Department of Mechanical Engineering, University of Texas at San Antonio, San Antonio, TX, 78249, USA.
Biomech Model Mechanobiol. 2018 Apr;17(2):439-448. doi: 10.1007/s10237-017-0970-y. Epub 2017 Nov 1.
During collective cell migration, the intercellular forces will significantly affect the collective migratory behaviors. However, the measurement of mechanical stresses exerted at cell-cell junctions is very challenging. A recent experimental observation indicated that the intercellular adhesion sites within a migrating monolayer are subjected to both normal stress exerted perpendicular to cell-cell junction surface and shear stress exerted tangent to cell-cell junction surface. In this study, an interfacial interaction model was proposed to model the intercellular interactions for the first time. The intercellular interaction model-based study of collective epithelial migration revealed that the direction of cell migration velocity has better alignment with the orientation of local principal stress at higher maximum shear stress locations in an epithelial monolayer sheet. Parametric study of the effects of adhesion strength indicated that normal adhesion strength at the cell-cell junction surface has dominated effect on local alignment between the direction of cell velocity vector and the principal stress orientation, while the shear adhesion strength has little effect, which provides compelling evidence to help explain the force transmission via cell-cell junctions between adjacent cells in collective cell motion and provides new insights into "adhesive belt" effects at cell-cell junction.
在细胞集体迁移过程中,细胞间力会显著影响细胞的集体迁移行为。然而,测量细胞-细胞连接处的机械应力极具挑战性。最近的一项实验观察表明,迁移单层中的细胞间黏附位点受到垂直于细胞-细胞连接表面的法向应力和沿细胞-细胞连接表面的切向剪切应力的共同作用。在本研究中,首次提出了一种界面相互作用模型来模拟细胞间相互作用。基于细胞间相互作用模型的上皮细胞集体迁移研究表明,在单层上皮片中最大剪切应力较高的位置,细胞迁移速度的方向与局部主应力的方向具有更好的一致性。对黏附强度影响的参数研究表明,细胞-细胞连接表面的法向黏附强度对细胞速度矢量方向和主应力方向之间的局部一致性具有主导作用,而切向黏附强度的影响较小,这为解释相邻细胞通过细胞-细胞连接进行的力传递提供了有力证据,并为细胞-细胞连接处的“黏附带”效应提供了新的见解。