Vascular and Neural Response to Focal Vibration, Sensory Feedback, and Piezo Ion Channel Signaling

H. Penasso, Frederike Petersen, Gerfried Peternell
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引用次数: 1

Abstract

Focal vibration therapy seeks to restore the physiological function of tissues and the nervous system. Recommendations for vibration settings, e.g., that could improve residual limb health and prosthesis acceptance in people with amputation, are pending. To establish a physiological connection between focal vibration settings, clinical outcomes, and molecular and neuronal mechanisms, we combined the literature on focal vibration therapy, vibrotactile feedback, mechanosensitive Piezo ion channels, touch, proprioception, neuromodulation, and the recovery of blood vessels and nerves. In summary, intermittent focal vibration increases endothelial shear stress when applied superficially to blood vessels and tissues and triggers Piezo1 signaling, supporting the repair and formation of blood vessels and nerves. Conversely, stimulating Piezo1 in peripheral axon growth cones could reduce the growth of painful neuromas. Vibrotactile feedback also creates sensory inputs to the motor cortex, predominantly through Piezo2-related channels, and modulates sensory signals in the dorsal horn and ascending arousal system. Thus, sensory feedback supports physiological recovery from maladaptations and can alleviate phantom pain and promote body awareness and physical activity. We recommend focal vibration of phantom limb maps with frequencies from ~60–120 Hz and amplitudes up to 1 mm to positively affect motor control, locomotion, pain, nerves, and blood vessels while avoiding adverse effects.
血管和神经对焦点振动、感觉反馈和压电离子通道信号的反应
局部振动疗法旨在恢复组织和神经系统的生理功能。关于振动设置的建议,例如,可以改善截肢者的残肢健康和假体接受度,正在等待中。为了建立局灶振动设置、临床结果、分子和神经元机制之间的生理联系,我们结合了有关局灶振动治疗、振动触觉反馈、机械敏感压电离子通道、触觉、本体感觉、神经调节以及血管和神经恢复的文献。综上所述,间歇性局部振动在血管和组织表面施加时,会增加内皮剪切应力,并触发Piezo1信号,支持血管和神经的修复和形成。相反,刺激外周轴突生长锥中的Piezo1可以减少疼痛性神经瘤的生长。振动触觉反馈也产生了对运动皮层的感觉输入,主要通过piezo2相关通道,并调节背角和上升唤醒系统的感觉信号。因此,感觉反馈支持适应不良的生理恢复,可以减轻幻肢痛,促进身体意识和身体活动。我们建议幻肢图的局部振动频率为~60 - 120hz,振幅为1mm,以积极影响运动控制,运动,疼痛,神经和血管,同时避免不良反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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