Department of Gastroenterology, The Second Affiliated Hospital, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China; Bioinspired Engineering and Biomechanics Center (BEBC), Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China; The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China.
Department of Gastroenterology, The Second Affiliated Hospital, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China.
Acta Biomater. 2023 Mar 15;159:1-20. doi: 10.1016/j.actbio.2023.01.039. Epub 2023 Jan 28.
Mechanical cues in the cell microenvironment such as those from extracellular matrix properties, stretching, compression and shear stress, play a critical role in maintaining homeostasis. Upon sensing mechanical stimuli, cells can translate these external forces into intracellular biochemical signals to regulate their cellular behaviors, but the specific mechanisms of mechanotransduction at the molecular level remain elusive. As a subfamily of the Ras superfamily, Rho GTPases have been recognized as key intracellular mechanotransduction mediators that can regulate multiple cell activities such as proliferation, migration and differentiation as well as biological processes such as cytoskeletal dynamics, metabolism, and organ development. However, the upstream mechanosensors for Rho proteins and downstream effectors that respond to Rho signal activation have not been well illustrated. Moreover, Rho-mediated mechanical signals in previous studies are highly context-dependent. In this review, we systematically summarize the types of mechanical cues in the cell microenvironment and provide recent advances on the roles of the Rho-based mechanotransduction in various cell activities, physiological processes and diseases. Comprehensive insights into the mechanical roles of Rho GTPase partners would open a new paradigm of mechanomedicine for a variety of diseases. STATEMENT OF SIGNIFICANCE: In this review, we highlight the critical role of Rho GTPases as signal mediators to respond to physical cues in microenvironment. This article will add a distinct contribution to this set of knowledge by intensively addressing the relationship between Rho signaling and mechanobiology/mechanotransduction/mechanomedcine. This topic has not been discussed by the journal, nor has it yet been developed by the field. The comprehensive picture that will develop, from molecular mechanisms and engineering methods to disease treatment strategies, represents an important and distinct contribution to the field. We hope that this review would help researchers in various fields, especially clinicians, oncologists and bioengineers, who study Rho signal pathway and mechanobiology/mechanotransduction, understand the critical role of Rho GTPase in mechanotransduction.
细胞微环境中的机械线索,如细胞外基质特性、拉伸、压缩和切应力等,在维持内稳态方面起着关键作用。细胞在感知机械刺激时,可以将这些外力转化为细胞内生化信号,从而调节其细胞行为,但分子水平上的机械转导的具体机制仍不清楚。作为 Ras 超家族的一个亚家族,Rho GTPases 已被认为是关键的细胞内机械转导介质,可以调节多种细胞活动,如增殖、迁移和分化,以及生物过程,如细胞骨架动力学、代谢和器官发育。然而,Rho 蛋白的上游机械感受器和响应 Rho 信号激活的下游效应物尚未得到很好的说明。此外,以前的研究中 Rho 介导的机械信号高度依赖于上下文。在这篇综述中,我们系统地总结了细胞微环境中的机械线索类型,并提供了 Rho 基机械转导在各种细胞活动、生理过程和疾病中的作用的最新进展。全面了解 Rho GTPase 伙伴的机械作用将为各种疾病的机械医学开辟一个新的范例。
在这篇综述中,我们强调了 Rho GTPases 作为信号介质的关键作用,以响应微环境中的物理线索。本文将通过深入探讨 Rho 信号与机械生物学/机械转导/机械医学之间的关系,为这一组知识做出独特的贡献。该主题尚未被该杂志讨论,也尚未被该领域开发。从分子机制和工程方法到疾病治疗策略,将形成一个全面的图景,这代表了该领域的一个重要而独特的贡献。我们希望这篇综述将帮助研究 Rho 信号通路和机械生物学/机械转导的各个领域的研究人员,特别是临床医生、肿瘤学家和生物工程师,了解 Rho GTPase 在机械转导中的关键作用。