IEEE J Biomed Health Inform. 2021 Jul;25(7):2575-2582. doi: 10.1109/JBHI.2020.3041669. Epub 2021 Jul 27.
Functional electrical stimulation (FES) is a common technique to elicit muscle contraction and help improve muscle strength. Traditional FES over the muscle belly typically only activates superficial muscle regions. In the case of hand FES, this prevents the activation of the deeper flexor muscles which control the distal finger joints. Here, we evaluated whether an alternative transcutaneous nerve-bundle stimulation approach can activate both superficial and deep extrinsic finger flexors using a high-density stimulation grid.
Transverse ultrasound of the forearm muscles was used to obtain cross-sectional images of the underlying finger flexors during stimulated finger flexions and kinematically-matched voluntary motions. Finger kinematics were recorded, and an image registration method was used to capture the large deformation of the muscle regions during each flexion. This deformation was used as a surrogate measure of the contraction of muscle tissue, and the regions of expanding tissue can identify activated muscles.
The nerve-bundle stimulation elicited contractions in the superficial and deep finger flexors. Both separate and concurrent activation of these two muscles were observed. Joint kinematics of the fingers also matched the expected regions of muscle contractions.
Our results showed that the nerve-bundle stimulation technique can activate the deep extrinsic finger flexors, which are typically not accessible via traditional surface FES.
Our nerve-bundle stimulation method enables us to produce the full range of motion of different joints necessary for various functional grasps, which could benefit future neuroprosthetic applications.
功能性电刺激(FES)是一种引起肌肉收缩并帮助增强肌肉力量的常用技术。传统的肌腹 FES 通常只能激活浅层肌肉区域。在手 FES 的情况下,这会阻止控制远端指关节的较深屈肌的激活。在这里,我们评估了一种替代的经皮神经束刺激方法是否可以使用高密度刺激网格同时激活浅层和深层外在手指屈肌。
前臂肌肉的横向超声用于在刺激手指屈曲期间和运动学匹配的自愿运动中获得下方手指屈肌的横截面图像。记录手指运动学,并使用图像配准方法捕获每次屈曲过程中肌肉区域的大变形。这种变形被用作肌肉组织收缩的替代测量指标,并且扩张组织的区域可以识别激活的肌肉。
神经束刺激可引起浅层和深层手指屈肌的收缩。观察到这两块肌肉的单独和同时激活。手指的关节运动也与肌肉收缩的预期区域相匹配。
我们的结果表明,神经束刺激技术可以激活通常无法通过传统表面 FES 到达的深层外在手指屈肌。
我们的神经束刺激方法使我们能够产生各种功能抓握所需的不同关节的全运动范围,这可能有益于未来的神经假肢应用。