Intercellular Friction and Motility Drive Orientational Order in Cell Monolayers
arXiv:2310.20465 · doi:10.1073/pnas.2319310121
Abstract
Spatiotemporal patterns in multicellular systems are important to understanding tissue dynamics, for instance, during embryonic development and disease. Here, we use a multiphase field model to study numerically the behavior of a near-confluent monolayer of deformable cells with intercellular friction. Varying friction and cell motility drives a solid-liquid transition, and near the transition boundary, we find the emergence of local nematic order of cell deformation driven by shear-aligning cellular flows. Intercellular friction contributes to the monolayer's viscosity, which significantly increases the spatial correlation in the flow and, concomitantly, the extent of nematic order. We also show that local hexatic and nematic order are tightly coupled and propose a mechanical-geometric model for the colocalization of +1/2 nematic defects and 5-7 disclination pairs, which are the structural defects in the hexatic phase. Such topological defects coincide with regions of high cell-cell overlap, suggesting that they may mediate cellular extrusion from the monolayer, as found experimentally. Our results delineate a mechanical basis for the recent observation of nematic and hexatic order in multicellular collectives in experiments and simulations and pinpoint a generic pathway to couple topological and physical effects in these systems.
References in corpus (6)
- Role of Substrate Stiffness in Tissue Spreading: Wetting Transition and Tissue Durotaxis
- Mechanical basis and topological routes to cell elimination
- Intercellular Friction and Motility Drive Orientational Order in Cell Monolayers
- Yield Stress and Compliance in Active Cell Monolayers
- Motility induced phase separation of deformable cells
- Poisson-bracket formulation of the dynamics of fluids of deformable particles
Cited by in corpus (5)
- Self-Aligning Polar Active Matter
- Intercellular Friction and Motility Drive Orientational Order in Cell Monolayers
- Vertex model with internal dissipation enables sustained flows
- Multiphase Field Model of Cells on a Substrate: From 3D to 2D
- Traction and Stress Control Formation and Motion of +1/2 Topological Defects in Epithelial Cell Monolayers