Instability and fingering of interfaces in growing tissue

Fuente: arXiv
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Auteurs principaux: Büscher, Tobias, Diez, Angel L., Gompper, Gerhard, Elgeti, Jens
Format: Preprint
Publié: 2020
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author Büscher, Tobias
Diez, Angel L.
Gompper, Gerhard
Elgeti, Jens
author_facet Büscher, Tobias
Diez, Angel L.
Gompper, Gerhard
Elgeti, Jens
contents Interfaces in tissues are ubiquitous, both between tissue and environment as well as between populations of different cell types. The propagation of an interface can be driven mechanically. % e.g. by a difference in the respective homeostatic stress of the different cell types. Computer simulations of growing tissues are employed to study the stability of the interface between two tissues on a substrate. From a mechanical perspective, the dynamics and stability of this system is controlled mainly by four parameters of the respective tissues: (i) the homeostatic stress (ii) cell motility (iii) tissue viscosity and (iv) substrate friction. For propagation driven by a difference in homeostatic stress, the interface is stable for tissue-specific substrate friction even for very large differences of homeostatic stress; however, it becomes unstable above a critical stress difference when the tissue with the larger homeostatic stress has a higher viscosity. A small difference in directed bulk motility between the two tissues suffices to result in propagation with a stable interface, even for otherwise identical tissues. Larger differences in motility force, however, result in a finite-wavelength instability of the interface. Interestingly, the instability is apparently bound by nonlinear effects and the amplitude of the interface undulations only grows to a finite value in time.
format Preprint
id arxiv_https___arxiv_org_abs_2003_04601
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Instability and fingering of interfaces in growing tissue
Büscher, Tobias
Diez, Angel L.
Gompper, Gerhard
Elgeti, Jens
Tissues and Organs
Interfaces in tissues are ubiquitous, both between tissue and environment as well as between populations of different cell types. The propagation of an interface can be driven mechanically. % e.g. by a difference in the respective homeostatic stress of the different cell types. Computer simulations of growing tissues are employed to study the stability of the interface between two tissues on a substrate. From a mechanical perspective, the dynamics and stability of this system is controlled mainly by four parameters of the respective tissues: (i) the homeostatic stress (ii) cell motility (iii) tissue viscosity and (iv) substrate friction. For propagation driven by a difference in homeostatic stress, the interface is stable for tissue-specific substrate friction even for very large differences of homeostatic stress; however, it becomes unstable above a critical stress difference when the tissue with the larger homeostatic stress has a higher viscosity. A small difference in directed bulk motility between the two tissues suffices to result in propagation with a stable interface, even for otherwise identical tissues. Larger differences in motility force, however, result in a finite-wavelength instability of the interface. Interestingly, the instability is apparently bound by nonlinear effects and the amplitude of the interface undulations only grows to a finite value in time.
title Instability and fingering of interfaces in growing tissue
topic Tissues and Organs
url https://arxiv.org/abs/2003.04601