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细胞迁移中运动波传播的多尺度建模。

Multiscale modelling of motility wave propagation in cell migration.

机构信息

School of Mathematics and Physics, The University of Queensland, St. Lucia, Brisbane, QLD 4072, Australia.

Department of Biological Physics, Eotvos University, Budapest, 1053, Hungary.

出版信息

Sci Rep. 2020 May 18;10(1):8128. doi: 10.1038/s41598-020-63506-6.

Abstract

The collective motion of cell monolayers within a tissue is a fundamental biological process that occurs during tissue formation, wound healing, cancerous invasion, and viral infection. Experiments have shown that at the onset of migration, the motility is self-generated as a polarisation wave starting from the leading edge of the monolayer and progressively propagates into the bulk. However, it is unclear how the propagation of this motility wave is influenced by cellular properties. Here, we investigate this question using a computational model based on the Potts model coupled to the dynamics of intracellular polarisation. The model captures the propagation of the polarisation wave and suggests that the cells cortex can regulate the migration modes: strongly contractile cells may depolarise the monolayer, whereas less contractile cells can form swirling movement. Cortical contractility is further found to limit the cells motility, which (i) decelerates the wave speed and the leading edge progression, and (ii) destabilises the leading edge. Together, our model describes how different mechanical properties of cells can contribute to the regulation of collective cell migration.

摘要

细胞单层在组织内的集体运动是一种基本的生物过程,发生在组织形成、伤口愈合、癌症侵袭和病毒感染过程中。实验表明,在迁移开始时,运动是自产生的,作为从单层前缘开始并逐渐传播到整体的极化波。然而,目前尚不清楚这种运动波的传播如何受到细胞特性的影响。在这里,我们使用基于 Potts 模型与细胞内极化动力学耦合的计算模型来研究这个问题。该模型捕捉到了极化波的传播,并表明细胞皮层可以调节迁移模式:强收缩细胞可能会使单层去极化,而收缩性较弱的细胞可以形成漩涡运动。进一步发现皮层收缩性限制了细胞的运动性,这会降低波速和前缘的推进速度,并使前缘不稳定。总的来说,我们的模型描述了不同的细胞力学特性如何有助于调节细胞的集体迁移。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d726/7235313/c4bc6b633c88/41598_2020_63506_Fig1_HTML.jpg

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