Latent genetic backgrounds and molecular pathogenesis in drug-induced long-QT syndrome

Hideki Itoh1, Tomoko Sakaguchi, Wei-Guang Ding

  • 1Department of Cardiovascular and Respiratory Medicine, Shiga University of Medical Science, Shiga 520-2192, Japan.

Abstract

Insights

Drug-induced long-QT syndrome (dLQTS) shares a similar mutation rate with congenital long-QT syndrome (cLQTS). However, identified mutations in dLQTS exhibit milder functional effects, suggesting dLQTS may be a latent form of long-QT syndrome.

Area of Science:

  • Cardiology
  • Genetics
  • Pharmacology

Background:

  • Drug-induced long-QT syndrome (dLQTS) results from I(Kr)-blocking drugs.
  • The frequency and molecular effects of gene mutations in dLQTS are largely unknown.
  • Congenital long-QT syndrome (cLQTS) is associated with cardiac ion channel gene mutations.

Purpose of the Study:

  • To determine the frequency of long-QT syndrome-related gene mutations in dLQTS patients.
  • To analyze the electrophysiological characteristics of dLQTS-associated mutations.
  • To compare mutation rates and functional effects between dLQTS and cLQTS.

Main Methods:

  • Genetic testing for long-QT syndrome genes in 20 dLQTS and 176 cLQTS subjects.
  • Heterologous expression of mutant channels in Chinese hamster ovary cells.
  • Computer simulation using the Luo-Rudy model to analyze action potential duration.

Main Results:

  • The mutation detection rate in dLQTS (40%) was similar to cLQTS (52%).
  • Mutations were more frequent in dLQTS cases induced by non-antiarrhythmic drugs (83%) than antiarrhythmic drugs (21%).
  • Mutant channels showed mild gating defects, with action potential durations between wild-type and cLQTS.

Conclusions:

  • dLQTS exhibits a similar mutation rate to cLQTS, but with milder functional consequences.
  • The genetic background of dLQTS patients is important for understanding excessive QT prolongation.
  • dLQTS can be considered a latent form of long-QT syndrome, necessitating genetic evaluation.

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