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Published on: December 31, 2013
Evidence TRPV4 contributes to mechanosensitive ion channels in mouse skeletal muscle fibers
Tiffany C Ho1, Natalie A Horn, Tuan Huynh
1Department of Cellular and Molecular Pharmacology, School of Medicine, University of California, San Francisco, San Francisco, CA, USA.
Abstract:
We recorded the activity of single mechanosensitive (MS) ion channels from membrane patches on single muscle fibers isolated from mice. We investigated the actions of various TRP (transient receptor potential) channel blockers on MS channel activity. 2-aminoethoxydiphenyl borate (2-APB) neither inhibited nor facilitated single channel activity at submillimolar concentrations. The absence of an effect of 2-APB indicates MS channels are not composed purely of TRPC or TRPV1, 2 or 3 proteins. Exposing patches to 1-oleolyl-2-acetyl-sn-glycerol (OAG), a potent activator of TRPC channels, also had no effect on MS channel activity. In addition, flufenamic acid and spermidine had no effect on the activity of single MS channels. By contrast, SKF-96365 and ruthenium red blocked single-channel currents at micromolar concentrations. SKF-96365 produced a rapid block of the open channel current. The blocking rate depended linearly on blocker concentration, while the unblocking rate was independent of concentration, consistent with a simple model of open channel block. A fit to the concentration-dependence of block gave k(on) = 13 x 10 ( 6) M (-1) s (-1) and k(off) = 1609 sec (-1) with K(D) = ~124 µM. Block by ruthenium red was complex, involving both reduction of the amplitude of the single-channel current and increased occupancy of subconductance levels. The reduction in current amplitude with increasing concentration of ruthenium red gave a K(D) = ~49 µM. The high sensitivity of MS channels to block by ruthenium red suggests MS channels in skeletal muscle contain TRPV subunits. Recordings from skeletal muscle isolated from TRPV4 knockout mice failed to show MS channel activity, consistent with a contribution of TRPV4. In addition, exposure to hypo-osmotic solutions increases opening of MS channels in muscle. Our results provide evidence TRPV4 contributes to MS channels in skeletal muscle.
Insights
Mechanosensitive (MS) ion channels in mouse muscle are sensitive to ruthenium red and SKF-96365. TRPV4 channels likely contribute to MS channel activity in skeletal muscle.
Area of Science:
- Physiology
- Molecular Biology
- Biophysics
Background:
- Mechanosensitive (MS) ion channels are crucial for cellular responses to mechanical stimuli in muscle.
- Transient Receptor Potential (TRP) channels are a diverse family implicated in various sensory functions.
- Understanding the molecular composition of MS channels in skeletal muscle is vital for elucidating muscle mechanotransduction.
Purpose of the Study:
- To investigate the role of TRP channel subunits in the function of MS ion channels in mouse skeletal muscle.
- To characterize the effects of specific TRP channel blockers on MS channel activity.
- To determine the contribution of TRPV4 to mechanosensitivity in skeletal muscle.
Main Methods:
- Single-channel electrophysiology on membrane patches from isolated mouse muscle fibers.
- Application of various TRP channel blockers (2-APB, OAG, flufenamic acid, spermidine, SKF-96365, ruthenium red).
- Electrophysiological recordings from skeletal muscle of TRPV4 knockout mice and exposure to hypo-osmotic solutions.
Main Results:
- 2-aminoethoxydiphenyl borate (2-APB) and 1-oleolyl-2-acetyl-sn-glycerol (OAG) did not affect MS channel activity.
- SKF-96365 and ruthenium red significantly blocked MS channel currents in a concentration-dependent manner.
- TRPV4 knockout mice exhibited no detectable MS channel activity, and hypo-osmotic solutions increased MS channel opening.
Conclusions:
- MS channels in skeletal muscle are not composed solely of TRPC or TRPV1-3 subunits.
- SKF-96365 and ruthenium red are effective blockers of skeletal muscle MS channels.
- TRPV4 is a key component of mechanosensitive ion channels in skeletal muscle.
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