English

Polar Fluctuations Lead to Extensile Nematic Behavior in Confluent Tissues

Soft Condensed Matter 2022-02-21 v2 Biological Physics

Abstract

How can a collection of motile cells, each generating contractile nematic stresses in isolation, become an extensile nematic at the tissue-level? Understanding this seemingly contradictory experimental observation, which occurs irrespective of whether the tissue is in the liquid or solid states, is not only crucial to our understanding of diverse biological processes, but is also of fundamental interest to soft matter and many-body physics. Here, we resolve this cellular to tissue level disconnect in the small fluctuation regime by using analytical theories based on hydrodynamic descriptions of confluent tissues, in both liquid and solid states. Specifically, we show that a collection of microscopic constituents with no inherently nematic extensile forces can exhibit active extensile nematic behavior when subject to polar fluctuating forces. We further support our findings by performing cell level simulations of minimal models of confluent tissues.

Keywords

Cite

@article{arxiv.2107.03838,
  title  = {Polar Fluctuations Lead to Extensile Nematic Behavior in Confluent Tissues},
  author = {Andrew Killeen and Thibault Bertrand and Chiu Fan Lee},
  journal= {arXiv preprint arXiv:2107.03838},
  year   = {2022}
}

Comments

6 pages main text + 14 pages of Supplemental Materials. Version 2 contains new simulation and analytical results