Blache Ulrich, Ford Eden M, Ha Byunghang, Rijns Laura, Chaudhuri Ovijit, Dankers Patricia Y W, Kloxin April M, Snedeker Jess G, Gentleman Eileen
Fraunhofer Institute for Cell Therapy and Immunology and Fraunhofer Cluster of Excellence for Immune-Mediated Disease, Leipzig, Germany.
Department of Chemical and Biomolecular Engineering, University of Delaware, DE, USA.
Nat Rev Methods Primers. 2022 Dec 15;2:98. doi: 10.1038/s43586-022-00179-7.
Cells' local mechanical environment can be as important in guiding cellular responses as many well-characterized biochemical cues. Hydrogels that mimic the native extracellular matrix can provide these mechanical cues to encapsulated cells, allowing for the study of their impact on cellular behaviours. Moreover, by harnessing cellular responses to mechanical cues, hydrogels can be used to create tissues in vitro for regenerative medicine applications and for disease modelling. This Primer outlines the importance and challenges of creating hydrogels that mimic the mechanical and biological properties of the native extracellular matrix. The design of hydrogels for mechanobiology studies is discussed, including appropriate choice of cross-linking chemistry and strategies to tailor hydrogel mechanical cues. Techniques for characterizing hydrogels are explained, highlighting methods used to analyze cell behaviour. Example applications for studying fundamental mechanobiological processes and regenerative therapies are provided, along with a discussion of the limitations of hydrogels as mimetics of the native extracellular matrix. The article ends with an outlook for the field, focusing on emerging technologies that will enable new insights into mechanobiology and its role in tissue homeostasis and disease.
细胞的局部力学环境在引导细胞反应方面可能与许多已充分表征的生化信号同样重要。模拟天然细胞外基质的水凝胶可以为包封的细胞提供这些力学信号,从而能够研究它们对细胞行为的影响。此外,通过利用细胞对力学信号的反应,水凝胶可用于在体外创建用于再生医学应用和疾病建模的组织。本入门文章概述了创建模拟天然细胞外基质力学和生物学特性的水凝胶的重要性和挑战。讨论了用于力学生物学研究的水凝胶设计,包括交联化学的适当选择和调整水凝胶力学信号的策略。解释了表征水凝胶的技术,重点介绍了用于分析细胞行为的方法。提供了研究基本力学生物学过程和再生疗法的示例应用,并讨论了水凝胶作为天然细胞外基质模拟物的局限性。文章最后展望了该领域,重点关注将使人们对力学生物学及其在组织稳态和疾病中的作用有新见解的新兴技术。