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Modeling epithelial tissues as active-elastic sheets reproduce contraction pulses and predict rip resistance

Biology

Modeling epithelial tissues as active-elastic sheets reproduce contraction pulses and predict rip resistance

S. Armon, M. S. Bull, et al.

Discover a groundbreaking experiment-inspired model for dynamic epithelia from researchers Shahaf Armon, Matthew S. Bull, Avraham Moriel, Hillel Aharoni, and Manu Prakash. This model reveals how cellular contraction under tension creates propagating contraction pulses and offers insights into enhancing rip resistance in various tissues. A fascinating exploration that could inspire the design of synthetic materials!... show more
Abstract
Confluent epithelial tissues can be viewed as soft active solids, as their individual cells contract in response to local conditions. Little is known about the emergent properties of such materials. Empirical observations have shown contraction waves propagation in various epithelia, yet the governing mechanism, as well as its physiological function, is still unclear. Here we propose an experiment-inspired model for such dynamic epithelia. We show how the widespread cellular response of contraction-under-tension is sufficient to give rise to propagating contraction pulses, by mapping numerically and theoretically the consequences of such a cellular response. The model explains observed phenomena but also predicts enhanced rip-resistance as an emergent property of such cellular sheets. Unlike healing post-rupture, these sheets avoid it by actively re-distributing external stresses across their surface. The mechanism is relevant to a broad class of tissues, especially such under challenging mechanical conditions, and may inspire engineering of synthetic materials.
Publisher
Communications Physics
Published On
Jul 20, 2021
Authors
Shahaf Armon, Matthew S. Bull, Avraham Moriel, Hillel Aharoni, Manu Prakash
Tags
dynamic epithelia
cellular response
contraction pulses
rip resistance
mechanical conditions
synthetic materials
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