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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Leveraging Large and Diverse Biobanks to Evaluate Gene-Disease Associations in Hypertrophic Cardiomyopathy
Saif F Dababneh1,2, Kevin Ong3, Darwin Yeung3
1Department of Cellular and Physiological Sciences, University of British Columbia, Vancouver, BC V6T 1Z4, Canada.
Insights
Large biobanks validate established hypertrophic cardiomyopathy (HCM) gene associations and support ClinGen
Area of Science:
- Cardiovascular Genetics
- Genomic Medicine
- Population Genomics
Background:
- Hypertrophic cardiomyopathy (HCM) is a common inherited cardiac disease and a leading cause of sudden cardiac arrest.
- Genetic testing for HCM has advanced, but its diagnostic yield remains limited.
- The Clinical Genome Resource (ClinGen) initiative curates gene-disease associations for HCM.
Purpose of the Study:
- To validate ClinGen's curated gene-disease associations for HCM using large biobanks.
- To assess the utility of population databases for validating established and discovering novel HCM gene associations.
Main Methods:
- Utilized a database of 748,879 individuals from three large biobanks.
- Tested the association of rare coding variants in 38 HCM-associated genes with HCM.
- Applied Bonferroni correction for multiple testing.
Main Results:
- Of 12 definitive HCM genes, 5 remained significant after Bonferroni correction, validating ClinGen's findings.
- Other definitive HCM genes showed positive effect sizes but did not reach statistical significance.
- No genes with moderate or limited evidence showed significant associations.
Conclusions:
- Large biobanks can recapitulate established HCM gene-disease associations and support ClinGen's curations.
- Publicly accessible databases are valuable tools for assessing gene validity in monogenic cardiac disorders.
- These databases have limitations in sensitivity and should not be the sole method for gene validation.
Abstract:
Background: Hypertrophic cardiomyopathy (HCM) is a common inherited disease and a leading known cause of sudden cardiac arrest in young adults and athletes. While genetic testing has advanced rapidly in the past decade, the yield of genetic testing remains low. The Clinical Genome Resource (ClinGen) initiative has become a leading resource for defining the clinical relevance of genetic variants with expert groups focusing on evaluating the strength of evidence for each HCM implicated gene. With the rise of large biobanks and population databases, genetic discovery has been significantly advanced. However, whether these databases can be used to validate gene-disease associations curated by ClinGen and provide evidence for novel gene-disease associations remains unclear. Objectives: Here, we utilized a publicly available database containing 748,879 individuals across three large biobanks (All of Us, UK biobank, Mass General Brigham biobank). Methods: We tested the association of rare coding variants in each gene in the HCM ClinGen panel with HCM. In total, 38 genes were tested, and Bonferroni correction was applied accordingly. Results: Of the 12 genes with definitive evidence for HCM (e.g., MYBPC3, MYH7, TNNT2, ALPK3), 8 (67%) demonstrated nominally significant association with HCM on a population level, and 5 (42%) remained significant after Bonferroni correction, further supporting the validity of these genes in HCM panels. Several definitive genes which are much less commonly affected in HCM (CSRP3, MYL3, ACTC1, TPM1, FHOD3, MYL2, and TNNC1) did not pass our Bonferroni corrected-significance threshold, but all had positively associated effect sizes with HCM. No genes deemed to have moderate or limited evidence had any significant associations with HCM even before Bonferroni correction. Conclusions: Altogether, we show that large biobanks and population databases generally recapitulate established gene-disease associations for HCM and support the ClinGen group's gene curations. The utilization of such publicly accessible databases represents an additional tool for assessing gene validity in monogenic cardiac disorders with an established phenotype, although it may have limited sensitivity and should not be solely relied on.
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