Engineered hydrogels for mechanobiology

机械生物学 自愈水凝胶 细胞外基质 再生医学 组织工程 再生(生物学) 纳米技术 机械转化 计算机科学 材料科学 生物医学工程 细胞生物学 神经科学 生物 工程类 干细胞 高分子化学
作者
Ulrich Blache,Eden M. Ford,Byung Hang Ha,Laura Rijns,Ovijit Chaudhuri,Patricia Y. W. Dankers,April M. Kloxin,Jess G. Snedeker,Eileen Gentleman
出处
期刊:Nature Reviews Methods Primers [Springer Nature]
卷期号:2 (1) 被引量:120
标识
DOI:10.1038/s43586-022-00179-7
摘要

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 the appropriate choice of cross-linking chemistry and strategies to tailor hydrogel mechanical cues. Techniques for characterizing hydrogels are explained, highlighting methods used to analyse cell behaviour. Example applications in regenerative medicine and for studying fundamental mechanobiological processes are provided, along with a discussion of the limitations of hydrogels as mimetics of the native extracellular matrix. The Primer 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. Hydrogels are used to mimic cells’ local environment, enabling the study of cellular responses to biochemical and mechanical cues. Here, Blache et al. discuss the challenges of creating hydrogels for mechanobiology studies and how they can be used to analyse cell behaviour in the context of mechanobiological processes and harnessed to create regenerative therapies.
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