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Published on: February 17, 2023
Lovastatin specifically prevents focal ischemic ventricular tachycardia due to triggered activity
Dezhi Xing1, Daryl J Murry, Mark S Schmidt
1Department of Internal Medicine, University of Iowa College of Medicine and Veterans Administration Medical Center, Iowa City, Iowa 52242, USA.
Insights
Lovastatin effectively suppresses focal ventricular tachycardia (VT) and triggered activity in a canine model, suggesting an antiarrhythmic effect. This action may stem from antioxidant properties related to prenylated proteins.
Area of Science:
- Cardiology
- Pharmacology
- Electrophysiology
Background:
- 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitors are linked to reduced defibrillator shocks, implying antiarrhythmic potential.
- Statins may possess antiarrhythmic properties beyond lipid-lowering effects.
Purpose of the Study:
- To investigate the antiarrhythmic effect of lovastatin in a canine model of ischemia-induced ventricular tachycardia (VT).
- To determine if lovastatin impacts focal VT and triggered activity.
Main Methods:
- Canine model of left anterior descending coronary occlusion to induce VT.
- Three-dimensional activation mapping to analyze VT mechanisms.
- In vivo and in vitro electrophysiological studies with lovastatin treatment.
Main Results:
- Lovastatin significantly blocked focal VT in dogs (8/13, P <.01) but not reentrant VT.
- In vitro, lovastatin attenuated triggered activity and delayed afterdepolarizations, suggesting a specific mechanism.
- Achieved plasma concentrations of lovastatin hydroxy acid were 21-157 ng/mL.
Conclusions:
- Lovastatin suppresses ischemia-induced focal VT and triggered activity at concentrations relevant to human plasma.
- The antiarrhythmic effect of lovastatin may involve antioxidant pathways downstream of mevalonic acid.
Background:
Use of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitor has been associated with reduced implantable defibrillator shocks in several multicenter trials, suggesting an antiarrhythmic effect.
Objective:
The purpose of this study was to determine if lovastatin had an antiarrhythmic effect in a canine model of ischemic and inducible ventricular tachycardia (VT).
Methods:
Forty-seven alpha-chloralose anesthetized dogs underwent left anterior descending coronary occlusion. Three-dimensional activation mapping identified the mechanism of reinducible VT and the response to lovastatin (0.5 mg/kg IV). The endocardium was excised from foci and studied using standard microelectrode techniques with Tyrode's solution.
Results:
Lovastatin blocked focal VT in 8 of 13 dogs (P <.01) compared with only 1 of 12 saline-treated dogs with focal VT. Lovastatin had no effect on reentrant VT. Lovastatin did not alter the effective refractory period, arterial pressure, or percentage of ischemic electrograms. Effective plasma concentration of lovastatin hydroxy acid ranged from 21-157 ng/mL (0.8-3.7 x 10(-7) M). In vitro rapid pacing, mostly with isoproterenol (5 x 10(-7) M) superfusion, produced delayed afterdepolarizations and triggered activity (9 +/- 2 action potentials). Lovastatin (10(-7) M) produced no change in action potentials or delayed afterdepolarizations. However, triggered activity was attenuated to 2 +/- 1 action potentials with lovastatin (P <.05, n = 13) but not with vehicle alone. Triggered activity returned to control after lovastatin washout (20 minutes) as well as with co-superfusion with mevalonic acid (10(-6) M, n = 5). 2,2,6,6-Tetramethylpiperidine-N-oxyl, an antioxidant that enters tissues (10(-3) M, n = 8), prevented triggered activity in a fashion similar to lovastatin.
Conclusion:
Lovastatin, in concentrations achievable in human plasma, specifically suppresses triggered activity and focal VT due to ischemia. A prenylated protein downstream from mevalonic acid may act as an antioxidant, producing the antiarrhythmic effect.
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