Wang Zhanjiang, Geng Yuxu
J Biomech Eng. 2015 Mar;137(3). doi: 10.1115/1.4029301. Epub 2015 Jan 29.
Cell migration is a highly regulated and complex cellular process to maintain proper homeostasis for various biological processes. Extracellular environment was identified as the main affecting factors determining the direction of cell crawling. It was observed experimentally that the cell prefers migrating to the area with denser or stiffer array of microposts. In this article, an integrated unidirectional cell crawling model was developed to investigate the spatiotemporal dynamics of unidirectional cell migration, which incorporates the dominating intracellular biochemical processes, biomechanical processes and the properties of extracellular micropost arrays. The interpost spacing and the stiffness of microposts are taken into account, respectively, to study the mechanism of unidirectional cell locomotion and the guidance of extracellular influence cues on the direction of unidirectional cell crawling. The model can explain adequately the unidirectional crawling phenomena observed in experiments such as "spatiotaxis" and "durotaxis," which allows us to obtain further insights into cell migration.
细胞迁移是一个高度受调控且复杂的细胞过程,用于维持各种生物过程的适当稳态。细胞外环境被确定为决定细胞爬行方向的主要影响因素。实验观察到,细胞倾向于迁移到微柱阵列更密集或更硬的区域。在本文中,开发了一个综合的单向细胞爬行模型,以研究单向细胞迁移的时空动态,该模型纳入了主要的细胞内生化过程、生物力学过程以及细胞外微柱阵列的特性。分别考虑微柱的柱间距和刚度,以研究单向细胞运动的机制以及细胞外影响线索对单向细胞爬行方向的引导。该模型能够充分解释实验中观察到的“空间趋化”和“硬度趋化”等单向爬行现象,这使我们能够对细胞迁移有更深入的了解。