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Updated: Jun 19, 2026

Determining the Likelihood of Variant Pathogenicity Using Amino Acid-level Signal-to-Noise Analysis of Genetic Variation
Published on: January 16, 2019
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.
Background:
Drugs with I(Kr)-blocking action cause secondary long-QT syndrome. Several cases have been associated with mutations of genes coding cardiac ion channels, but their frequency among patients affected by drug-induced long-QT syndrome (dLQTS) and the resultant molecular effects remain unknown.
Methods And Results:
Genetic testing was carried out for long-QT syndrome-related genes in 20 subjects with dLQTS and 176 subjects with congenital long-QT syndrome (cLQTS); electrophysiological characteristics of dLQTS-associated mutations were analyzed using a heterologous expression system with Chinese hamster ovary cells together with a computer simulation model. The positive mutation rate in dLQTS was similar to cLQTS (dLQTS versus cLQTS, 8 of 20 [40%] versus 91 of 176 [52%] subjects, P=0.32). The incidence of mutations was higher in patients with torsades de pointes induced by nonantiarrhythmic drugs than by antiarrhythmic drugs (antiarrhythmic versus others, 3 of 14 [21%] versus 5 of 6 [83%] subjects, P<0.05). When reconstituted in Chinese hamster ovary cells, KCNQ1 and KCNH2 mutant channels showed complex gating defects without dominant negative effects or a relatively mild decreased current density. Drug sensitivity for mutant channels was similar to that of the wild-type channel. With the Luo-Rudy simulation model of action potentials, action potential durations of most mutant channels were between those of wild-type and cLQTS.
Conclusions:
dLQTS had a similar positive mutation rate compared with cLQTS, whereas the functional changes of these mutations identified in dLQTS were mild. When I(Kr)-blocking agents produce excessive QT prolongation (dLQTS), the underlying genetic background of the dLQTS subject should also be taken into consideration, as would be the case with cLQTS; dLQTS can be regarded as a latent form of long-QT syndrome.
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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