Shape-Independent Fluidization in Epithelial Cell Monolayers

Fuente: arXiv
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Main Authors: Bera, Pradip K., Nguyen, Anh Q., McCord, Molly, Bi, Dapeng, Notbohm, Jacob
Format: Preprint
Published: 2026
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author Bera, Pradip K.
Nguyen, Anh Q.
McCord, Molly
Bi, Dapeng
Notbohm, Jacob
author_facet Bera, Pradip K.
Nguyen, Anh Q.
McCord, Molly
Bi, Dapeng
Notbohm, Jacob
contents Tissue fluidity regulates many critical biological processes, including embryonic development, wound healing, and cancer metastasis. In confluent epithelia, where cell packing fraction is effectively fixed, the prevailing paradigm postulates that transitions between solid-like jammed and fluid-like unjammed states are governed by a geometric cell shape index determined by the balance of cortical tension and intercellular adhesion. Here, we challenge this geometric framework by reporting a mode of fluidization in epithelial monolayers that is entirely shape-independent. We observe that reducing cell-cell adhesion triggers a substantial increase in fluidity, yet this occurs without any corresponding change in cell shape, cell density, substrate traction, or junctional line tension. This decoupling of shape and fluidity reveals that current vertex models, which treat adhesion solely as a contribution to interfacial tension, are incomplete. To reconcile these findings, we extend the theoretical framework to account for the dual nature of adhesion -- its thermodynamic role in setting interfacial adhesion energy at the cell-cell junctions and its kinetic role in generating viscous drag as cells slide past their neighbors. This generalized model quantitatively captures the experimental data, demonstrating that the interplay between adhesive energetics and dissipative friction is essential for a complete understanding of epithelial fluidity.
format Preprint
id arxiv_https___arxiv_org_abs_2603_05548
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Shape-Independent Fluidization in Epithelial Cell Monolayers
Bera, Pradip K.
Nguyen, Anh Q.
McCord, Molly
Bi, Dapeng
Notbohm, Jacob
Biological Physics
Soft Condensed Matter
Tissue fluidity regulates many critical biological processes, including embryonic development, wound healing, and cancer metastasis. In confluent epithelia, where cell packing fraction is effectively fixed, the prevailing paradigm postulates that transitions between solid-like jammed and fluid-like unjammed states are governed by a geometric cell shape index determined by the balance of cortical tension and intercellular adhesion. Here, we challenge this geometric framework by reporting a mode of fluidization in epithelial monolayers that is entirely shape-independent. We observe that reducing cell-cell adhesion triggers a substantial increase in fluidity, yet this occurs without any corresponding change in cell shape, cell density, substrate traction, or junctional line tension. This decoupling of shape and fluidity reveals that current vertex models, which treat adhesion solely as a contribution to interfacial tension, are incomplete. To reconcile these findings, we extend the theoretical framework to account for the dual nature of adhesion -- its thermodynamic role in setting interfacial adhesion energy at the cell-cell junctions and its kinetic role in generating viscous drag as cells slide past their neighbors. This generalized model quantitatively captures the experimental data, demonstrating that the interplay between adhesive energetics and dissipative friction is essential for a complete understanding of epithelial fluidity.
title Shape-Independent Fluidization in Epithelial Cell Monolayers
topic Biological Physics
Soft Condensed Matter
url https://arxiv.org/abs/2603.05548