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神经系统中的细胞信号通路被各种机械和电磁刺激激活。

Cellular signaling pathways in the nervous system activated by various mechanical and electromagnetic stimuli.

作者信息

Ryu Youngjae, Wague Aboubacar, Liu Xuhui, Feeley Brian T, Ferguson Adam R, Morioka Kazuhito

机构信息

Department of Neurobiology, University of Massachusetts Chan Medical School, Worcester, MA, United States.

Department of Veterans Affairs, San Francisco Veterans Affairs Medical Center, San Francisco, CA, United States.

出版信息

Front Mol Neurosci. 2024 Oct 4;17:1427070. doi: 10.3389/fnmol.2024.1427070. eCollection 2024.

Abstract

Mechanical stimuli, such as stretch, shear stress, or compression, activate a range of biomolecular responses through cellular mechanotransduction. In the nervous system, studies on mechanical stress have highlighted key pathophysiological mechanisms underlying traumatic injury and neurodegenerative diseases. However, the biomolecular pathways triggered by mechanical stimuli in the nervous system has not been fully explored, especially compared to other body systems. This gap in knowledge may be due to the wide variety of methods and definitions used in research. Additionally, as mechanical stimulation techniques such as ultrasound and electromagnetic stimulation are increasingly utilized in psychological and neurorehabilitation treatments, it is vital to understand the underlying biological mechanisms in order to develop accurate pathophysiological models and enhance therapeutic interventions. This review aims to summarize the cellular signaling pathways activated by various mechanical and electromagnetic stimuli with a particular focus on the mammalian nervous system. Furthermore, we briefly discuss potential cellular mechanosensors involved in these processes.

摘要

机械刺激,如拉伸、剪切应力或压缩,通过细胞机械转导激活一系列生物分子反应。在神经系统中,对机械应力的研究突出了创伤性损伤和神经退行性疾病背后的关键病理生理机制。然而,与其他身体系统相比,机械刺激在神经系统中触发的生物分子途径尚未得到充分探索。这种知识差距可能是由于研究中使用的方法和定义多种多样。此外,随着超声和电磁刺激等机械刺激技术越来越多地用于心理和神经康复治疗,了解潜在的生物学机制对于建立准确的病理生理模型和加强治疗干预至关重要。本综述旨在总结各种机械和电磁刺激激活的细胞信号通路,特别关注哺乳动物神经系统。此外,我们简要讨论了参与这些过程的潜在细胞机械传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a7c8/11486767/d03457c07466/fnmol-17-1427070-g001.jpg

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