Key result
Coexpression of apparently benign SCN5A mutations with wild-type channels in vitro reduced sodium current densities and surface expression, explaining the Brugada syndrome phenotype.
Apparently benign SCN5A mutations in Brugada syndrome can cause disease phenotype by reducing sodium current density and surface expression when coexpressed with wild-type channels.
Functional testing may aid SCN5A variant classification in Brugada syndrome; leaves open clinical translation and in vivo validation.
BACKGROUND: Brugada syndrome (BrS) is an arrhythmogenic disorder that has been linked to mutations in SCN5A, the gene encoding for the pore-forming α-subunit of the cardiac sodium channel. Typically, BrS mutations in SCN5A result in a reduction of sodium current with some mutations even exhibiting a dominant-negative effect on wild-type (WT) channels, thus leading to an even more prominent decrease in current amplitudes. However, there is also a category of apparently benign (atypical) BrS SCN5A mutations that in vitro demonstrates only minor biophysical defects. It is therefore not clear how these mutations produce a BrS phenotype. We hypothesized that similar to dominant-negative mutations, atypical mutations could lead to a reduction in sodium currents when coexpressed with WT to mimic the heterozygous patient genotype. METHODS AND RESULTS: WT and atypical BrS mutations were coexpressed in Human Embryonic Kidney-293 cells, showing a reduction in sodium current densities similar to typical BrS mutations. Importantly, this reduction in sodium current was also seen when the atypical mutations were expressed in rat or human cardiomyocytes. This decrease in current density was the result of reduced surface expression of both mutant and WT channels. CONCLUSIONS: Taken together, we have shown how apparently benign SCN5A BrS mutations can lead to the ECG abnormalities seen in patients with BrS through an induced defect that is only present when the mutations are coexpressed with WT channels. Our work has implications for risk management and stratification for some SCN5A-implicated BrS patients.
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Hoshi et al. (2014) studied Brugada syndrome. Coexpression of atypical BrS SCN5A mutations with wild-type channels was evaluated on Sodium current density and surface expression. Coexpression of apparently benign SCN5A mutations with wild-type channels in vitro reduced sodium current densities and surface expression, explaining the Brugada syndrome phenotype.
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