Contractile equilibration of single cells to step changes in extracellular stiffness

Biophys J. 2012 Feb 8;102(3):443-51. doi: 10.1016/j.bpj.2011.11.4020. Epub 2012 Feb 7.

Abstract

Extracellular stiffness has been shown to alter long timescale cell behaviors such as growth and differentiation, but the cellular response to changes in stiffness on short timescales is poorly understood. By studying the contractile response of cells to dynamic stiffness conditions using an atomic force microscope, we observe a seconds-timescale response to a step change in extracellular stiffness. Specifically, we observe acceleration in contraction velocity (μm/min) and force rate (nN/min) upon a step decrease in stiffness and deceleration upon a step increase in stiffness. Interestingly, this seconds-timescale response to a change in extracellular stiffness is not altered by inhibiting focal adhesion signaling or stretch-activated ion channels and is independent of cell height and contraction force. Rather, the response timescale is altered only by disrupting cytoskeletal mechanics and is well described by a simple mechanical model of a constant velocity actuator pulling against an internal cellular viscoelastic network. Consistent with the predictions of this model, we find that an osmotically expanding hydrogel responds to step changes in extracellular stiffness in a similar manner to cells. We therefore propose that an initial event in stiffness sensing is establishment of a mechanical equilibrium that balances contraction of the viscoelastic cytoskeleton with deformation of the extracellular matrix.

MeSH terms

  • Animals
  • Biomechanical Phenomena
  • Cell Shape*
  • Extracellular Space / metabolism*
  • Focal Adhesions / metabolism
  • Hydrogels / chemistry
  • Kinetics
  • Mechanical Phenomena*
  • Mice
  • Microscopy, Atomic Force
  • Myosins / metabolism
  • NIH 3T3 Cells
  • Signal Transduction

Substances

  • Hydrogels
  • Myosins