Key result
H558R peptide fragments restore trafficking and sodium current in mutant Nav1.5 Brugada syndrome channels in vitro.
Why the study?
Does co-expression with peptide fragments spanning the H558R polymorphism restore trafficking and function of BrS-associated Nav1.5 mutations in vitro?
Does co-expression with peptide fragments spanning the H558R polymorphism restore trafficking and function of BrS-associated Nav1.5 mutations in vitro?
Small peptide fragments containing the H558R polymorphism can act as chemical chaperones to rescue trafficking-deficient Nav1.5 mutations, suggesting a potential novel gene therapy strategy for Brugada syndrome.
Small peptides may rescue SCN5A trafficking defects in vitro; leaves open translation to Brugada syndrome therapy.
BACKGROUND: Brugada syndrome (BrS) is associated with mutations in the cardiac sodium channel (Na(v)1.5). We previously reported that the function of a trafficking-deficient BrS Na(v)1.5 mutation, R282H, could be restored by coexpression with the sodium channel polymorphism H558R. Here, we tested the hypothesis that peptide fragments from Na(v)1.5, spanning the H558R polymorphism, can be used to restore trafficking of trafficking-deficient BrS sodium channel mutations. METHODS AND RESULTS: Whole-cell patch clamping revealed that cotransfection in human embryonic kidney (HEK293) cells of the R282H channel with either the 40- or 20-amino acid cDNA fragments of Na(v)1.5 containing the H558R polymorphism restored trafficking of this mutant channel. Fluorescence resonance energy transfer suggested that the trafficking-deficient R282H channel was misfolded, and this was corrected on coexpression with R558-containing peptides that restored trafficking of the R282H channel. Importantly, we also expressed the peptide spanning the H558R polymorphism with 8 additional BrS Na(v)1.5 mutations with reduced currents and demonstrated that the peptide was able to restore significant sodium currents in 4 of them. CONCLUSIONS: In the present study, we demonstrate that small peptides, spanning the H558R polymorphism, are sufficient to restore the trafficking defect of BrS-associated Na(v)1.5 mutations. Our findings suggest that it might be possible to use short cDNA constructs as a novel strategy tailored to specific disease-causing mutants of BrS.
No takes yet. Share an insight, caveat, or question.
Shinlapawittayatorn et al. (2011) studied Brugada syndrome (BrS) associated with trafficking-deficient SCN5A mutations. Peptide fragments spanning the H558R polymorphism vs. Mutant channel expressed alone was evaluated on Restoration of sodium current density and channel trafficking. Coexpression of trafficking-deficient Brugada syndrome Nav1.5 mutations with small peptides spanning the H558R polymorphism restored channel trafficking and significant sodium currents in vitro.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: