Epithelial Wound Healing Coordinates Distinct Actin Network Architectures to Conserve Mechanical Work and Balance Power

ORAL

Abstract

How cells with diverse morphologies and cytoskeletal architectures modulate their mechanical behaviors to drive robust collective motion within tissues is poorly understood. During wound repair within epithelial monolayers in vitro, cells coordinate the assembly of branched and bundled actin networks to regulate the total mechanical work produced by collective cell motion. Using traction force microscopy, we show that the balance of actin network architectures optimizes the wound closure rate and the magnitude of the mechanical work. These values are constrained by the effective power exerted by the monolayer, which is conserved and independent of actin architectures. Using a cell-based physical model, we show that the rate at which mechanical work is done by the monolayer is limited by the transformation between actin network architectures and differential regulation of cell-substrate friction. These results and our proposed mechanisms provide a robust quantitative model for how cells collectively coordinate their non-equilibrium behaviors to dynamically regulate tissue-scale mechanical output.

*We acknowledge funding ARO MURI W911NF-14-1-0403, NSF CMMI-1525316, NIH RO1 GM126256 and NIH U54 CA209992.

Presenters

  • Michael Murrell

    • Yale Univ
    • Yale University

Authors

  • Alan Tabatabai

    • Yale Univ
  • Visar Ajeti

    • Yale Univ
  • Andrew Fleszar

    • Yale Univ
  • Michael F Staddon

    • Physics, University College London
  • Daniel S. Seara

    • Yale Univ
  • Christian Suarez

    • Molecular Genetics and Cell Biology, University of Chicago
  • Muhammad Yousafzai

    • Yale Univ
  • Dapeng Bi

    • Northeastern University
    • Physics, Northeastern University
  • Dave Kovar

    • Molecular Genetics and Cell Biology, University of Chicago
  • Shiladitya Banerjee

    • Physics, University College London
  • Michael Murrell

    • Yale Univ
    • Yale University