Key result
Glibenclamide cuts regulatory volume decrease by ~68% during hypotonic stress in rat ventricular myocytes.
Absolute Event Rate: 0.13% vs 0.41%
p-value: p=<0.01
K(ATP) channels (Kir6.1 and Kir6.2) are expressed in rat ventricular myocytes and play a functional role in the regulatory volume decrease process during hypotonic stress.
Supports KATP role in rat myocyte volume regulation; hypothesis-generating and leaves open human relevance.
Regulatory volume decrease (RVD) is essential for the survival of animal cells. The aim of this study was to observe the RVD process in rat ventricular myocytes, and to determine if the K(ATP) channels are involved in the RVD process in these cells. By using reverse transcriptase polymerase chain reaction and Western blot analysis, we demonstrated that there are two types of K(ATP) channels expressed in rat ventricular myocytes: Kir6.1 and Kir6.2. When rat cardiac myocytes were exposed to hypotonic solution, cell volume increased significantly within 15 min and then gradually recovered. This typical RVD process could be inhibited by a Cl(-) channel blocker (0.5 mM 9-anthracene-carboxylic acid?9-AC), a K(+) channel blocker (5.0 mM CsCl) and a K(ATP) channel blocker glibenclamide (10 microM). Electrophysiological results showed that hypotonic solution activated a whole-cell current, which had similar biophysical characteristics with K(ATP) opener (pinacidil)-induced currents. This current could be blocked by glibenclamide. Our data suggested that the RVD process in rat ventricular myocytes is dependent on the activation of K(+) channels, and that K(ATP) channels are involved in this process.
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Shi et al. (2009) studied Normal rat ventricular myocytes. Glibenclamide (KATP channel blocker) vs. Hypotonic solution alone was evaluated on Regulatory volume decrease (RVD) fraction after 30 min exposure to hypo-osmotic solution (p=<0.01). In isolated rat ventricular myocytes, the KATP channel blocker glibenclamide significantly reduced the regulatory volume decrease fraction during hypotonic stress from 0.41 to 0.13 (p<0.01).
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