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弹性和非弹性底物行为对机械感觉的影响。

Impact of elastic and inelastic substrate behaviors on mechanosensation.

作者信息

Mohammadi Hamid, McCulloch Christopher A

机构信息

Matrix Dynamics Group, University of Toronto, Room 243, Fitzgerald Building, Toronto, ON M5S 3E2, Canada.

出版信息

Soft Matter. 2014 Jan 21;10(3):408-20. doi: 10.1039/c3sm52729h.

Abstract

In this review we summarize current data on the mechanics of synthetic and naturally occurring biopolymers that are routinely employed in examination of contractility and cellular mechanosensation. We discuss the effect of physical boundaries on the mechanical behaviors of cell substrates and cellular mechanosensation. The application of contractile forces to underlying substrates enables anchorage-dependent cells to probe the physical properties of their microenvironment. Compliant substrates deform as a result of contractile forces generated by adherent cells and, in turn, the mechanical response of substrates influences numerous cellular processes. Unlike synthetic polymers that exhibit linear elastic responses to forces applied by adherent cells, naturally-occurring biopolymers exhibit non-linear, viscoelastic behavior. In turn, the viscoelastic behavior of fibrillar biopolymers may contribute to irreversible network compaction after application of cell-derived forces. Comprehensive characterization of the unusual mechanical properties of extracellular matrix proteins like collagen has provided novel insights into cell contractility and mechanosensation. We suggest that in the future, fabrication and application of novel substrates with fibrillar structures and non-linear viscoelastic behavior will be needed for a better understanding of the role of mechanosensation in many physiological and pathological processes.

摘要

在本综述中,我们总结了目前关于合成生物聚合物和天然生物聚合物力学的相关数据,这些聚合物常用于检测细胞收缩性和细胞机械感受。我们讨论了物理边界对细胞基质力学行为和细胞机械感受的影响。对下层基质施加收缩力能使锚定依赖性细胞探测其微环境的物理特性。顺应性基质会因贴壁细胞产生的收缩力而变形,反过来,基质的力学响应会影响众多细胞过程。与对贴壁细胞施加的力呈现线性弹性响应的合成聚合物不同,天然生物聚合物表现出非线性粘弹性行为。反过来,纤维状生物聚合物的粘弹性行为可能导致在施加细胞衍生力后网络发生不可逆压实。对胶原蛋白等细胞外基质蛋白异常力学特性的全面表征为细胞收缩性和机械感受提供了新见解。我们认为,未来需要制造和应用具有纤维状结构和非线性粘弹性行为的新型基质,以便更好地理解机械感受在许多生理和病理过程中的作用。

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