Diazoxide provides cardioprotection and enhances action potential shortening during ischemia by activating sarcolemmal ATP-sensitive potassium channels, not mitochondrial channels, in mouse hearts.
Does diazoxide improve recovery of contractile function after ischemia/reperfusion in mouse hearts via sarcolemmal ATP-sensitive potassium channels?
Diazoxide provides cardioprotection against ischemia/reperfusion injury in mice by activating sarcolemmal, rather than mitochondrial, ATP-sensitive potassium channels.
BACKGROUND: We recently demonstrated that the sarcolemmal ATP-sensitive potassium (sarcK(ATP)) channel plays a key role in cardioprotection against ischemia/reperfusion injuries in Kir6.2-knockout (KO) mice. In the present study, we evaluated the effects of diazoxide, a mitochondrial ATP-sensitive potassium (mitoK(ATP)) channel opener, on ischemia-induced myocardial stunning in sarcK(ATP) channel-deficient mice. METHODS AND RESULTS: Langendorff-perfused hearts of wild-type (WT) and KO mice were subjected to global ischemia/reperfusion. Diazoxide improved the recovery of contractile function in WT hearts but not in KO hearts. Treatment with HMR1098 (a sarcK(ATP) channel blocker) but not 5-hydroxydecanoate (a mitoK(ATP) channel blocker) abolished the cardioprotective effect of diazoxide in WT hearts. In coronary-perfused WT ventricular muscle preparations, action potential shortening during ischemia was accelerated in the presence of diazoxide. CONCLUSIONS: Diazoxide enhances action potential shortening during ischemia by activating sarcK(ATP) channels and provides cardioprotection in mouse hearts.
Suzuki et al. (2003) studied Ischemia/reperfusion injuries. Diazoxide vs. HMR1098 or 5-hydroxydecanoate was evaluated on Recovery of contractile function and action potential shortening during ischemia. Diazoxide provides cardioprotection and enhances action potential shortening during ischemia by activating sarcolemmal ATP-sensitive potassium channels, not mitochondrial channels, in mouse hearts.