Mechanochemical models for calcium waves in embryonic epithelia
Katerina Kaouri, Paul E. M\'endez, Ricardo Ruiz-Baier

TL;DR
This paper extends a mechanochemical model of calcium waves in embryonic epithelia to multiple dimensions, using finite element simulations to explore wave propagation, bifurcations, and calcium spark nucleation relevant to embryogenesis and other biological processes.
Contribution
It introduces a multi-dimensional, coupled mechanochemical model with advanced numerical methods, expanding previous one-dimensional models to better understand calcium dynamics in tissues.
Findings
Solitary and periodic calcium waves propagate through epithelial sheets.
Bifurcation analysis reveals system stability and wave patterns.
Calcium sparks nucleate and couple with waves, affecting tissue mechanics.
Abstract
In embryogenesis, epithelial cells, acting as individual entities or as coordinated aggregates in a tissue, exhibit strong coupling between chemical signalling and mechanical responses to internally or externally applied stresses. Intercellular communication in combination with such coordination of morphogenetic movements can lead to drastic modifications in the calcium distribution in the cells. In this paper we extend the recent mechanochemical model in [K. Kaouri, P.K. Maini, P.A. Skourides, N. Christodoulou, S.J. Chapman. J. Math. Biol., 78 (2019) 2059--2092], for an epithelial continuum in one dimension, to a more realistic multi-dimensional case. The resulting parametrised governing equations consist of an advection-diffusion-reaction system for calcium signalling coupled with active-stress linear viscoelasticity and equipped with pure Neumann boundary conditions. We implement a…
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Taxonomy
TopicsCellular Mechanics and Interactions · Elasticity and Material Modeling · Skin and Cellular Biology Research
