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Determining the Likelihood of Variant Pathogenicity Using Amino Acid-level Signal-to-Noise Analysis of Genetic Variation
Published on: January 16, 2019
Molecular autopsy identifies the NaV1.5 p.Leu96Pro variant causing sodium current loss-of-function in unexplained
Albert Rigat Pujolas1, Rebecca Martínez-Moreno2, David Carreras2
1Cardiovascular Genetics Center, Institut d'Investigació Biomèdica de Girona Dr. Josep Trueta, Girona, Spain; Departament de Ciències Mèdiques, Facultat de Medicina, Universitat de Girona, Girona, Spain.
Abstract:
Molecular autopsy can identify candidate variants in unexplained sudden cardiac death (SUD), but functional evidence is often required to support pathogenic interpretation and family risk assessment. Here, we investigated the functional consequences of the SCN5A c.287 T > C (NaV1.5_p.Leu96Pro) variant, identified in a 29-year-old man who died of SUD. Cascade screening identified additional relatives carrying the variant, with variable clinical expression. Sodium current (INa) was analyzed in heterologously transfected human embryonic kidney (HEK) tsA201 cells and in human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) generated from two variant carriers and two non-carrier relatives. SCN5A transcript levels, NaV1.5 membrane expression, and additional arrhythmia-associated genetic variation were also assessed. In HEK tsA201 cells, NaV1.5_p.Leu96Pro produced no measurable INa when expressed alone, whereas co-expression with wild-type SCN5A caused an approximately 50% reduction in peak INa density. Cell-surface biotinylation showed preserved total and membrane NaV1.5 expression, indicating that loss of current was not explained by impaired trafficking. hiPSC-CMs from both carriers showed reduced INa density compared with non-carrier relatives, despite no reduction in SCN5A transcript levels. Targeted sequencing did not identify variants explaining the differences between the two hiPSC-CM carriers, but revealed an additional SCN5A splice-site deletion in family members with more severe clinical manifestations. These findings show that NaV1.5_p.Leu96Pro causes severe loss of sodium channel function and support the value of combining molecular autopsy, family evaluation, and functional studies for variant interpretation in SUD.

