due to repetitive muscle contractions and the natural range of motion in the knee and hip joints for transtibial and transfemoral amputees, respectively. This study characterizes the long-term performance of these peripheral nerve interfaces, which is crucial for informing design modifications to optimize functionality.Approach.We evaluated the longitudinal performance of 16-contact nerve cuffs and their associated components implanted in four participants with unilateral transtibial limb loss over five years. Key outcome measures included charge density at sensory thresholds and electrical impedance.Main results.Out of 158 channels (i.e. individual contacts within the nerve cuffs and their corresponding leads), 63% were consistently responsive, 33% were partially responsive, and 4% were non-responsive. Smaller connector assemblies and increased lead length near the cuffs significantly enhanced performance, with the final two participants demonstrating notably improved responses where 77% and 96% of channels were consistently responsive, respectively, compared to 50% and 6% in the first two participants.Significance.Overall, the implanted nerve cuffs showed robust stability in the residual limbs of highly active individuals with limb loss. Furthermore, employing strategies to reduce stress on transition points in the components significantly improved overall system performance.

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