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顶端连接波动在维持上皮完整性的同时导致细胞流动。

Apical Junctional Fluctuations Lead to Cell Flow while Maintaining Epithelial Integrity.

机构信息

PRESTO, Japan Science and Technology Agency, Kawaguchi, Japan; Institute for Frontier Life and Medical Sciences, Kyoto University, Kyoto, Japan.

Graduate School of Life Sciences, Tohoku University, Sendai, Japan.

出版信息

Biophys J. 2019 Mar 19;116(6):1159-1170. doi: 10.1016/j.bpj.2019.01.039. Epub 2019 Feb 8.

Abstract

Epithelial sheet integrity is robustly maintained during morphogenesis, which is essential to shape organs and embryos. While maintaining the planar monolayer in three-dimensional space, cells dynamically flow via rearranging their connections between each other. However, little is known about how cells maintain the plane sheet integrity in three-dimensional space and provide cell flow in the in-plane sheet. In this study, using a three-dimensional vertex model, we demonstrate that apical junctional fluctuations allow stable cell rearrangements while ensuring monolayer integrity. In addition to the fluctuations, direction-dependent contraction on the apical cell boundaries, which corresponds to forces from adherens junctions, induces cell flow in a definite direction. We compared the kinematic behaviors of this apical-force-driven cell flow with those of typical cell flow that is driven by forces generated on basal regions and revealed the characteristic differences between them. These differences can be used to distinguish the mechanism of epithelial cell flow observed in experiments, i.e., whether it is apical- or basal-force-driven. Our numerical simulations suggest that cells actively generate fluctuations and use them to regulate both epithelial integrity and plasticity during morphogenesis.

摘要

上皮细胞层的完整性在形态发生过程中得到了强有力的维持,这对于器官和胚胎的形成至关重要。在保持三维空间中的平面单层的同时,细胞通过动态地重新排列彼此之间的连接来流动。然而,目前对于细胞如何在三维空间中保持平面细胞层的完整性以及在平面细胞层中提供细胞流动知之甚少。在这项研究中,我们使用三维顶点模型证明了顶端连接的波动允许稳定的细胞重排,同时确保了单层的完整性。除了波动之外,对应于黏着连接的力的顶端细胞边界上的方向依赖性收缩会导致细胞沿特定方向流动。我们比较了这种由顶端力驱动的细胞流动的运动行为与由基底区域产生的力驱动的典型细胞流动的运动行为,并揭示了它们之间的特征差异。这些差异可用于区分实验中观察到的上皮细胞流动的机制,即它是由顶端力还是由基底力驱动的。我们的数值模拟表明,细胞积极地产生波动,并利用它们来调节形态发生过程中的上皮完整性和可塑性。

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