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A Mechanical Instability in Planar Epithelial Monolayers Leads to Cell Extrusion

机译:平面上皮单层中的机械不稳定导致细胞挤出

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摘要

In cell extrusion, a cell embedded in an epithelial monolayer loses its apical or basal surface and is subsequently squeezed out of the monolayer by neighboring cells. Cell extrusions occur during apoptosis, epithelial-mesenchymal transition, or precancerous cell invasion. They play important roles in embryogenesis, homeostasis, carcinogenesis, and many other biological processes. Although many of the molecular factors involved in cell extrusion are known, little is known about the mechanical basis of cell extrusion. We used a three-dimensional (3D) vertex model to investigate the mechanical stability of cells arranged in a monolayer with 3D foam geometry. We found that when the cells composing the monolayer have homogeneous mechanical properties, cells are extruded from the monolayer when the symmetry of the 3D geometry is broken because of an increase in cell density or a decrease in the number of topological neighbors around single cells. Those results suggest that mechanical instability inherent in the 3D foam geometry of epithelial monolayers is sufficient to drive epithelial cell extrusion. In the situation in which cells in the monolayer actively generate contractile or adhesive forces under the control of intrinsic genetic programs, the forces act to break the symmetry of the monolayer, leading to cell extrusion that is directed to the apical or basal side of the monolayer by the balance of contractile and adhesive forces on the apical and basal sides. Although our analyses are based on a simple mechanical model, our results are in accordance with observations of epithelial monolayers in vivo and consistently explain cell extrusions under a wide range of physiological and pathophysiological conditions. Our results illustrate the importance of a mechanical understanding of cell extrusion and provide a basis by which to link molecular regulation to physical processes.
机译:在细胞挤出中,嵌入上皮单层中的细胞失去其顶部或基底表面,随后通过相邻的细胞挤出单层。细胞挤出发生在凋亡,上皮 - 间充质转换或癌前细胞侵袭过程中。它们在胚胎发生,稳态,致癌物和许多其他生物过程中发挥重要作用。虽然涉及细胞挤出的许多分子因子是已知的,但是关于电池挤出的机械基础知之甚少。我们使用了一种三维(3D)顶点模型来研究以3D泡沫几何形式排列在单层中的细胞的机械稳定性。我们发现当组成单层具有均匀机械性能的细胞具有均匀的机械性质时,当3D几何形状的对称性被破坏时,细胞从单层挤出时,因为单细胞周围的拓扑邻居数量的减少,当细胞密度的增加或减少时。那些结果表明,上皮单层的3D泡沫几何形状中固有的机械不稳定性足以推动上皮细胞挤出。在单层中细胞在内在遗传方案的控制下积极地产生收缩或粘合力的情况下,动力用于破坏单层的对称性,导致细胞挤出,该细胞挤出被引导到单层的顶端或基底侧通过在顶端和基底侧面的收缩和粘合力的平衡。虽然我们的分析基于简单的机械模型,但我们的结果符合上皮单层在体内上皮单层的观察,并且在广泛的生理和病理生理病症下始终如一地解释细胞挤出。我们的结果说明了机械理解电池挤出的重要性,并提供了将分子调节链接到物理过程的基础。

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