Rigidity of Epithelial Tissues as a Double Optimization Problem

Fuente: arXiv
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Main Authors: Arzash, Sadjad, Tah, Indrajit, Liu, Andrea J., Manning, M. Lisa
Format: Preprint
Published: 2023
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author Arzash, Sadjad
Tah, Indrajit
Liu, Andrea J.
Manning, M. Lisa
author_facet Arzash, Sadjad
Tah, Indrajit
Liu, Andrea J.
Manning, M. Lisa
contents How do cells tune emergent properties at the scale of tissues? One class of such emergent behaviors are rigidity transitions, in which a tissue changes from a solid-like to a fluid-like state or vice versa. Here, we introduce a new way for a tissue described by a vertex model to tune its rigidity, by using ``tunable degrees of freedom." We use the vertex model elastic energy as a cost function and the cell stiffnesses, target shapes, and target areas as different sets of degrees of freedom describing cell-cell interactions that can be tuned to minimize the cost function. We show that the rigidity transition is unaffected when cell stiffnesses are treated as tunable degrees of freedom. When preferred shapes or areas are treated as tunable degrees of freedom, however, induced spatial correlations in target cell shapes or areas shift the rigidity transition. These observations suggest that tissues can coordinate changes in cell-scale properties, treated here as tunable degrees of freedom, to achieve desired tissue-scale behaviors.
format Preprint
id arxiv_https___arxiv_org_abs_2312_11683
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Rigidity of Epithelial Tissues as a Double Optimization Problem
Arzash, Sadjad
Tah, Indrajit
Liu, Andrea J.
Manning, M. Lisa
Soft Condensed Matter
Biological Physics
Tissues and Organs
How do cells tune emergent properties at the scale of tissues? One class of such emergent behaviors are rigidity transitions, in which a tissue changes from a solid-like to a fluid-like state or vice versa. Here, we introduce a new way for a tissue described by a vertex model to tune its rigidity, by using ``tunable degrees of freedom." We use the vertex model elastic energy as a cost function and the cell stiffnesses, target shapes, and target areas as different sets of degrees of freedom describing cell-cell interactions that can be tuned to minimize the cost function. We show that the rigidity transition is unaffected when cell stiffnesses are treated as tunable degrees of freedom. When preferred shapes or areas are treated as tunable degrees of freedom, however, induced spatial correlations in target cell shapes or areas shift the rigidity transition. These observations suggest that tissues can coordinate changes in cell-scale properties, treated here as tunable degrees of freedom, to achieve desired tissue-scale behaviors.
title Rigidity of Epithelial Tissues as a Double Optimization Problem
topic Soft Condensed Matter
Biological Physics
Tissues and Organs
url https://arxiv.org/abs/2312.11683