Kim Jeonghee, Wichmann Thomas, Inan Omer T, Deweerth Stephen P
Quantitative Neuro Rehabilitation LaboratoryDepartment of Engineering Technology and Industrial DistributionTexas A&M UniversityCollege StationTX77843USA.
Department of NeurologySchool of MedicineEmory UniversityAtlantaGA30322USA.
IEEE J Transl Eng Health Med. 2020 Apr 6;8:2000111. doi: 10.1109/JTEHM.2020.2985058. eCollection 2020.
Currently available treatments for kinetic tremor can cause intolerable side effects or be highly invasive and expensive. Even though several studies have shown the positive effects of external feedback (i.e., electrical stimulation) for suppressing tremor, such approaches have not been fully integrated into wearable real-time feedback systems.
We have developed a wireless wearable stimulation system that analyzes upper limb tremor using a three-axis accelerometer and that modulates/attenuates tremor using peripheral-nerve electrical stimulation with adjustable stimulation parameters and a real-time tremor detection algorithm. We outfitted nine subjects with tremor with a wearable system and a set of surface electrodes placed on the skin overlying the radial nerve and tested the effects of stimulation with nine combinations of parameters for open- and closed-loop stimulation on tremor. To quantify the effects of the stimulation, we measured tremor movements, and analyzed the dominant tremor frequency and tremor power.
Baseline tremor power gradually decreased over the course of 18 stimulation trials. During the last trial, compared with the control trial, the reduction rate of tremor power was 42.17 ± 3.09%. The dominant tremor frequency could be modulated more efficiently by phase-locked closed-loop stimulation. The tremor power was equally reduced by open- and closed-loop stimulation.
Peripheral nerve stimulation significantly affects tremor, and stimulation parameters need to be optimized to modulate tremor metrics. Clinical Impact: This preliminary study lays the foundation for future studies that will evaluate the efficacy of the proposed closed-loop peripheral nerve stimulation method in a larger group of patients with kinetic tremor.
目前用于治疗运动性震颤的方法可能会导致难以忍受的副作用,或者具有高度侵入性且成本高昂。尽管多项研究已表明外部反馈(即电刺激)对抑制震颤有积极作用,但此类方法尚未完全集成到可穿戴实时反馈系统中。
我们开发了一种无线可穿戴刺激系统,该系统使用三轴加速度计分析上肢震颤,并通过具有可调刺激参数的外周神经电刺激和实时震颤检测算法来调节/减轻震颤。我们为9名震颤患者配备了可穿戴系统和一组放置在桡神经上方皮肤上的表面电极,并测试了9种开环和闭环刺激参数组合对震颤的刺激效果。为了量化刺激效果,我们测量了震颤运动,并分析了主要震颤频率和震颤功率。
在18次刺激试验过程中,基线震颤功率逐渐降低。在最后一次试验中,与对照试验相比,震颤功率降低率为42.17±3.09%。锁相闭环刺激能更有效地调节主要震颤频率。开环和闭环刺激对震颤功率的降低效果相同。
外周神经刺激对震颤有显著影响,需要优化刺激参数以调节震颤指标。临床影响:这项初步研究为未来评估所提出的闭环外周神经刺激方法在更大规模运动性震颤患者群体中的疗效的研究奠定了基础。