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Published on: March 12, 2013
Electrocardiographic characteristics and SCN5A mutations in idiopathic ventricular fibrillation associated with early
Hiroshi Watanabe1, Akihiko Nogami, Kimie Ohkubo
1Division of Cardiology, Niigata University School of Medicine, Niigata, Japan. hiroshi7@med.niigata-u.ac.jp
Insights
Early repolarization (J wave) is linked to idiopathic ventricular fibrillation. Genetic analysis revealed loss-of-function mutations in SCN5A, suggesting reduced sodium current increases fibrillation risk.
Area of Science:
- Cardiology
- Genetics
- Electrophysiology
Background:
- Early repolarization, characterized by J waves, has been associated with idiopathic ventricular fibrillation.
- The precise clinical and genetic underpinnings of this association remain incompletely understood.
Purpose of the Study:
- To investigate the clinical characteristics and genetic basis of idiopathic ventricular fibrillation in patients with early repolarization.
- To explore the functional consequences of identified genetic variants.
Main Methods:
- A case-control study comparing 50 patients with idiopathic ventricular fibrillation and early repolarization to 250 healthy controls.
- Genetic analysis for SCN5A variants, programmed electrical stimulation, sodium channel blocker challenge, and heterologous expression studies of mutant channels.
Main Results:
- Patients exhibited slower heart rates, prolonged PR intervals, and longer QRS durations compared to controls.
- Nonsynonymous SCN5A variants (A226D, L846R, R367H) were identified in three patients, all showing prolonged His-ventricular intervals.
- Mutant channels demonstrated loss-of-function, with A226D showing a trafficking defect and R367H/L846R showing normal trafficking.
Conclusions:
- Idiopathic ventricular fibrillation associated with early repolarization is characterized by reduced heart rate, impaired cardiac conduction, and loss-of-function SCN5A mutations.
- These findings support the hypothesis that a diminished sodium current contributes to increased susceptibility to ventricular fibrillation.
Background:
Recently, we and others reported that early repolarization (J wave) is associated with idiopathic ventricular fibrillation. However, its clinical and genetic characteristics are unclear.
Methods And Results:
This study included 50 patients (44 men; age, 45 ± 17 years) with idiopathic ventricular fibrillation associated with early repolarization, and 250 age- and sex-matched healthy controls. All of the patients had experienced arrhythmia events, and 8 (16%) had a family history of sudden death. Ventricular fibrillation was inducible by programmed electric stimulation in 15 of 29 patients (52%). The heart rate was slower and the PR interval and QRS duration were longer in patients with idiopathic ventricular fibrillation than in controls. We identified nonsynonymous variants in SCN5A (resulting in A226D, L846R, and R367H) in 3 unrelated patients. These variants occur at residues that are highly conserved across mammals. His-ventricular interval was prolonged in all of the patients carrying an SCN5A mutation. Sodium channel blocker challenge resulted in an augmentation of early repolarization or development of ventricular fibrillation in all of 3 patients, but none was diagnosed with Brugada syndrome. In heterologous expression studies, all of the mutant channels failed to generate any currents. Immunostaining revealed a trafficking defect in A226D channels and normal trafficking in R367H and L846R channels.
Conclusions:
We found reductions in heart rate and cardiac conduction and loss-of-function mutations in SCN5A in patients with idiopathic ventricular fibrillation associated with early repolarization. These findings support the hypothesis that decreased sodium current enhances ventricular fibrillation susceptibility.
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