Slow delayed rectifier potassium current blockade contributes importantly to drug-induced long QT syndrome

Christiaan C Veerman1, Arie O Verkerk, Marieke T Blom

  • 1Heart Center, and Departments of Anatomy, Embryology, and Physiology, Cardiology, Hospital Pharmacy, Academic Medical Center, University of Amsterdam, the Netherlands; and Department of Hospital Pharmacy, Reinier de Graaf Group Hospitals, Delft, the Netherlands.

Abstract

Insights

Norfluoxetine inhibits the slow delayed rectifier potassium current (IKs), contributing to long QT syndrome, especially in individuals with KCNQ1 mutations. This highlights the importance of screening for IKs blockade in drug safety evaluations.

Area of Science:

  • Cardiovascular pharmacology
  • Molecular cardiology
  • Drug safety assessment

Background:

  • Drug-induced long QT syndrome is typically linked to inhibition of the rapid delayed rectifier potassium current (IKr).
  • The role of the slow delayed rectifier potassium current (IKs) in this condition is less understood.
  • A patient with a KCNQ1 mutation (K422T) and high norfluoxetine levels exhibited excessive QT prolongation, prompting investigation into fluoxetine and norfluoxetine effects on IKs.

Observation:

  • The K422T mutation in KCNQ1 alone had minimal clinical impact.
  • Both fluoxetine and norfluoxetine inhibited KCNQ1/KCNE1 channels, with norfluoxetine being more potent.
  • Norfluoxetine altered the activation and deactivation kinetics of IKs channels.

Findings:

  • Computer simulations revealed that norfluoxetine's blockade of IKs significantly prolonged action potentials.
  • In individuals with the K422T mutation, norfluoxetine caused more pronounced QTc prolongation compared to non-carriers.
  • These findings demonstrate a synergistic effect between innate IKs channel variations and drug-induced IKs blockade.

Implications:

  • IKs blockade plays a crucial role in drug-induced long QT syndrome, particularly when cardiac repolarization reserve is compromised.
  • Current drug safety testing protocols may need to incorporate assessments for IKs channel blockade.
  • Understanding IKs channel function is vital for predicting and preventing adverse cardiac events associated with certain medications.

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 the heart's...
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,...
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 succinylcholine...
Depolarizing Blockers: Pharmocokinetics01:19

Depolarizing Blockers: Pharmocokinetics

Depolarizing blockers are administered through intravenous injection. Succinylcholine is the most common choice of depolarizing blockers in emergency clinical practices. Although they have a rapid onset, they readily diffuse away from the motor end plate into the extracellular fluid. They are metabolized by enzymes such as liver butyrylcholinesterase and plasma pseudocholinesterases. This produces a short duration of action, typically 5-10 minutes long, unlike nondepolarizing blockers, which...
Antiepileptic Drugs: Potassium Channel Activators01:20

Antiepileptic Drugs: Potassium Channel Activators

Ezocgabine or retigabine, an antiepileptic drug of remarkable efficacy, has revolutionized the management of seizures. It is a potassium channel activator, explicitly targeting the family of Q subtype potassium channels. It enhances the transmembrane potassium currents, regulating neuronal excitability. This action stabilizes the resting membrane potential, a pivotal factor in mitigating the hyperexcitability that characterizes epilepsy.
Ezogabine has gained approval as an adjunctive treatment...
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...