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Published on: December 22, 2023
RYR2 Channel Inhibition Is the Principal Mechanism of Flecainide Action in CPVT
Dmytro O Kryshtal1, Daniel J Blackwell1, Christian L Egly1
1Vanderbilt Center for Arrhythmia Research and Therapeutics, Division of Clinical Pharmacology, Vanderbilt University Medical Center, Nashville, TN (D.O.K., D.J.B., C.L.E., B.C.K.).
Rationale:
The class Ic antiarrhythmic drug flecainide prevents ventricular tachyarrhythmia in patients with catecholaminergic polymorphic ventricular tachycardia (CPVT), a disease caused by hyperactive RyR2 (cardiac ryanodine receptor) mediated calcium (Ca) release. Although flecainide inhibits single RyR2 channels in vitro, reports have claimed that RyR2 inhibition by flecainide is not relevant for its mechanism of antiarrhythmic action and concluded that sodium channel block alone is responsible for flecainide's efficacy in CPVT.
Objective:
To determine whether RyR2 block independently contributes to flecainide's efficacy for suppressing spontaneous sarcoplasmic reticulum Ca release and for preventing ventricular tachycardia in vivo.
Methods And Results:
We synthesized N-methylated flecainide analogues (QX-flecainide and N-methyl flecainide) and showed that N-methylation reduces flecainide's inhibitory potency on RyR2 channels incorporated into artificial lipid bilayers. N-methylation did not alter flecainide's inhibitory activity on human cardiac sodium channels expressed in HEK293T cells. Antiarrhythmic efficacy was tested utilizing a Casq2 (cardiac calsequestrin) knockout (Casq2-/-) CPVT mouse model. In membrane-permeabilized Casq2-/- cardiomyocytes-lacking intact sarcolemma and devoid of sodium channel contribution-flecainide, but not its analogues, suppressed RyR2-mediated Ca release at clinically relevant concentrations. In voltage-clamped, intact Casq2-/- cardiomyocytes pretreated with tetrodotoxin to inhibit sodium channels and isolate the effect of flecainide on RyR2, flecainide significantly reduced the frequency of spontaneous sarcoplasmic reticulum Ca release, while QX-flecainide and N-methyl flecainide did not. In vivo, flecainide effectively suppressed catecholamine-induced ventricular tachyarrhythmias in Casq2-/- mice, whereas N-methyl flecainide had no significant effect on arrhythmia burden, despite comparable sodium channel block.
Conclusions:
Flecainide remains an effective inhibitor of RyR2-mediated arrhythmogenic Ca release even when cardiac sodium channels are blocked. In mice with CPVT, sodium channel block alone did not prevent ventricular tachycardia. Hence, RyR2 channel inhibition likely constitutes the principal mechanism of antiarrhythmic action of flecainide in CPVT.
Insights
Flecainide effectively treats catecholaminergic polymorphic ventricular tachycardia (CPVT) by inhibiting hyperactive cardiac ryanodine receptors (RyR2). This study demonstrates that RyR2 inhibition, not just sodium channel block, is key to flecainide
Area of Science:
- Cardiovascular Pharmacology
- Molecular Cardiology
- Ion Channel Physiology
Background:
- Flecainide, a class Ic antiarrhythmic, treats ventricular tachyarrhythmia in catecholaminergic polymorphic ventricular tachycardia (CPVT).
- CPVT is linked to hyperactive cardiac ryanodine receptor 2 (RyR2)-mediated calcium release.
- The precise mechanism of flecainide's efficacy in CPVT, specifically the role of RyR2 inhibition versus sodium channel block, remains debated.
Purpose of the Study:
- To ascertain if RyR2 channel blockade independently contributes to flecainide's antiarrhythmic effects in CPVT.
- To investigate flecainide's role in suppressing spontaneous sarcoplasmic reticulum calcium release and preventing ventricular tachycardia in vivo.
Main Methods:
- Synthesized N-methylated flecainide analogues (QX-flecainide, N-methyl flecainide) with reduced RyR2 inhibitory potency but unaltered sodium channel activity.
- Tested efficacy in a Casq2 knockout (Casq2-/-) CPVT mouse model, using permeabilized and voltage-clamped cardiomyocytes, and in vivo arrhythmia studies.
- Utilized tetrodotoxin to block sodium channels, isolating the effects of flecainide and its analogues on RyR2-mediated calcium release.
Main Results:
- N-methylation significantly reduced flecainide's potency on RyR2 channels but not on cardiac sodium channels.
- In Casq2-/- cardiomyocytes, flecainide suppressed RyR2-mediated calcium release, while analogues did not, even with sodium channels blocked.
- In vivo, flecainide prevented catecholamine-induced ventricular tachyarrhythmias in Casq2-/- mice, whereas analogues showed no significant effect despite similar sodium channel blockade.
Conclusions:
- Flecainide effectively inhibits RyR2-mediated arrhythmogenic calcium release, independent of sodium channel blockade.
- Sodium channel blockade alone was insufficient to prevent ventricular tachycardia in the CPVT mouse model.
- RyR2 channel inhibition is the primary mechanism underlying flecainide's antiarrhythmic action in CPVT.
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