Department of Biotechnology, College of Science, University of Tehran, Tehran, Iran.
Department of Microbiology, School of Biology, College of Science, University of Tehran, Tehran, Iran.
Exp Cell Res. 2023 Oct 15;431(2):113766. doi: 10.1016/j.yexcr.2023.113766. Epub 2023 Sep 7.
Stem cells in their natural microenvironment are exposed to biochemical and biophysical cues emerging from the extracellular matrix (ECM) and neighboring cells. In particular, biomechanical forces modulate stem cell behavior, biological fate, and early developmental processes by sensing, interpreting, and responding through a series of biological processes known as mechanotransduction. Local structural changes in the ECM and mechanics are driven by reciprocal activation of the cell and the ECM itself, as the initial deposition of matrix proteins sequentially affects neighboring cells. Recent studies on stem cell mechanoregulation have provided insight into the importance of biomechanical signals on proper tissue regeneration and function and have shown that precise spatiotemporal control of these signals exists in stem cell niches. Against this background, the aim of this work is to review the current understanding of the molecular basis of mechanotransduction by analyzing how biomechanical forces are converted into biological responses via cellular signaling pathways. In addition, this work provides an overview of advanced strategies using stem cells and biomaterial scaffolds that enable precise spatial and temporal control of mechanical signals and offer great potential for the fields of tissue engineering and regenerative medicine will be presented.
干细胞在其自然微环境中会受到细胞外基质(ECM)和邻近细胞中出现的生化和生物物理线索的影响。特别是,生物力学力通过一系列称为机械转导的生物学过程来感知、解释和响应,从而调节干细胞的行为、生物学命运和早期发育过程。ECM 中的局部结构变化和力学特性是由细胞和 ECM 自身的相互激活驱动的,因为基质蛋白的最初沉积会依次影响邻近细胞。最近关于干细胞机械调节的研究深入了解了生物力学信号对组织再生和功能的重要性,并表明在干细胞龛中存在这些信号的精确时空控制。在此背景下,本工作旨在通过分析生物力学力如何通过细胞信号通路转化为生物学反应,来综述对机械转导分子基础的现有理解。此外,本工作还介绍了使用干细胞和生物材料支架的先进策略,这些策略能够精确地控制机械信号的时空,并为组织工程和再生医学领域提供了巨大的潜力。