A shape-driven reentrant jamming transition in confluent monolayers of synthetic cell-mimics

Fuente: arXiv
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Autores principales: Arora, Pragya, Sadhukhan, Souvik, Nandi, Saroj Kumar, Bi, Dapeng, Sood, A K, Ganapathy, Rajesh
Formato: Preprint
Publicado: 2024
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author Arora, Pragya
Sadhukhan, Souvik
Nandi, Saroj Kumar
Bi, Dapeng
Sood, A K
Ganapathy, Rajesh
author_facet Arora, Pragya
Sadhukhan, Souvik
Nandi, Saroj Kumar
Bi, Dapeng
Sood, A K
Ganapathy, Rajesh
contents Many critical biological processes, like wound healing, require confluent cell monolayers/bulk tissues to transition from a jammed solid-like to a fluid-like state. Although numerical studies anticipate changes in the cell shape alone can lead to unjamming, experimental support for this prediction is not definitive because, in living systems, fluidization due to density changes cannot be ruled out. Additionally, a cell's ability to modulate its motility only compounds difficulties since even in assemblies of rigid active particles, changing the nature of self-propulsion has non-trivial effects on the dynamics. Here, we design and assemble a monolayer of synthetic cell-mimics and examine their collective behaviour. By systematically increasing the persistence time of self-propulsion, we discovered a cell shape-driven, density-independent, re-entrant jamming transition. Notably, we observed cell shape and shape variability were mutually constrained in the confluent limit and followed the same universal scaling as that observed in confluent epithelia. Dynamical heterogeneities, however, did not conform to this scaling, with the fast cells showing suppressed shape variability, which our simulations revealed is due to a transient confinement effect of these cells by their slower neighbors. Our experiments unequivocally establish a morphodynamic link, demonstrating that geometric constraints alone can dictate epithelial jamming/unjamming.
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id arxiv_https___arxiv_org_abs_2401_13437
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A shape-driven reentrant jamming transition in confluent monolayers of synthetic cell-mimics
Arora, Pragya
Sadhukhan, Souvik
Nandi, Saroj Kumar
Bi, Dapeng
Sood, A K
Ganapathy, Rajesh
Soft Condensed Matter
Disordered Systems and Neural Networks
Statistical Mechanics
Many critical biological processes, like wound healing, require confluent cell monolayers/bulk tissues to transition from a jammed solid-like to a fluid-like state. Although numerical studies anticipate changes in the cell shape alone can lead to unjamming, experimental support for this prediction is not definitive because, in living systems, fluidization due to density changes cannot be ruled out. Additionally, a cell's ability to modulate its motility only compounds difficulties since even in assemblies of rigid active particles, changing the nature of self-propulsion has non-trivial effects on the dynamics. Here, we design and assemble a monolayer of synthetic cell-mimics and examine their collective behaviour. By systematically increasing the persistence time of self-propulsion, we discovered a cell shape-driven, density-independent, re-entrant jamming transition. Notably, we observed cell shape and shape variability were mutually constrained in the confluent limit and followed the same universal scaling as that observed in confluent epithelia. Dynamical heterogeneities, however, did not conform to this scaling, with the fast cells showing suppressed shape variability, which our simulations revealed is due to a transient confinement effect of these cells by their slower neighbors. Our experiments unequivocally establish a morphodynamic link, demonstrating that geometric constraints alone can dictate epithelial jamming/unjamming.
title A shape-driven reentrant jamming transition in confluent monolayers of synthetic cell-mimics
topic Soft Condensed Matter
Disordered Systems and Neural Networks
Statistical Mechanics
url https://arxiv.org/abs/2401.13437