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Blockade of Melatonin Receptors Abolishes Its Antiarrhythmic Effect and Slows Ventricular Conduction in Rat Hearts
Aleksandra V Durkina1, Barbara Szeiffova Bacova2, Olesya G Bernikova1
1Department of Cardiac Physiology, Institute of Physiology, Komi Science Center, Ural Branch of the Russian Academy of Sciences, 167982 Syktyvkar, Russia.
Abstract:
Melatonin has been reported to cause myocardial electrophysiological changes and prevent ventricular tachycardia or fibrillation (VT/VF) in ischemia and reperfusion. We sought to identify electrophysiological targets responsible for the melatonin antiarrhythmic action and to explore whether melatonin receptor-dependent pathways or its antioxidative properties are essential for these effects. Ischemia was induced in anesthetized rats given a placebo, melatonin, and/or luzindole (MT1/MT2 melatonin receptor blocker), and epicardial mapping with reperfusion VT/VFs assessment was performed. The oxidative stress assessment and Western blotting analysis were performed in the explanted hearts. Transmembrane potentials and ionic currents were recorded in cardiomyocytes with melatonin and/or luzindole application. Melatonin reduced reperfusion VT/VF incidence associated with local activation time in logistic regression analysis. Melatonin prevented ischemia-related conduction slowing and did not change the total connexin43 (Cx43) level or oxidative stress markers, but it increased the content of a phosphorylated Cx43 variant (P-Cx43368). Luzindole abolished the melatonin antiarrhythmic effect, slowed conduction, decreased total Cx43, protein kinase Cε and P-Cx43368 levels, and the IK1 current, and caused resting membrane potential (RMP) depolarization. Neither melatonin nor luzindole modified INa current. Thus, the antiarrhythmic effect of melatonin was mediated by the receptor-dependent enhancement of impulse conduction, which was associated with Cx43 phosphorylation and maintaining the RMP level.
Insights
Melatonin prevents dangerous heart rhythms during reperfusion by enhancing impulse conduction via its receptors. This effect is linked to connexin43 phosphorylation and maintaining resting membrane potential.
Area of Science:
- Cardiology
- Electrophysiology
- Pharmacology
Background:
- Melatonin is known to affect myocardial electrophysiology.
- It has shown potential in preventing ventricular tachycardia/fibrillation (VT/VF) during ischemia and reperfusion.
Purpose of the Study:
- To identify the specific electrophysiological targets of melatonin's antiarrhythmic action.
- To determine if melatonin receptor pathways or antioxidant properties are crucial for its effects.
Main Methods:
- Induction of ischemia in rats with placebo, melatonin, or luzindole (melatonin receptor blocker).
- Epicardial mapping, oxidative stress assessment, Western blotting, and cardiomyocyte electrophysiology recordings.
- Analysis of transmembrane potentials and ionic currents.
Main Results:
- Melatonin reduced reperfusion VT/VF incidence and prevented ischemia-related conduction slowing.
- Melatonin increased phosphorylated connexin43 (P-Cx43368) without altering oxidative stress.
- Luzindole blocked melatonin's antiarrhythmic effect, impaired conduction, and reduced Cx43 phosphorylation and IK1 current.
Conclusions:
- Melatonin's antiarrhythmic effect is mediated by receptor-dependent enhancement of impulse conduction.
- This mechanism involves connexin43 phosphorylation and stabilization of resting membrane potential.
- Melatonin receptor pathways, not antioxidant effects, are essential for its antiarrhythmic action in this model.
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