Back

Critical Cell Spacing Drives Phase Transition in Matrix-Mediated Tissue Condensation

Peng, X.; Huang, Y.; Kong, W.; Du, Y.; Elson, E. L.; Feng, X.-Q.; Genin, G. M.

2025-03-21 biophysics
10.1101/2024.11.05.622090 bioRxiv
Show abstract

Biological tissues exhibit phase transitions governed by mechanical feedback between cells and their extracellular matrix (ECM). We demonstrate through bio-chemo-mechanical modeling that this emergent behavior arises from competing physical effects: increasing matrix stiffness enhances individual cell activation while simultaneously weakening long-range mechanical communication. This competition establishes a critical cell spacing threshold (80-160 {micro}m) that precisely matches experimental observations across diverse cell types and collagen densities. Our model reveals that the critical stretch ratio at which fibrous networks transition from compliant to strain-stiffening governs this threshold through the formation of tension bands between neighboring cells. These tension bands create a mechanical percolation network that drives the collective phase transition in tissue behavior. Our model explains how fibrous architecture controls emergent mechanical properties in biological systems and offers insight into both the physics of fiber-reinforced composite materials under active stress, and into potential mechanical interventions for fibrotic disorders.

Published in Proceedings of the National Academy of Sciences (predicted rank #3) · training set

Matching journals

The top 7 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.