AI Article Synopsis

  • Living cells can actively sense and adapt to the stiffness of their surroundings through both biochemical and mechanical processes.
  • A minimal model demonstrates that the interaction between myosin power strokes and the dynamic actin network influences how cells generate force and change shape in response to environmental stiffness.
  • The study finds that changes in stiffness trigger mechanical responses in the actomyosin cortex, affecting cell contractility and energy dissipation, similar to what occurs in whole muscle contraction.

Article Abstract

Living cells adapt and respond actively to the mechanical properties of their environment. In addition to biochemical mechanotransduction, evidence exists for a myosin-dependent purely mechanical sensitivity to the stiffness of the surroundings at the scale of the whole cell. Using a minimal model of the dynamics of actomyosin cortex, we show that the interplay of myosin power strokes with the rapidly remodeling actin network results in a regulation of force and cell shape that adapts to the stiffness of the environment. Instantaneous changes of the environment stiffness are found to trigger an intrinsic mechanical response of the actomyosin cortex. Cortical retrograde flow resulting from actin polymerization at the edges is shown to be modulated by the stress resulting from myosin contractility, which in turn, regulates the cell length in a force-dependent manner. The model describes the maximum force that cells can exert and the maximum speed at which they can contract, which are measured experimentally. These limiting cases are found to be associated with energy dissipation phenomena, which are of the same nature as those taking place during the contraction of a whole muscle. This similarity explains the fact that single nonmuscle cell and whole-muscle contraction both follow a Hill-like force-velocity relationship.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4352826PMC
http://dx.doi.org/10.1073/pnas.1417113112DOI Listing

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