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细胞对凝胶的压缩:一种集体力学活动的情况。

The compaction of gels by cells: a case of collective mechanical activity.

机构信息

Lehrstuhl für Zellbiophysik E27, Technische Universität München, James-Franck-Strasse 1, D-85748, Garching, Germany.

出版信息

Integr Biol (Camb). 2009 Mar;1(3):252-9. doi: 10.1039/b822897c. Epub 2009 Feb 2.

Abstract

To understand mechanotransduction, purely mechanical phenomena resulting from the crosstalk between contractile cells and their elastic surroundings must be distinguished from adaptive responses to mechanical cues. Here, we revisit the compaction of freely suspended collagen gels by embedded cells, where a small volume fraction of cells (osteoblasts and fibroblasts) compacts the surrounding matrix by two orders of magnitude. Combining micropatterning with time-lapse strain mapping, we find gel compaction to be crucially determined by mechanical aspects of the surrounding matrix. First, it is a boundary effect: the compaction propagates from the edges of the matrix into the bulk. Second, the stress imposed by the cells irreversibly compacts the matrix and renders it anisotropic as a consequence of its nonlinear mechanics and the boundary conditions. Third, cell polarization and alignment follow in time and seem to be a consequence of gel compaction, at odds with current mechanosensing conceptions. Finally, our observation of a threshold cell density shows gel compaction to be a cooperative effect, revealing a mechanical interaction between cells through the matrix. The intricate interplay between cell contractility and surrounding matrix mechanics provides an important organizing principle with implications for many physiological processes such as tissue development.

摘要

为了理解力学转导,必须区分由收缩细胞与其弹性环境的串扰产生的纯力学现象与对机械线索的适应性反应。在这里,我们重新研究了嵌入细胞对自由悬浮的胶原蛋白凝胶的压实,其中一小部分细胞(成骨细胞和成纤维细胞)通过两个数量级压缩周围的基质。通过微图案化和时移应变映射相结合,我们发现凝胶压实主要取决于周围基质的力学方面。首先,这是一个边界效应:压实从基质的边缘传播到基质内部。其次,细胞施加的应力不可逆地压实基质,并使其各向异性,这是其非线性力学和边界条件的结果。第三,细胞极化和排列随后发生,似乎是凝胶压实的结果,这与当前的机械感应概念相悖。最后,我们观察到细胞密度存在一个阈值,表明凝胶压实是一种协同效应,通过基质揭示了细胞之间的机械相互作用。细胞收缩性和周围基质力学之间的复杂相互作用为许多生理过程(如组织发育)提供了一个重要的组织原则。

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