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自我生成的梯度引导在粘弹性胶原网络上的集体迁移。

Self-generated gradients steer collective migration on viscoelastic collagen networks.

作者信息

Clark Andrew G, Maitra Ananyo, Jacques Cécile, Bergert Martin, Pérez-González Carlos, Simon Anthony, Lederer Luc, Diz-Muñoz Alba, Trepat Xavier, Voituriez Raphaël, Vignjevic Danijela Matic

机构信息

Cell Biology and Cancer Unit, Institut Curie, PSL Research University, CNRS, Paris, France.

Institute of Cell Biology and Immunology, Stuttgart Research Center Systems Biology, University of Stuttgart, Stuttgart, Germany.

出版信息

Nat Mater. 2022 Oct;21(10):1200-1210. doi: 10.1038/s41563-022-01259-5. Epub 2022 May 30.

Abstract

Growing evidence suggests that the physical properties of the cellular microenvironment influence cell migration. However, it is not currently understood how active physical remodelling by cells affects migration dynamics. Here we report that cell clusters seeded on deformable collagen-I networks display persistent collective migration despite not showing any apparent intrinsic polarity. Clusters generate transient gradients in collagen density and alignment due to viscoelastic relaxation of the collagen networks. Combining theory and experiments, we show that crosslinking collagen networks or reducing cell cluster size results in reduced network deformation, shorter viscoelastic relaxation time and smaller gradients, leading to lower migration persistence. Traction force and Brillouin microscopy reveal asymmetries in force distributions and collagen stiffness during migration, providing evidence of mechanical cross-talk between cells and their substrate during migration. This physical model provides a mechanism for self-generated directional migration on viscoelastic substrates in the absence of internal biochemical polarity cues.

摘要

越来越多的证据表明,细胞微环境的物理特性会影响细胞迁移。然而,目前尚不清楚细胞的主动物理重塑如何影响迁移动力学。在此,我们报告称,接种在可变形I型胶原网络上的细胞簇表现出持续的集体迁移,尽管未显示出任何明显的内在极性。由于胶原网络的粘弹性松弛,细胞簇会在胶原密度和排列上产生瞬态梯度。结合理论与实验,我们发现交联胶原网络或减小细胞簇大小会导致网络变形减小、粘弹性松弛时间缩短以及梯度变小,从而导致迁移持续性降低。牵引力和布里渊显微镜揭示了迁移过程中力分布和胶原刚度的不对称性,为迁移过程中细胞与其底物之间的机械相互作用提供了证据。该物理模型提供了一种机制,可在没有内部生化极性线索的情况下,在粘弹性底物上实现自我产生的定向迁移。

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