Anomalous elasticity of cellular tissue vertex model
Arthur Hernandez, Michael F. Staddon, Mark J. Bowick, M. Cristina, Marchetti, Michael Moshe

TL;DR
This paper analyzes the anomalous elastic behavior of cellular tissue vertex models, revealing a breakdown of linear elasticity and non-analytic energy responses at the transition between fluid and rigid states.
Contribution
It provides a mean-field analysis of a simplified vertex model, uncovering the origin of complex elastic responses due to incompatible target area and perimeter constraints.
Findings
Linear elasticity fails at the rigidity transition.
Different moduli for compression and tension indicate non-analytic energy.
Elastic response arises from two distinct reference state sets.
Abstract
Vertex Models, as used to describe cellular tissue, have an energy controlled by deviations of each cell area and perimeter from target values. The constrained nonlinear relation between area and perimeter leads to new mechanical response. Here we provide a mean-field treatment of a highly simplified model: a uniform network of regular polygons with no topological rearrangements. Since all polygons deform in the same way, we only need to analyze the ground states and the response to deformations of a single polygon (cell). The model exhibits the known transition between a fluid/compatible state, where the cell can accommodate both target area and perimeter, and a rigid/incompatible state. %The rigid solid-like state has a single gapped ground state. We calculate and measure the mechanical resistance to various deformation protocols and discover that at the onset of rigidity, where a…
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