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Rare variant contribution to the heritability of coronary artery disease

  • NHLBI Trans-Omics for Precision Medicine (TOPMed) Consortium
  • Icahn School of Medicine at Mount Sinai
  • Stanford University
  • University of Virginia
  • University of Texas Health Science Center at Houston
  • University of Michigan, Ann Arbor
  • Washington University St. Louis
  • University of Washington
  • University of Kentucky
  • Johns Hopkins University
  • Baylor College of Medicine
  • Wake Forest University
  • University of Mississippi
  • Massachusetts General Hospital
  • The Broad Institute of MIT and Harvard
  • University of North Carolina at Chapel Hill
  • Framingham Heart Study
  • Boston University
  • Northwestern University
  • The Lundquist Institute
  • Fred Hutchinson Cancer Research Center
  • University of Copenhagen
  • Harvard Pilgrim Health Care
  • Harvard University
  • George Washington University
  • University of Maryland, Baltimore
  • Umm Al-Qura University
  • National Jewish Health
  • University of Colorado Anschutz Medical Campus
  • University of Colorado Denver

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

Whole genome sequences (WGS) enable discovery of rare variants which may contribute to missing heritability of coronary artery disease (CAD). To measure their contribution, we apply the GREML-LDMS-I approach to WGS of 4949 cases and 17,494 controls of European ancestry from the NHLBI TOPMed program. We estimate CAD heritability at 34.3% assuming a prevalence of 8.2%. Ultra-rare (minor allele frequency ≤ 0.1%) variants with low linkage disequilibrium (LD) score contribute ~50% of the heritability. We also investigate CAD heritability enrichment using a diverse set of functional annotations: i) constraint; ii) predicted protein-altering impact; iii) cis-regulatory elements from a cell-specific chromatin atlas of the human coronary; and iv) annotation principal components representing a wide range of functional processes. We observe marked enrichment of CAD heritability for most functional annotations. These results reveal the predominant role of ultra-rare variants in low LD on the heritability of CAD. Moreover, they highlight several functional processes including cell type-specific regulatory mechanisms as key drivers of CAD genetic risk.

Original languageEnglish
Article number8741
JournalNature Communications
Volume15
Issue number1
DOIs
StatePublished - Dec 2024

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