English

Constitutive model for the rheology of biological tissue

Soft Condensed Matter 2023-10-02 v2

Abstract

The rheology of biological tissue is key to processes such as embryo development, wound healing and cancer metastasis. Vertex models of confluent tissue monolayers have uncovered a spontaneous liquid-solid transition tuned by cell shape; and a shear-induced solidification transition of an initially liquid-like tissue. Alongside this jamming/unjamming behaviour, biological tissue also displays an inherent viscoelasticity, with a slow time and rate dependent mechanics. With this motivation, we combine simulations and continuum theory to examine the rheology of the vertex model in nonlinear shear across a full range of shear rates from quastistatic to fast, elucidating its nonlinear stress-strain curves after the inception of shear of finite rate, and its steady state flow curves of stress as a function of strain rate. We formulate a rheological constitutive model that couples cell shape to flow and captures both the tissue solid-liquid transition and its rich linear and nonlinear rheology.

Keywords

Cite

@article{arxiv.2210.02893,
  title  = {Constitutive model for the rheology of biological tissue},
  author = {Suzanne M. Fielding and James O. Cochran and Junxiang Huang and Dapeng Bi and M. Cristina Marchetti},
  journal= {arXiv preprint arXiv:2210.02893},
  year   = {2023}
}

Comments

5 pages, 3 figures; plus supplemental material