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细胞间摩擦和运动驱动细胞单层的取向有序性。

Intercellular friction and motility drive orientational order in cell monolayers.

机构信息

Scottish Universities Physics Alliance, School of Physics and Astronomy, University of Edinburgh, Edinburgh EH9 3FD, United Kingdom.

Department of Physics, University of California Santa Barbara, Santa Barbara, CA 93106.

出版信息

Proc Natl Acad Sci U S A. 2024 Oct;121(40):e2319310121. doi: 10.1073/pnas.2319310121. Epub 2024 Sep 20.

Abstract

Spatiotemporal patterns in multicellular systems are important to understanding tissue dynamics, for instance, during embryonic development and disease. Here, we use a multiphase field model to study numerically the behavior of a near-confluent monolayer of deformable cells with intercellular friction. Varying friction and cell motility drives a solid-liquid transition, and near the transition boundary, we find the emergence of local nematic order of cell deformation driven by shear-aligning cellular flows. Intercellular friction contributes to the monolayer's viscosity, which significantly increases the spatial correlation in the flow and, concomitantly, the extent of nematic order. We also show that local hexatic and nematic order are tightly coupled and propose a mechanical-geometric model for the colocalization of [Formula: see text] nematic defects and 5-7 disclination pairs, which are the structural defects in the hexatic phase. Such topological defects coincide with regions of high cell-cell overlap, suggesting that they may mediate cellular extrusion from the monolayer, as found experimentally. Our results delineate a mechanical basis for the recent observation of nematic and hexatic order in multicellular collectives in experiments and simulations and pinpoint a generic pathway to couple topological and physical effects in these systems.

摘要

多细胞系统中的时空模式对于理解组织动力学很重要,例如在胚胎发育和疾病期间。在这里,我们使用多相场模型来数值研究具有细胞间摩擦的近连续单层可变形细胞的行为。改变摩擦和细胞迁移性会导致固-液转变,并且在转变边界附近,我们发现由剪切对齐的细胞流驱动的细胞变形的局部向列有序的出现。细胞间摩擦有助于单层的粘度,这显著增加了流中的空间相关性,并相应地增加了向列有序的程度。我们还表明,局部六方有序和向列有序紧密耦合,并提出了一个机械-几何模型,用于[公式:请参见文本]向列缺陷和 5-7 位错对的共定位,这些是六方相中的结构缺陷。这些拓扑缺陷与细胞-细胞重叠的高区域重合,表明它们可能介导细胞从单层中挤出,正如实验中发现的那样。我们的结果描绘了在实验和模拟中观察到的多细胞集体中的向列和六方有序的力学基础,并指出了在这些系统中耦合拓扑和物理效应的通用途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2812/11459176/9b79e865076a/pnas.2319310121fig01.jpg

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