4.8 Article

Mechanistic basis for low threshold mechanosensitivity in voltage-dependent K+ channels

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1204700109

Keywords

electrophysiology; potassium channel; gigaseal; gating; membrane forces

Funding

  1. NIH [GM43949]
  2. Boehringer Ingelheim Fonds

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Living cells respond to mechanical forces applied to their outer membrane through processes referred to as mechanosensation. Faced with hypotonic shock, to circumvent cell lysis, bacteria open large solute-passing channels to reduce the osmotic pressure gradient. In the vascular beds of vertebrate animals blood flow is regulated directly through mechanical distention-induced opening of stretch-activated channels in smooth muscle cells. Touch sensation is thought to originate in mechanically sensitive ion channels in nerve endings, and hearing in mechanically sensitive ion channels located in specialized cells of the ear. While the ubiquity of mechanosensation in living cells is evident, the ion channels underlying the transduction events in vertebrate animals have remained elusive. Here we demonstrate through electrophysiological recordings that voltage-dependent K+ (Kv) channels exhibit exquisite sensitivity to small (physiologically relevant in magnitude) mechanical perturbations of the cell membrane. The demonstrated mechanosensitivity is quantitatively consistent with membrane tension acting on a late-opening transition through stabilization of a dilated pore. This effect causes a shift in the voltage range over which Kv channels open as well as an increase in the maximum open probability. This mechanically induced shift could allow Kv channels and perhaps other voltage-dependent ion channels to play a role in mechanosensation.

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