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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.
Background:
Drug-induced long QT syndrome is generally ascribed to inhibition of the cardiac rapid delayed rectifier potassium current (IKr). Effects on the slow delayed rectifier potassium current (IKs) are less recognized. Triggered by a patient who carried the K422T mutation in KCNQ1 (encoding the α-subunit of the IKs channel), who presented with excessive QT prolongation and high serum levels of norfluoxetine, we investigated the effects of fluoxetine and its metabolite norfluoxetine on IKs.
Methods And Results:
ECG data from mutation carriers and noncarriers revealed that the K422T mutation per se had mild clinical effects. Patch clamp studies, performed on HEK293 cells, showed that heterozygously expressed K422T KCNQ1/KCNE1 channels had a positive shift in voltage dependence of activation and an increase in deactivation rate. Fluoxetine and its metabolite norfluoxetine both inhibited KCNQ1/KCNE1 current, with norfluoxetine being the most potent. Moreover, norfluoxetine increased activation and deactivation rates. Computer simulations of the effects of norfluoxetine on IKs and IKr demonstrated significant action potential prolongation, to which IKs block contributed importantly. Although the effects of the mutation per se were small, additional IKs blockade by norfluoxetine resulted in more prominent QTc prolongation in mutation carriers than in noncarriers, demonstrating synergistic effects of innate and drug-induced IKs blockade on QTc prolongation.
Conclusions:
IKs blockade contributes importantly to drug-induced long QT syndrome, especially when repolarization reserve is reduced. Drug safety tests might have to include screening for IKs blockade.
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.
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