细胞、分子和组织适应的机械生物学

Yi-Xian Qin, Jie Zhao
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引用次数: 2

摘要

机械生物学和生物力学信号转导的使用是一种减轻生物组织变性的新方法,而对特定细胞反应的理解对于描述其潜在机制至关重要。具有优化加载信号的动态机械信号,即强度和频率,已被证明具有调节适应和再生的潜力。机械转导途径在阐明机械信号如何产生观察到的影响方面非常有兴趣,包括减少组织质量损失,增加愈合和形成以及细胞分化。虽然机械生物学在细胞和组织的适应性方面已被文献观察和记录,但其在疾病机制和治疗方面的应用仍在发展中。我们祝贺《医学中的机械生物学》杂志的创刊,它为基础机械转导及其在疾病诊断、治疗等方面的转化提供了一个有效的研究平台。本文旨在从细胞和分子角度了解组织再生中的机械转导过程,为研究疾病机制和促进愈合提供新的见解。特别关注机械负荷的反应,包括潜在的细胞和分子途径,如与机械转导途径相关的机械转导(例如,压电离子通道和Wnt信号传导)、免疫反应、神经元发育、组织适应和修复以及干细胞分化。总之,这些讨论的数据突出了组织再生中复杂但高度协调的机械转导过程。
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Mechanobiology in cellular, molecular, and tissue adaptation

The use of mechanical biology and biomechanical signal transduction is a novel approach to attenuate biological tissue degeneration, whereas the understanding of specific cellular responses is critical to delineate the underlying mechanism. Dynamic mechanical signals with optimized loading signals, i.e., intensity and frequency, have been shown to have the potential to regulate adaptation and regeneration. Mechanotransduction pathways are of great interest in elucidating how mechanical signals produce such observed effects, including reduced tissue mass loss, increased healing and formation, and cell differentiation. While mechanobiology in the adaptation of cells and tissues is observed and recorded in the literature, its application in disease mechanism and treatment is under development. We would congratulate the opening of the Mechanobiology in Medicine journal, which provides an effective platform for advanced research in basic mechanotransduction and its translation in disease diagnosis, therapeutics, and beyond. This review aims to develop a cellular and molecular understanding of the mechanotransduction processes in tissue regeneration, which may provide new insights into disease mechanisms and the promotion of healing. Particular attention is allotted to the responses of mechanical loading, including potential cellular and molecular pathways, such as mechanotransduction associated with mechanotransduction pathways (e.g., Piezo ion channels and Wnt signaling), immune-response, neuron development, tissue adaptation and repair, and stem cell differentiation. Altogether, these discussed data highlight the complex yet highly coordinated mechanotransduction process in tissue regeneration.

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