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力学与信号在调控细胞命运中的相互作用。

Interplay between mechanics and signalling in regulating cell fate.

机构信息

Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, UK.

Cardiovascular Research Institute, University of California San Francisco, San Francisco, CA, USA.

出版信息

Nat Rev Mol Cell Biol. 2022 Jul;23(7):465-480. doi: 10.1038/s41580-022-00472-z. Epub 2022 Apr 1.


DOI:10.1038/s41580-022-00472-z
PMID:35365816
Abstract

Mechanical signalling affects multiple biological processes during development and in adult organisms, including cell fate transitions, cell migration, morphogenesis and immune responses. Here, we review recent insights into the mechanisms and functions of two main routes of mechanical signalling: outside-in mechanical signalling, such as mechanosensing of substrate properties or shear stresses; and mechanical signalling regulated by the physical properties of the cell surface itself. We discuss examples of how these two classes of mechanical signalling regulate stem cell function, as well as developmental processes in vivo. We also discuss how cell surface mechanics affects intracellular signalling and, in turn, how intracellular signalling controls cell surface mechanics, generating feedback into the regulation of mechanosensing. The cooperation between mechanosensing, intracellular signalling and cell surface mechanics has a profound impact on biological processes. We discuss here our understanding of how these three elements interact to regulate stem cell fate and development.

摘要

机械信号在发育和成年生物体中影响多种生物学过程,包括细胞命运转变、细胞迁移、形态发生和免疫反应。在这里,我们综述了机械信号转导的两种主要途径(即外向型机械信号转导,如对基质特性或切应力的机械感知;以及受细胞表面物理性质调控的机械信号转导)的机制和功能的最新见解。我们讨论了这两类机械信号如何调节干细胞功能以及体内发育过程的实例。我们还讨论了细胞表面力学如何影响细胞内信号转导,以及细胞内信号转导如何反过来控制细胞表面力学,从而将反馈纳入机械感知的调控中。机械感知、细胞内信号转导和细胞表面力学之间的协同作用对生物学过程有深远影响。我们在这里讨论了我们对这三个要素如何相互作用以调节干细胞命运和发育的理解。

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本文引用的文献

[1]
Cell surface fluctuations regulate early embryonic lineage sorting.

Cell. 2022-3-3

[2]
StemBond hydrogels control the mechanical microenvironment for pluripotent stem cells.

Nat Commun. 2021-10-21

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Cell Stem Cell. 2021-7-1

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Nat Rev Mol Cell Biol. 2021-9

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A biomechanical switch regulates the transition towards homeostasis in oesophageal epithelium.

Nat Cell Biol. 2021-5

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Fluid shear stress promotes embryonic stem cell pluripotency via interplay between β-catenin and vinculin in bioreactor culture.

Stem Cells. 2021-9

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Curr Opin Solid State Mater Sci. 2021-2

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Membrane Tension Gates ERK-Mediated Regulation of Pluripotent Cell Fate.

Cell Stem Cell. 2021-2-4

[10]
Mechanical Tension Promotes Formation of Gastrulation-like Nodes and Patterns Mesoderm Specification in Human Embryonic Stem Cells.

Dev Cell. 2020-12-21

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