Department of Biomedical Engineering, Washington University in Saint Louis, United States.
Acta Biomater. 2019 Aug;94:97-111. doi: 10.1016/j.actbio.2019.05.055. Epub 2019 May 24.
Synthetic hydrogels have ideal physiochemical properties to serve as reductionist mimics of the extracellular matrix (ECM) for studies on cellular mechanosensing. These studies range from basic observation of correlations between ECM mechanics and cell fate changes to molecular dissection of the underlying mechanisms. Despite intensive work on hydrogels to study mechanobiology, many fundamental questions regarding mechanosensing remain unanswered. In this review, I first discuss historical motivation for studying cellular mechanobiology, and challenges impeding this effort. I next overview recent efforts to engineer hydrogel properties to study cellular mechanosensing. Finally, I focus on in vitro modeling and cell-based therapies as applications of hydrogels that will exploit our ability to create micro-environments with physiologically relevant elasticity and viscoelasticity to control cell biology. These translational applications will not only use our current understanding of mechanobiology but will also bring new tools to study the fundamental problem of how cells sense their mechanical environment. STATEMENT OF SIGNIFICANCE: Hydrogels are an important tool for understanding how our cells can sense their mechanical environment, and to exploit that understanding in regenerative medicine. In the current review, I discuss historical work linking mechanics to cell behavior in vitro, and highlight the role hydrogels played in allowing us to understand how cells monitor mechanical cues. I then highlight potential translational applications of hydrogels with mechanical properties similar to those of the tissues where cells normally reside in our bodies, and discuss how these types of studies can provide clues to help us enhance our understanding of mechanosensing.
合成水凝胶具有理想的物理化学性质,可以作为细胞机械感受的细胞外基质 (ECM) 的简化模型进行研究。这些研究范围从 ECM 力学与细胞命运变化之间相关性的基本观察到潜在机制的分子剖析。尽管在水凝胶上进行了大量研究以了解机械生物学,但关于机械感受的许多基本问题仍未得到解答。在这篇综述中,我首先讨论了研究细胞机械生物学的历史动机,以及阻碍这一努力的挑战。接下来,我概述了最近为了研究细胞机械感受而设计水凝胶性质的努力。最后,我将重点介绍体外模型和基于细胞的治疗作为水凝胶应用的例子,这些应用将利用我们创造具有生理相关弹性和粘弹性的微环境来控制细胞生物学的能力。这些转化应用不仅将利用我们对机械生物学的现有理解,还将为研究细胞如何感知其机械环境这一基本问题带来新的工具。
水凝胶是理解我们的细胞如何感知其机械环境的重要工具,并在再生医学中利用这种理解。在当前的综述中,我讨论了将力学与体外细胞行为联系起来的历史工作,并强调了水凝胶在使我们能够理解细胞如何监测机械线索方面所起的作用。然后,我重点介绍了具有与我们体内细胞正常存在的组织相似机械性能的水凝胶的潜在转化应用,并讨论了这些类型的研究如何提供线索,帮助我们增强对机械感受的理解。