Embryonic tissues as active foams

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Sangwoo Kim - , University of California at Santa Barbara (Author)
  • Marie Pochitaloff - , University of California at Santa Barbara (Author)
  • Georgina A. Stooke-Vaughan - , University of California at Santa Barbara (Author)
  • Otger Campàs - , Chair of Tissue Dynamics, Clusters of Excellence PoL: Physics of Life, University of California at Santa Barbara (Author)

Abstract

The physical state of embryonic tissues emerges from non-equilibrium, collective interactions among constituent cells. Cellular jamming, rigidity transitions and characteristics of glassy dynamics have all been observed in multicellular systems, but it is unclear how cells control these emergent tissue states and transitions, including tissue fluidization. Combining computational and experimental methods, here we show that tissue fluidization in posterior zebrafish tissues is controlled by the stochastic dynamics of tensions at cell–cell contacts. We develop a computational framework that connects cell behaviour to embryonic tissue dynamics, accounting for the presence of extracellular spaces, complex cell shapes and cortical tension dynamics. We predict that tissues are maximally rigid at the structural transition between confluent and non-confluent states, with actively generated tension fluctuations controlling stress relaxation and tissue fluidization. By directly measuring strain and stress relaxation, as well as the dynamics of cell rearrangements, in elongating posterior zebrafish tissues, we show that tension fluctuations drive active cell rearrangements that fluidize the tissue. These results highlight a key role of non-equilibrium tension dynamics in developmental processes.

Details

Original languageEnglish
Pages (from-to)859-866
Number of pages8
JournalNature physics
Volume17
Issue number7
Publication statusPublished - Jul 2021
Peer-reviewedYes

Keywords

ASJC Scopus subject areas