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October 1, 2015Circulation Arrhythmia and Electrophysiology97 citationsOpen Access

Identification and Functional Characterization of a Novel CACNA1C -Mediated Cardiac Disorder Characterized by Prolonged QT Intervals With Hypertrophic Cardiomyopathy, Congenital Heart Defects, and Sudden Cardiac Death

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NBNicole J. BoczekWinnMedDYDan YeShanghai Medical College of Fudan UniversityFJFang JinMayo Clinic

Structured PICO

P
Population
3 affected individuals and 1 unaffected individual from a large pedigree with concomitant long-QT syndrome (LQTS), hypertrophic cardiomyopathy (HCM), and congenital heart defects, plus 5 additional patients with a similar phenotype of LQTS plus a personal or family history of HCM-like phenotypes.
I
Intervention
Whole exome sequencing, mutational analysis of exon 12 of CACNA1C, and whole cell patch clamp electrophysiological studies.
O
Outcome
Identification of genetic mutations and their electrophysiological effects in CaV1.2 (current density, inactivation, window and late current).surrogate

Identified a novel CACNA1C mutation (p.Arg518Cys/His) as the pathogenic substrate for a complex cardiac disorder involving LQTS, HCM, and congenital heart defects.

Abstract

BACKGROUND: A portion of sudden cardiac deaths can be attributed to structural heart diseases, such as hypertrophic cardiomyopathy (HCM) or cardiac channelopathies such as long-QT syndrome (LQTS); however, the underlying molecular mechanisms are distinct. Here, we identify a novel CACNA1C missense mutation with mixed loss-of-function/gain-of-function responsible for a complex phenotype of LQTS, HCM, sudden cardiac death, and congenital heart defects. METHODS AND RESULTS: Whole exome sequencing in combination with Ingenuity variant analysis was completed on 3 affected individuals and 1 unaffected individual from a large pedigree with concomitant LQTS, HCM, and congenital heart defects and identified a novel CACNA1C mutation, p.Arg518Cys, as the most likely candidate mutation. Mutational analysis of exon 12 of CACNA1C was completed on 5 additional patients with a similar phenotype of LQTS plus a personal or family history of HCM-like phenotypes and identified 2 additional pedigrees with mutations at the same position, p.Arg518Cys/His. Whole cell patch clamp technique was used to assess the electrophysiological effects of the identified mutations in CaV1.2 and revealed a complex phenotype, including loss of current density and inactivation in combination with increased window and late current. CONCLUSIONS: Through whole exome sequencing and expanded cohort screening, we identified a novel genetic substrate p.Arg518Cys/His-CACNA1C, in patients with a complex phenotype including LQTS, HCM, and congenital heart defects annotated as cardiac-only Timothy syndrome. Our electrophysiological studies, identification of mutations at the same amino acid position in multiple pedigrees, and cosegregation with disease in these pedigrees provide evidence that p.Arg518Cys/His is the pathogenic substrate for the observed phenotype.

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Cite This Study

Boczek et al. (2015) studied this question.

synapsesocial.com/papers/6a053f7a4b24269796380790https://doi.org/10.1161/circep.115.002745
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