Effect of cytoskeletal elastic properties on the mechanoelectrical transduction in excitable cells

J Biomech. 2012 May 11;45(8):1444-9. doi: 10.1016/j.jbiomech.2012.02.017. Epub 2012 Mar 6.

Abstract

This paper addresses the possible mechanism of stretch on cell electrochemical potential change, based on the physicochemical properties of cytoskeletal network. Synthetic polyelectrolyte gel was used as an experimental model of the cytoskeleton. Gel samples with different density of network cross linking were studied. Triangular axial deformations of samples were applied. Simultaneously, the electrochemical (Donnan) potential of the gel was measured between a micropipette electrode pinned into the swollen gel, and a reference electrode in the outer solution. We found that axial deformation shifts the gel potential toward depolarization. The extent of gel depolarization showed a close negative correlation with the Young modulus of the gel. We suggest that the underlying mechanism is likely to be a universal process of counterion adsorption on charged polymer filaments due to the decrease of distance between polymer filaments owing to gel elongation.

MeSH terms

  • Animals
  • Biomimetic Materials / chemistry*
  • Cytoskeleton / chemistry*
  • Cytoskeleton / ultrastructure*
  • Elastic Modulus
  • Electric Impedance
  • Electromagnetic Fields
  • Humans
  • Ion Channel Gating*
  • Materials Testing
  • Mechanotransduction, Cellular*
  • Membrane Potentials*
  • Stress, Mechanical