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Genetic sharing with coronary artery disease identifies potential novel loci for bone mineral density. | LitMetric

Genetic sharing with coronary artery disease identifies potential novel loci for bone mineral density.

Bone

Department of Endocrinology and Metabolism, The Third Affiliated Hospital of Southern Medical University, Guangzhou 510630, China; Center for Bioinformatics and Genomics, Department of Global Biostatistics and Data Science, Tulane University, New Orleans, LA, USA. Electronic address:

Published: October 2017

AI Article Synopsis

  • Bone mineral density (BMD) is influenced by genetics and is linked to coronary artery disease (CAD), suggesting a shared genetic basis known as pleiotropy.
  • Using a new conditional false discovery rate (cFDR) method, researchers analyzed data from two large GWAS studies and discovered strong pleiotropic relationships, identifying 41 significant SNPs associated with lumbar spine (LS) BMD.
  • The study confirmed the effectiveness of the cFDR method in detecting relevant genetic variants for BMD and provided insights into the genetic overlap between BMD and CAD, which could inform future research on bone health and heart disease.

Article Abstract

Bone mineral density (BMD) is a complex trait with high missing heritability. Numerous evidences have shown that BMD variation has a relationship with coronary artery disease (CAD). This relationship may come from a common genetic basis called pleiotropy. By leveraging the pleiotropy with CAD, we may be able to improve the detection power of genetic variants associated with BMD. Using a recently developed conditional false discovery rate (cFDR) method, we jointly analyzed summary statistics from two large independent genome wide association studies (GWAS) of lumbar spine (LS) BMD and CAD. Strong pleiotropic enrichment and 7 pleiotropic SNPs were found for the two traits. We identified 41 SNPs for LS BMD (cFDR<0.05), of which 20 were replications of previous GWASs and 21 were potential novel SNPs that were not reported before. Four genes encompassed by 9 cFDR-significant SNPs were partially validated in the gene expression assay. Further functional enrichment analysis showed that genes corresponding to the cFDR-significant LS BMD SNPs were enriched in GO terms and KEGG pathways that played crucial roles in bone metabolism (adjP<0.05). In protein-protein interaction analysis, strong interactions were found between the proteins produced by the corresponding genes. Our study demonstrated the reliability and high-efficiency of the cFDR method on the detection of trait-associated genetic variants, the present findings shed novel insights into the genetic variability of BMD as well as the shared genetic basis underlying osteoporosis and CAD.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5796548PMC
http://dx.doi.org/10.1016/j.bone.2017.06.016DOI Listing

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