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Identification of four novel genes contributing to familial elevated plasma HDL cholesterol in humans
Authors:Roshni R. Singaraja  Ian Tietjen  G. Kees Hovingh  Patrick L. Franchini  Chris Radomski  Kenny Wong  Margaret vanHeek  Ioannis M. Stylianou  Linus Lin  Liangsu Wang  Lyndon Mitnaul  Brian Hubbard  Michael Winther  Maryanne Mattice  Annick Legendre  Robin Sherrington  John J. Kastelein  Karen Akinsanya  Andrew Plump  Michael R. Hayden
Affiliation:*Xenon Pharmaceuticals Inc., Burnaby, BC, Canada;A*STAR Institute and Yong Loo Lin School of Medicine, National University of Singapore, Singapore;§Academic Medical Centre, University of Amsterdam, Amsterdam, The Netherlands;**Merck Research Laboratories, Rahway, NJ;††Centre for Molecular Medicine and Therapeutics, and Child and Family Research Institute, University of British Columbia, Vancouver, BC, Canada
Abstract:While genetic determinants strongly influence HDL cholesterol (HDLc) levels, most genetic causes underlying variation in HDLc remain unknown. We aimed to identify novel rare mutations with large effects in candidate genes contributing to extreme HDLc in humans, utilizing family-based Mendelian genetics. We performed next-generation sequencing of 456 candidate HDLc-regulating genes in 200 unrelated probands with extremely low (≤10th percentile) or high (≥90th percentile) HDLc. Probands were excluded if known mutations existed in the established HDLc-regulating genes ABCA1, APOA1, LCAT, cholesteryl ester transfer protein (CETP), endothelial lipase (LIPG), and UDP-N-acetyl-α-D-galactosamine:polypeptide N-acetylgalactosaminyltransferase 2 (GALNT2). We identified 93 novel coding or splice-site variants in 72 candidate genes. Each variant was genotyped in the proband’s family. Family-based association analyses were performed for variants with sufficient power to detect significance at P < 0.05 with a total of 627 family members being assessed. Mutations in the genes glucokinase regulatory protein (GCKR), RNase L (RNASEL), leukocyte immunoglobulin-like receptor 3 (LILRA3), and dynein axonemal heavy chain 10 (DNAH10) segregated with elevated HDLc levels in families, while no mutations associated with low HDLc. Taken together, we have identified mutations in four novel genes that may play a role in regulating HDLc levels in humans.
Keywords:high density lipoprotein   Mendelian genetics   lipids   high density lipoprotein metabolism   genetics   lipoproteins
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