Cyclic muscle contractions reinforce the acto-myosin motors and mediate the full elongation of C. elegans embryo

Author:

Dai Anna1ORCID,Amar Martine Ben1

Affiliation:

1. Laboratoire de Physique de l’Ecole normale supérieure, ENS, Université PSL, CNRS, Sorbonne Université, Université Paris Cité

Abstract

The paramount importance of mechanical forces in morphogenesis and embryogenesis is widely recognized, but understanding the mechanism at the cellular and molecular level remains challenging. Because of its simple internal organization, Caenorhabditis elegans is a rewarding system of study. As demonstrated experimentally, after an initial period of steady elongation driven by the actomyosin network, muscle contractions operate a quasi-periodic sequence of bending, rotation and torsion, that leads to the final 4-fold size of the embryo before hatching. How actomyosin and muscles contribute to embryonic elongation is investigated here theoretically. A filamentary elastic model that converts stimuli generated by biochemical signals in the tissue into driving forces, explains embryonic deformation under actin bundles and muscle activity, and dictates mechanisms of late elongation based on the effects of energy conversion and dissipation. We quantify this dynamic transformation by stretches applied to a cylindrical structure that mimics the body shape in finite elasticity, obtaining good agreement and understanding for both wild-type and mutant embryos at all stages.

Publisher

eLife Sciences Publications, Ltd

Reference75 articles.

1. Flow of a Newtonian fluid between eccentric rotating cylinders: inertial effects;Archive for Rational Mechanics and Analysis,1976

2. Mimicking cortex convolutions through the wrinkling of growing soft bilayers;Journal of Elasticity,2017

3. Anisotropic growth shapes intestinal tissues during embryogenesis;Proceedings of the National Academy of Sciences,2013

4. Assessing the contribution of active and passive stresses in C. elegans elongation;Physical Review Letters,2018

5. Myosin-dependent junction remodelling controls planar cell intercalation and axis elongation;Nature,2004

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