4.8 Article

Biophysical implications of lipid bilayer rheometry for mechanosensitive channels

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1409011111

Keywords

MscL; azolectin; electrophysiology; finite element modeling

Funding

  1. Australian Commonwealth Government
  2. University International Postgraduate Award (UIPA) from the University of New South Wales
  3. National Health and Medical Research Council of Australia

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The lipid bilayer plays a crucial role in gating of mechanosensitive (MS) channels. Hence it is imperative to elucidate the rheological properties of lipid membranes. Herein we introduce a framework to characterize the mechanical properties of lipid bilayers by combining micropipette aspiration (MA) with theoretical modeling. Our results reveal that excised liposome patch fluorometry is superior to traditional cell-attached MA for measuring the intrinsic mechanical properties of lipid bilayers. The computational results also indicate that unlike the uniform bilayer tension estimated by Laplace's law, bilayer tension is not uniform across the membrane patch area. Instead, the highest tension is seen at the apex of the patch and the lowest tension is encountered near the pipette wall. More importantly, there is only a negligible difference between the stress profiles of the outer and inner monolayers in the cell-attached configuration, whereas a substantial difference (similar to 30%) is observed in the excised configuration. Our results have far-reaching consequences for the biophysical studies of MS channels and ion channels in general, using the patch-clamp technique, and begin to unravel the difference in activity seen between MS channels in different experimental paradigms.

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