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在表面电神经刺激过程中频道切换会引发选择性的、舒适的、远位感觉。

Channel-hopping during surface electrical neurostimulation elicits selective, comfortable, distally referred sensations.

机构信息

Department of Biomedical Engineering, Florida International University, Miami, FL, United States of America.

School of Biological and Health Systems Engineering, Arizona State University, Tempe, AZ, United States of America.

出版信息

J Neural Eng. 2021 Apr 9;18(5). doi: 10.1088/1741-2552/abf28c.

Abstract

Lack of sensation from a hand or prosthesis can result in substantial functional deficits. Surface electrical stimulation of the peripheral nerves is a promising non-invasive approach to restore lost sensory function. However, the utility of standard surface stimulation methods has been hampered by localized discomfort caused by unintended activation of afferents near the electrodes and limited ability to specifically target underlying neural tissue. The objectives of this work were to develop and evaluate a novel channel-hopping interleaved pulse scheduling (CHIPS) strategy for surface stimulation that is designed to activate deep nerves while reducing activation of fibers near the electrodes.The median nerve of able-bodied subjects was activated by up to two surface stimulating electrode pairs placed around their right wrist. Subjects received biphasic current pulses either from one electrode pair at a time (single-channel), or interleaved between two electrode pairs (multi-channel). Percept thresholds were characterized for five pulse durations under each approach, and psychophysical questionnaires were used to interrogate the perceived modality, quality and location of evoked sensations.Stimulation with CHIPS elicited enhanced tactile percepts that were distally referred, while avoiding the distracting sensations and discomfort associated with localized charge densities. These effects were reduced after introduction of large delays between interleaved pulses.These findings demonstrate that our pulse scheduling strategy can selectively elicit referred sensations that are comfortable, thus overcoming the primary limitations of standard surface stimulation methods. Implementation of this strategy with an array of spatially distributed electrodes may allow for rapid and effective stimulation fitting. The ability to elicit comfortable and referred tactile percepts may enable the use of this neurostimulation strategy to provide meaningful and intuitive feedback from a prosthesis, enhance tactile feedback after sensory loss secondary to nerve damage, and deliver non-invasive stimulation therapies to treat various pain conditions.

摘要

手部或假肢缺乏感觉会导致严重的功能障碍。外周神经的表面电刺激是一种很有前途的非侵入性方法,可以恢复失去的感觉功能。然而,标准表面刺激方法的实用性受到了限制,因为电极附近的传入神经会意外地被激活,从而导致局部不适,并且很难有针对性地靶向潜在的神经组织。本研究的目的是开发和评估一种新的通道跳跃交错脉冲调度(CHIPS)策略,用于表面刺激,旨在激活深部神经,同时减少电极附近纤维的激活。健康受试者的正中神经通过放置在其右手腕周围的两个表面刺激电极对来激活。受试者接受双相电流脉冲,要么来自一个电极对(单通道),要么来自两个电极对之间的交错(多通道)。在每种方法下,对五个脉冲持续时间进行了感知阈值特征描述,并使用心理物理问卷询问了诱发感觉的感知模式、质量和位置。CHIPS 刺激会引起增强的触觉感知,这些感知是远程的,同时避免了与局部电荷密度相关的分散注意力的感觉和不适。在交错脉冲之间引入大延迟后,这些效果会降低。这些发现表明,我们的脉冲调度策略可以选择性地诱发舒适的远程感觉,从而克服了标准表面刺激方法的主要限制。使用空间分布电极阵列实现此策略可能允许快速有效的刺激拟合。能够诱发舒适和远程触觉感知的能力可能使这种神经刺激策略能够从假肢提供有意义和直观的反馈,增强神经损伤后感觉丧失的触觉反馈,并提供非侵入性刺激疗法来治疗各种疼痛状况。

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