Multiple modes of ryanodine receptor 2 inhibition by flecainide

D Mehra1, M S Imtiaz1, D F van Helden1

  • 1School of Biomedical Sciences and Pharmacy, University of Newcastle and Hunter Medical Research Institute, Callaghan, New South Wales, Australia (D.M., M.S.I., D.F.v.H., D.R.L.); and Division of Clinical Pharmacology, Department of Medicine, Vanderbilt University School of Medicine, Nashville, Tennessee (B.C.K.).

Molecular Pharmacology
|October 3, 2014
PubMed

Insights

Flecainide inhibits cardiac ryanodine receptors (RyR2) through two distinct mechanisms: a fast block of open RyR2 channels and a slow block of closed RyR2 channels, both acting from the cytoplasmic side.

Area of Science:

  • Cardiovascular Pharmacology
  • Molecular Cardiology
  • Ion Channel Physiology

Background:

  • Catecholaminergic polymorphic ventricular tachycardia (CPVT) is a life-threatening arrhythmia linked to RyR2, calsequestrin, or calmodulin mutations.
  • Flecainide, a Class I antiarrhythmic, effectively treats CPVT by inhibiting Na(+) and RyR2 channels.

Purpose of the Study:

  • To elucidate the specific inhibitory mechanisms of flecainide on cardiac ryanodine receptors (RyR2).

Main Methods:

  • Single-channel recordings of sheep heart RyR2 reconstituted into lipid bilayers.
  • Investigation under varying cytoplasmic conditions (ATP, Ca(2+), Mg(2+), pH) and luminal pH.
  • Application of flecainide to cytoplasmic and luminal sides.

Main Results:

  • Flecainide inhibits RyR2 via two independent modes: a fast block (~1 ms) and a slow block (~1 second), both with cytoplasmic sites of action.
  • Inhibition is pH-dependent, alleviated by increased cytoplasmic pH (7.4 to 9.5), but not luminal pH.
  • Slow block is enhanced in low-open probability RyR2, while fast block is independent of RyR2 activation state.
  • At diastolic Ca(2+), flecainide further reduces RyR2 burst duration.

Conclusions:

  • Flecainide employs multiple, distinct mechanisms to inhibit RyR2 function.
  • These mechanisms include a closed-channel block (slow) and an open-channel block (fast), both acting on the cytoplasmic side.
  • Flecainide's multifaceted inhibition of RyR2 underlies its efficacy in treating CPVT.

Related Concept Videos

Antiarrhythmic Drugs: Class III Agents as Potassium Channel Blockers01:12

Antiarrhythmic Drugs: Class III Agents as Potassium Channel Blockers

Class III antiarrhythmic drugs are a group of medications that can prolong action potentials in the heart. They achieve this by blocking potassium channels or enhancing inward currents from sodium channels. However, these drugs have a unique property of "reverse use-dependence," which is most pronounced at slower heart rates and can lead to torsades de pointes—a specific type of arrhythmia. However, it is essential to note that excessive QT interval prolongation—a measure of...
2.9K
Antiarrhythmic Drugs: Class II Agents as β-Adrenergic Blockers01:24

Antiarrhythmic Drugs: Class II Agents as β-Adrenergic Blockers

Adrenergic stimulation generally impacts cardiac rate and rhythm. Specifically, stimulation of the β-adrenoceptors triggers an increase in intracellular calcium ion influx and pacemaker currents, which may cause arrhythmias. Catecholamines like adrenaline also demonstrate β2-adrenoceptor-mediated hypokalemia, impacting cardiac action potential and disrupting the normal cardiac rhythm. Class II antiarrhythmic drugs are β-adrenoceptor antagonists or β-blockers, which...
2.3K
Antiarrhythmic Drugs: Class I Agents as Sodium Channel Blockers01:22

Antiarrhythmic Drugs: Class I Agents as Sodium Channel Blockers

Class I antiarrhythmic drugs are used to treat various types of arrhythmias or irregular heart rhythms. These drugs block the sodium (Na+) channels in the cardiac cells, thereby affecting the movement of electrical impulses across the heart. Class I antiarrhythmic drugs are divided into three subgroups: Class IA, Class IB, and Class IC, each with distinct mechanisms of action and effects on the heart.
Class 1A Antiarrhythmic Drugs: These drugs work by moderately blocking sodium channels,...
4.2K
Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers01:20

Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers

Class IV antiarrhythmic drugs, such as verapamil and diltiazem, block calcium channels. They primarily affect the heart, slowing the conduction in calcium-dependent tissues like the SA and AV nodes. These drugs manage reentrant supraventricular tachycardia (SVT) and reduce ventricular rate in atrial flutter/fibrillation.
Verapamil, a calcium channel blocker, inhibits calcium movement across myocardial cell membranes and vascular smooth muscle. This results in the dilation of coronary and...
2.7K
Mechanism of Cardiac Arrhythmias01:28

Mechanism of Cardiac Arrhythmias

Arrhythmias are irregular heart rhythms occurring when the heart's electrical impulses become abnormal. These disturbances can lead to various symptoms, depending on their severity and the underlying cause. Some common factors contributing to arrhythmias include hypoxia, ischemia, electrolyte imbalances, excessive catecholamine exposure, drug toxicity, and muscle overstretching. Arrhythmias can be classified into two main types based on the rate and site of origin of abnormal heart rhythms.
2.7K
Depolarizing Blockers: Mechanism of Action01:28

Depolarizing Blockers: Mechanism of Action

Depolarizing blockers act on skeletal muscle fibers' membranes and induce their depolarization. Most depolarizing blockers have two quaternary N+ atoms that bind the nicotinic acetylcholine receptors and cause neuromuscular blockade within minutes.
Succinylcholine is the most commonly used depolarizing blocker. Chemically, it constitutes two molecules of acetylcholine joined together by an acetate methyl group. They act on the receptors in the same way as acetylcholine. Because...
3.3K