Traction Forces Control Cell-Edge Dynamics and Mediate Distance Sensitivity during Cell Polarization.

Zeno Messi1, Alicia Bornert1, Franck Raynaud2

  • 1Laboratory of Physics of Living Matter, EPFL, Route de la Sorge, Lausanne 1015, Switzerland.

Current Biology : CB
|March 30, 2020
PubMed
Summary

This study explores how traction forces influence the shape changes and movement of polarizing fish epidermal keratocytes. Researchers found that forces increase during protrusion and peak at the start of retraction. They also observed that both forces and the likelihood of switching from protrusion to retraction increase with distance from the cell center. Inhibiting contractility reduced edge fluctuations and disrupted polarization, but external forces could still trigger retraction. Actin flow rate did not show the same pattern as traction forces, suggesting it is not the main driver of edge behavior. A model of actin-myosin networks supports the idea that force-distance relationships emerge naturally from network properties.

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