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May 6, 2008Journal of Clinical Investigation434 citationsOpen Access

Sodium channel β1 subunit mutations associated with Brugada syndrome and cardiac conduction disease in humans

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HWHiroshi WatanabeTKTamara T. KoopmannSSSolena Le Scouarnec

Structured PICO

Are SCN1B mutations associated with Brugada syndrome and cardiac conduction disease in patients without SCN5A mutations?

P
Population
326 patients (282 probands with Brugada syndrome and 44 patients with conduction disease) without SCN5A mutations
I
Intervention
Genetic screening of the SCN1B gene and functional analysis of mutant beta1 or beta1B subunits
C
Comparator
Wild-type (WT) SCN1B subunits
O
Outcome
Identification of SCN1B mutations and their functional effect on sodium currentsurrogate

Mutations in the SCN1B gene, which encodes the sodium channel beta1 subunit, are implicated as a novel genetic cause of Brugada syndrome and cardiac conduction disease.

Abstract

Brugada syndrome is a genetic disease associated with sudden cardiac death that is characterized by ventricular fibrillation and right precordial ST segment elevation on ECG. Loss-of-function mutations in SCN5A, which encodes the predominant cardiac sodium channel alpha subunit NaV1.5, can cause Brugada syndrome and cardiac conduction disease. However, SCN5A mutations are not detected in the majority of patients with these syndromes, suggesting that other genes can cause or modify presentation of these disorders. Here, we investigated SCN1B, which encodes the function-modifying sodium channel beta1 subunit, in 282 probands with Brugada syndrome and in 44 patients with conduction disease, none of whom had SCN5A mutations. We identified 3 mutations segregating with arrhythmia in 3 kindreds. Two of these mutations were located in a newly described alternately processed transcript, beta1B. Both the canonical and alternately processed transcripts were expressed in the human heart and were expressed to a greater degree in Purkinje fibers than in heart muscle, consistent with the clinical presentation of conduction disease. Sodium current was lower when NaV1.5 was coexpressed with mutant beta1 or beta1B subunits than when it was coexpressed with WT subunits. These findings implicate SCN1B as a disease gene for human arrhythmia susceptibility.

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Cite This Study

Watanabe et al. (2008) studied this question.

synapsesocial.com/papers/69dccaca0de68e8319e53927https://doi.org/10.1172/jci33891
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