2025/10/06 by Natasha Cowley, Sarah Woolner, Oliver E. Jensen · 1 voice
Biochemistry, Genetics and Molecular Biology · #Cellular Mechanics and Interactions #Lipid Membrane Structure and Behavior #Microtubule and mitosis dynamics
paper · pdf · doi:10.1103/5l56-wc8f
openalex publication_date 2025/10/06 · openalex created_date 2025/11/04 · openalex updated_date 2026/07/22
We use a three-dimensional formulation of the cell vertex model to describe the mechanical properties of a confluent planar monolayer of prismatic cells. Treating cell height as a degree of freedom, we reduce the model to a two-dimensional form. We show how bulk effects, associated with cell volume and total surface area, lead to coupling between energy variations arising from changes in the cell apical area and the apical perimeter, a feature missing from standard implementations of the two-dimensional vertex model. The model identifies five independent mechanisms by which cells can lose in-plane rigidity, relating to variations in total cell surface area, the strength of lateral adhesion, and constrictive forces at the apical cortex. The model distinguishes bulk from in-plane stresses, and it identifies two primary measures of cell shear stress. In the rigid regime, the model shows how lateral crowding in a disordered isolated monolayer can lead to cell elongation towards the monolayer center. We examine the loss of in-plane rigidity in a disordered monolayer and connect isolated patches of stiffness that persist during the rigidity transition to the spectrum of a Laplacian matrix. This approach enables bulk mechanical effects in an epithelium to be captured within a two-dimensional framework.