Genetic ablation of Cav1.3 channels significantly reduced infarct size by 29% compared to wild-type mice following ischemia-reperfusion injury.
Does heart rate reduction via genetic ablation of Cav1.3 channels or ivabradine reduce infarct size in a mouse model of ischemia-reperfusion injury?
Decreasing heart rate via genetic ablation of Cav1.3 channels or ivabradine protects the myocardium against ischemia-reperfusion injury in vivo, revealing a close relationship between basal heart rate and infarct size.
Absolute Event Rate: 25.9% vs 36.37%
p-value: p=0.0190
Background Acute myocardial infarction (AMI) is the major cause of cardiovascular mortality worldwide. Most ischemic episodes are triggered by an increase in heart rate, which induces an imbalance between myocardial oxygen delivery and consumption. Developing drugs that selectively reduce heart rate by inhibiting ion channels involved in heart rate control could provide more clinical benefits. The Ca v 1.3-mediated L-type Ca 2+ current ( I Cav1.3 ) play important roles in the generation of heart rate. Therefore, they can constitute relevant targets for selective control of heart rate and cardioprotection during AMI. Objective We aimed to investigate the relationship between heart rate and infarct size using mouse strains knockout for Ca v 1.3 ( Ca v 1.3 −/− ) L-type calcium channel and of the cardiac G protein gated potassium channel ( Girk4 −/− ) in association with the funny (f)-channel inhibitor ivabradine. Methods Wild-type (WT), Ca v 1.3 +/− , Ca v 1.3 −/− and Girk4 −/− mice were used as models of respectively normal heart rate, moderate heart rate reduction, bradycardia, and mild tachycardia, respectively. Mice underwent a surgical protocol of myocardial IR (40 min ischemia and 60 min reperfusion). Heart rate was recorded by one-lead surface ECG recording, and infarct size measured by triphenyl tetrazolium chloride staining. In addition, Ca v 1.3 −/− and WT hearts perfused on a Langendorff system were subjected to the same ischemia-reperfusion protocol ex vivo , without or with atrial pacing, and the coronary flow was recorded. Results Ca v 1.3 −/− mice presented reduced infarct size (−29%), while Girk4 −/− displayed increased infarct size (+30%) compared to WT mice. Consistently, heart rate reduction in Ca v 1.3 +/− or by the f-channel blocker ivabradine was associated with significant decrease in infarct size (−27% and −32%, respectively) in comparison to WT mice. Conclusion Our results show that decreasing heart rate allows to protect the myocardium against IR injury in vivo and reveal a close relationship between basal heart rate and IR injury. In addition, this study suggests that targeting Ca v 1.3 channels could constitute a relevant target for reducing infarct size, since maximal heart rate dependent cardioprotective effect is already observed in Ca v 1.3 +/− mice.
Delgado-Betancourt et al. (Tue,) conducted a other in Ischemia-reperfusion injury. Genetic ablation of Cav1.3 channels (Cav1.3-/-) vs. Wild-type (WT) mice was evaluated on Infarct size (% of area at risk) (p=0.0190). Genetic ablation of Cav1.3 channels significantly reduced infarct size by 29% compared to wild-type mice following ischemia-reperfusion injury.