Department of Biomedical Engineering, National Taiwan University, Taipei, Taiwan.
Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.
Ultrasound Med Biol. 2022 Oct;48(10):1981-1994. doi: 10.1016/j.ultrasmedbio.2022.06.008. Epub 2022 Aug 6.
Mechanosensitive channels (MSCs) play an important role in how cells transduce mechanical stimuli into electrical or chemical signals, which provides an interventional possibility through the manipulation of ion channel activation using different mechanical stimulation conditions. With good spatial resolution and depth of penetration, ultrasound is often proposed as the tool of choice for such therapeutic applications. Despite the identification of many ion channels as mechanosensitive in recent years, only a limited number of MSCs have been reported to be activated by ultrasound with substantial evidence. Furthermore, although many therapeutic implications using ultrasound have been explored, few offered insights into the molecular basis and the biological effects induced by ultrasound in relieving pain and accelerate tissue healing. In this review, we examined the literature, in particular studies that provided evidence of cellular responses to ultrasound, with and without the target ion channels. The ultrasound activation conditions were then summarized for these ion channels, and these conditions were related to their mode of activation based on the current biological concepts. The overall goal is to bridge the results relating to the activation of MSCs that is specific for ultrasound with the current knowledge in molecular structure and the available physiological evidence that may have facilitated such phenomena. We discussed how collating the information revealed by available scientific investigations helps in the design of a more effective stimulus device for the proposed translational purposes. Traditionally, studies on the effects of ultrasound have focused largely on its mechanical and physical interaction with the targeted tissue through thermal-based therapies as well as non-thermal mechanisms including ultrasonic cavitation; gas body activation; the direct action of the compressional, tensile and shear stresses; radiation force; and acoustic streaming. However, the current review explores and attempts to establish whether the application of low-intensity ultrasound may be associated with the activation of specific MSCs, which in turn triggers relevant cell signaling as its molecular mechanism in achieving the desired therapeutic effects. Non-invasive brain stimulation has recently become an area of intense research interest for rehabilitation, and the implication of low-intensity ultrasound is particularly critical given the need to minimize heat generation to preserve tissue integrity for such applications.
机械敏感性通道(MSCs)在细胞将机械刺激转化为电或化学信号的过程中起着重要作用,这为通过使用不同的机械刺激条件来操纵离子通道激活提供了一种干预的可能性。由于具有良好的空间分辨率和穿透深度,超声通常被提议作为这种治疗应用的首选工具。尽管近年来已经鉴定出许多离子通道作为机械敏感的,但只有少数 MSCs 被报道可以通过超声激活,并且有大量证据支持。此外,尽管已经探索了许多使用超声的治疗意义,但很少有研究深入探讨超声在缓解疼痛和加速组织愈合方面引起的分子基础和生物学效应。在这篇综述中,我们检查了文献,特别是提供了细胞对超声反应证据的研究,包括有和没有目标离子通道的研究。然后总结了这些离子通道的超声激活条件,并根据当前的生物学概念将这些条件与其激活模式相关联。总体目标是将与超声特异性激活 MSCs 相关的结果与分子结构的现有知识以及可能促成这种现象的可用生理证据联系起来。我们讨论了如何整理现有科学研究提供的信息有助于为拟议的转化目的设计更有效的刺激装置。传统上,超声效应的研究主要集中在通过基于热的疗法以及包括超声空化在内的非热机制与靶向组织的机械和物理相互作用上;气体激活;压缩、拉伸和剪切应力的直接作用;辐射力;以及声波流。然而,目前的综述探讨并试图确定低强度超声的应用是否与特定 MSCs 的激活有关,这反过来又触发了相关的细胞信号转导,作为其分子机制,以实现所需的治疗效果。非侵入性脑刺激最近成为康复研究的一个热点领域,考虑到需要最小化热生成以保护组织完整性,低强度超声的应用尤其关键。