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PMID: 23834368 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Bacterial mechanosensitive channels: models for studying mechanosensory transduction.

Antioxidants & redox signaling ·Vol. 20 ·No. 6 ·2014-02-20 ·Pages 952-69

Martinac B, Nomura T, Chi G, Petrov E, Rohde PR, Battle AR, Foo A, Constantine M, Rothnagel R, Carne S, Deplazes E, Cornell B, Cranfield CG, Hankamer B, Landsberg MJ

Abstract

Sensations of touch and hearing are manifestations of mechanical contact and air pressure acting on touch receptors and hair cells of the inner ear, respectively. In bacteria, osmotic pressure exerts a significant mechanical force on their cellular membrane. Bacteria have evolved mechanosensitive (MS) channels to cope with excessive turgor pressure resulting from a hypo-osmotic shock. MS channel opening allows the expulsion of osmolytes and water, thereby restoring normal cellular turgor and preventing cell lysis. As biological force-sensing systems, MS channels have been identified as the best examples of membrane proteins coupling molecular dynamics to cellular mechanics. The bacterial MS channel of large conductance (MscL) and MS channel of small conductance (MscS) have been subjected to extensive biophysical, biochemical, genetic, and structural analyses. These studies have established MscL and MscS as model systems for mechanosensory transduction. In recent years, MS ion channels in mammalian cells have moved into focus of mechanotransduction research, accompanied by an increased awareness of the role they may play in the pathophysiology of diseases, including cardiac hypertrophy, muscular dystrophy, or Xerocytosis. A recent exciting development includes the molecular identification of Piezo proteins, which function as nonselective cation channels in mechanosensory transduction associated with senses of touch and pain. Since research on Piezo channels is very young, applying lessons learned from studies of bacterial MS channels to establishing the mechanism by which the Piezo channels are mechanically activated remains one of the future challenges toward a better understanding of the role that MS channels play in mechanobiology.

MeSH Terms
Animals Bacteria/metabolism Cell Membrane/metabolism Humans Mechanotransduction, Cellular/physiology Models, Biological
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Martinac Boris
1 Molecular Cardiology and Biophysics Division/Mechanosensory Biophysics Laboratory, Victor Chang Cardiac Research Institute , Darlinghurst, Australia .
Nomura Takeshi
Chi Gamma
Petrov Evgeny
Rohde Paul R
Battle Andrew R
Foo Alexander
Constantine Maryrose
Rothnagel Rosalba
Carne Sonia
Deplazes Evelyne
Cornell Bruce
Cranfield Charles G
Hankamer Ben
Landsberg Michael J
Article Info
Journal
Antioxidants & redox signaling
Abbr.
Antioxid Redox Signal
ISSN
1557-7716
Published
2014-02-20
Epub
2013-00-15
Pages
952-69
Language
English
Region
United States
NLM ID
100888899
Subset
IM
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