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Related Experiment Video

Updated: Mar 16, 2026

Visualizing Neuroblast Cytokinesis During C. elegans Embryogenesis
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Embryo as an active granular fluid: stress-coordinated cellular constriction chains.

Guo-Jie Jason Gao1, Michael C Holcomb, Jeffrey H Thomas

  • 1Department of Mechanical Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei, 10617, Taiwan.

Journal of Physics. Condensed Matter : an Institute of Physics Journal
|August 23, 2016
PubMed
Summary

This study introduces an active granular fluid model to understand how mechanical stress guides cell coordination during tissue development. The model reveals that tensile stress promotes cell chain formation, mimicking natural developmental processes.

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Area of Science:

  • Developmental Biology
  • Biophysics
  • Computational Biology

Background:

  • Mechanical stress is crucial for gene expression and tissue development.
  • Systematic methods to study mechanical stress feedback in cellular coordination are lacking.
  • Cellular constriction chains (CCCs) are observed during Drosophila melanogaster embryo ventral furrow formation.

Purpose of the Study:

  • To develop a model for studying mechanical stress and feedback in harmonizing cellular activities.
  • To investigate cellular coordination during apical constriction using a novel modeling approach.
  • To understand the role of stress feedback in the formation of cellular constriction chains.

Main Methods:

  • Proposed an active granular fluid (AGF) model where cells are circular particles in a force network.
  • Modeled cell constriction probability as a function of neighbor-exerted stress.
  • Simulated constriction under different stress conditions (tensile vs. compression).

Main Results:

  • When constriction probability favors tensile stress, particles form chain-like structures.
  • When constriction probability favors compression, particles form compact clusters.
  • Simulated chains closely resemble in vivo CCCs observed during Drosophila embryogenesis.

Conclusions:

  • Tensile-stress feedback likely coordinates apical constriction activity.
  • The AGF model provides insights into cellular coordination during morphogenesis.
  • This particle-based model can analyze mechanical feedback in various developmental processes.