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The role of sodium channels in sudden unexpected death in pediatrics
Anne M Rochtus1,2,3, Richard D Goldstein2,4, Ingrid A Holm2,4,5
1Department of Neurology, Boston Children's Hospital and Harvard Medical School, Boston, MA, USA.
Insights
Sudden Unexpected Death in Pediatrics (SUDP) may involve genetic variants in voltage-gated sodium channel (VGSC) genes. This study identified pathogenic VGSC variants in SUDP cases, highlighting their potential role in these tragic deaths.
Area of Science:
- Genetics
- Molecular Biology
- Pediatric Pathology
Background:
- Sudden Unexpected Death in Pediatrics (SUDP) is a complex event potentially linked to epilepsy and cardiac arrhythmias.
- Voltage-gated sodium channel (VGSC) genes are implicated in sudden death and have known associations with SCN1A and SCN5A.
- Hippocampal abnormalities in SUDP cases suggest epilepsy-related mechanisms may contribute to mortality.
Purpose of the Study:
- To investigate the hypothesis that pathogenic variants in cardiac arrhythmia- and epilepsy-associated VGSC genes contribute to SUDP.
- To analyze whole-exome sequencing data for VGSC variants in pediatric SUDP cases.
- To review and assess all reported VGSC variants in SUDP cases.
Main Methods:
- Whole-exome sequencing data from 73 SUDP cases were analyzed for variants in VGSC genes.
- A literature review identified 82 VGSC variants associated with SUDP.
- Variants were evaluated using American College of Medical Genetics and Genomics (ACMG) guidelines and paralog analysis.
Main Results:
- Eleven pathogenic variants were identified in SUDP cases within VGSC genes including SCN1A, SCN1B, SCN10A, SCN3A, SCN4A, and SCN9A.
- Pathogenic variants were found to cluster at conserved, variation-intolerant amino acid sites across VGSC genes (p < .0001).
- Conflicting evidence regarding pathogenicity was noted for 54% of previously reported VGSC variants in SUDP.
Conclusions:
- Variants in multiple VGSC genes, associated with both arrhythmias and epilepsy, were identified in SUDP cases.
- Accurate assessment of these variants is crucial for understanding their contribution to SUDP.
- Further research is essential to elucidate the role of sodium channel variants in SUDP.
Background:
Sudden Unexpected Death in Pediatrics (SUDP) is a tragic event, likely caused by the complex interaction of multiple factors. The presence of hippocampal abnormalities in many children with SUDP suggests that epilepsy-related mechanisms may contribute to death, similar to Sudden Unexplained Death in Epilepsy. Because of known associations between the genes SCN1A and SCN5A and sudden death, and shared mechanisms and patterns of expression in genes encoding many voltage-gated sodium channels (VGSCs), we hypothesized that individuals dying from SUDP have pathogenic variants across the entire family of cardiac arrhythmia- and epilepsy-associated VGSC genes.
Methods:
To address this hypothesis, we evaluated whole-exome sequencing data from infants and children with SUDP for variants in VGSC genes, reviewed the literature for all SUDP-associated variants in VGSCs, applied a novel paralog analysis to all variants, and evaluated all variants according to American College of Medical Genetics and Genomics (ACMG) guidelines.
Results:
In our cohort of 73 cases of SUDP, we assessed 11 variants as pathogenic in SCN1A, SCN1B, and SCN10A, genes with long-standing disease associations, and in SCN3A, SCN4A, and SCN9A, VGSC gene paralogs with more recent disease associations. From the literature, we identified 82 VGSC variants in SUDP cases. Pathogenic variants clustered at conserved amino acid sites intolerant to variation across the VGSC genes, which is unlikely to occur in the general population (p < .0001). For 54% of variants previously reported in literature, we identified conflicting evidence regarding pathogenicity when applying ACMG criteria and modern population data.
Conclusion:
We report variants in several VGSC genes in cases with SUDP, involving both arrhythmia- and epilepsy-associated genes. Accurate variant assessment as well as future studies are essential for an improved understanding of the contribution of sodium channel-related variants to SUDP.
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