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Updated: Mar 7, 2026

Determining the Likelihood of Variant Pathogenicity Using Amino Acid-level Signal-to-Noise Analysis of Genetic Variation
Published on: January 16, 2019
[Functional analysis of a novel SCN5A mutation G1712C identified in Brugada syndrome]
Yan-Yu Chen1, Shen-Rong Liu, Liang-Zhen Xie
1Department of Cardiology, Southern Medical University, Nanfang Hospital, Guangzhou 510515, China.
Objective:
To elucidate the molecular and electrophysiological mechanisms of Brugada syndrome through functional analysis of a novel SCN5A gene mutation G1712C.
Methods:
A recombinant plasmid pRc
Results:
An HEK293 cell line that stably expressed Na+ channel β1-subunit was successfully established. After transient transfection with the WT subunit, large Na+ currents were recorded from the stable β1-cell line. Transient transfection with the G1712C subunit, however, did not elicit a Na+ current in the cells.
Conclusion:
Compared with normal Na+ channel, the wild-type channel exhibits a similar sodium current. The characteristic kinetics of sodium channel of WT-hH1 was identical to that in normal cardiac muscle cell, and the missense mutation (G1712C) in the P-loop region of the domain IV may have caused the failure of sodium channel expression.
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