Mechanical state, material properties and continuous description of an epithelial tissue

Author:

Bonnet Isabelle1,Marcq Philippe2,Bosveld Floris1,Fetler Luc2,Bellaïche Yohanns1,Graner François1

Affiliation:

1. Genetics and Developmental Biology, Team ‘Polarity, division and morphogenesis’, Institut Curie, UMR3215 CNRS, U934 Inserm, 26 rue d'Ulm, F-75248 Paris Cedex 05, France

2. Physico-Chimie Curie, Institut Curie, UMR168 CNRS, UPMC, 26 rue d'Ulm, F-75248 Paris Cedex 05, France

Abstract

During development, epithelial tissues undergo extensive morphogenesis based on coordinated changes of cell shape and position over time. Continuum mechanics describes tissue mechanical state and shape changes in terms of strain and stress. It accounts for individual cell properties using only a few spatially averaged material parameters. To determine the mechanical state and parameters in theDrosophilapupa dorsal thorax epithelium, we severedin vivothe adherens junctions around a disc-shaped domain comprising typically a hundred cells. This enabled a direct measurement of the strain along different orientations at once. The amplitude and the anisotropy of the strain increased during development. We also measured the stress-to-viscosity ratio and similarly found an increase in amplitude and anisotropy. The relaxation time was of the order of 10 s. We propose a space–time, continuous model of the relaxation. Good agreement with experimental data validates the description of the epithelial domain as a continuous, linear, visco-elastic material. We discuss the relevant time and length scales. Another material parameter, the ratio of external friction to internal viscosity, is estimated by fitting the initial velocity profile. Together, our results contribute to quantify forces and displacements, and their time evolution, during morphogenesis.

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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