Cancer and Developmental Biology Laboratory, National Cancer Institute, Frederick, Maryland, United States of America.
PLoS One. 2011;6(10):e24999. doi: 10.1371/journal.pone.0024999. Epub 2011 Oct 18.
The actions of cell adhesion molecules, in particular, cadherins during embryonic development and morphogenesis more generally, regulate many aspects of cellular interactions, regulation and signaling. Often, a gradient of cadherin expression levels drives collective and relative cell motions generating macroscopic cell sorting. Computer simulations of cell sorting have focused on the interactions of cells with only a few discrete adhesion levels between cells, ignoring biologically observed continuous variations in expression levels and possible nonlinearities in molecular binding. In this paper, we present three models relating the surface density of cadherins to the net intercellular adhesion and interfacial tension for both discrete and continuous levels of cadherin expression. We then use then the Glazier-Graner-Hogeweg (GGH) model to investigate how variations in the distribution of the number of cadherins per cell and in the choice of binding model affect cell sorting. We find that an aggregate with a continuous variation in the level of a single type of cadherin molecule sorts more slowly than one with two levels. The rate of sorting increases strongly with the interfacial tension, which depends both on the maximum difference in number of cadherins per cell and on the binding model. Our approach helps connect signaling at the molecular level to tissue-level morphogenesis.
细胞黏附分子的作用,尤其是钙黏蛋白,在胚胎发育和形态发生中更为普遍,调节细胞相互作用、调节和信号转导的许多方面。通常,钙黏蛋白表达水平的梯度驱动着细胞的集体和相对运动,产生宏观的细胞分选。细胞分选的计算机模拟主要集中在细胞与细胞之间只有少数离散黏附水平的相互作用上,忽略了生物观察到的表达水平的连续变化和分子结合的可能非线性。在本文中,我们提出了三个模型,将钙黏蛋白的表面密度与细胞间的净黏附力和界面张力联系起来,用于离散和连续的钙黏蛋白表达水平。然后,我们使用 Glazier-Graner-Hogeweg(GGH)模型来研究细胞内钙黏蛋白数量的分布变化和结合模型的选择如何影响细胞分选。我们发现,具有单个类型钙黏蛋白分子连续变化水平的聚集体比具有两个水平的聚集体分选速度慢。分选速度随界面张力的增加而强烈增加,界面张力取决于细胞内钙黏蛋白数量的最大差异和结合模型。我们的方法有助于将分子水平的信号转导与组织水平的形态发生联系起来。