Kanchiku Tsukasa, Lynskey James V, Protas Danielle, Abbas James J, Jung Ranu
Center for Adaptive Neural Systems, Arizona State University, Tempe, AZ 85287-4404, USA.
J Neurosci Methods. 2008 Jan 30;167(2):317-26. doi: 10.1016/j.jneumeth.2007.08.002. Epub 2007 Aug 8.
Upper extremity neuromuscular electrical stimulation (FNS) has long been utilized as a neuroprosthesis to restore hand-grasp function in individuals with neurological disorders and injuries. More recently, electrical stimulation is being used as a rehabilitative therapy to tap into central nervous system plasticity. Here, we present initial development of a rodent model for neuromuscular stimulation induced forelimb movement that can be used as a platform to investigate stimulation-induced plasticity. The motor points for flexors and extensors of the shoulder, elbow, and digits were identified and implanted with custom-built stimulation electrodes. The strength-duration curves were determined and from these curves the appropriate stimulation parameters required to produce consistent isolated contraction of each muscle with adequate joint movement were determined. Using these parameters and previous locomotor EMG data, stimulation was performed on each joint muscle pair to produce reciprocal flexion/extension movements in the shoulder, elbow, and digits, while 3D joint kinematics were assessed. Additionally, co-stimulation of multiple muscles across multiple forelimb joints was performed to produce stable multi-joint movements similar to those observed during reach-grasp-release movements. Future work will utilize this model to investigate the efficacy and underlying mechanisms of forelimb neuromuscular stimulation therapy to promote recovery and plasticity after neural injury in rodents.
上肢神经肌肉电刺激(功能性神经电刺激)长期以来一直被用作一种神经假体,以恢复患有神经系统疾病和损伤的个体的手部抓握功能。最近,电刺激正被用作一种康复治疗方法,以利用中枢神经系统的可塑性。在此,我们展示了一种用于神经肌肉刺激诱导前肢运动的啮齿动物模型的初步开发,该模型可作为一个平台来研究刺激诱导的可塑性。确定了肩部、肘部和手指的屈肌和伸肌的运动点,并植入了定制的刺激电极。测定了强度-持续时间曲线,并根据这些曲线确定了使每块肌肉产生一致的孤立收缩并伴有适当关节运动所需的合适刺激参数。利用这些参数和先前的运动肌电图数据,对每个关节肌肉对进行刺激,以在肩部、肘部和手指产生往复屈伸运动,同时评估三维关节运动学。此外,对多个前肢关节的多块肌肉进行共同刺激,以产生类似于在伸手-抓握-释放运动中观察到的稳定多关节运动。未来的工作将利用这个模型来研究前肢神经肌肉刺激疗法促进啮齿动物神经损伤后恢复和可塑性的疗效及潜在机制。