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Identifying causal serum protein-cardiometabolic trait relationships using whole genome sequencing.

Authors :
Png G
Gerlini R
Hatzikotoulas K
Barysenka A
Rayner NW
Klarić L
Rathkolb B
Aguilar-Pimentel JA
Rozman J
Fuchs H
Gailus-Durner V
Tsafantakis E
Karaleftheri M
Dedoussis G
Pietrzik C
Wilson JF
de Angelis MH
Becker-Pauly C
Gilly A
Zeggini E
Source :
Human molecular genetics [Hum Mol Genet] 2023 Apr 06; Vol. 32 (8), pp. 1266-1275.
Publication Year :
2023

Abstract

Cardiometabolic diseases, such as type 2 diabetes and cardiovascular disease, have a high public health burden. Understanding the genetically determined regulation of proteins that are dysregulated in disease can help to dissect the complex biology underpinning them. Here, we perform a protein quantitative trait locus (pQTL) analysis of 248 serum proteins relevant to cardiometabolic processes in 2893 individuals. Meta-analyzing whole-genome sequencing (WGS) data from two Greek cohorts, MANOLIS (n = 1356; 22.5× WGS) and Pomak (n = 1537; 18.4× WGS), we detect 301 independently associated pQTL variants for 170 proteins, including 12 rare variants (minor allele frequency < 1%). We additionally find 15 pQTL variants that are rare in non-Finnish European populations but have drifted up in the frequency in the discovery cohorts here. We identify proteins causally associated with cardiometabolic traits, including Mep1b for high-density lipoprotein (HDL) levels, and describe a knock-out (KO) Mep1b mouse model. Our findings furnish insights into the genetic architecture of the serum proteome, identify new protein-disease relationships and demonstrate the importance of isolated populations in pQTL analysis.<br /> (© The Author(s) 2022. Published by Oxford University Press.)

Details

Language :
English
ISSN :
1460-2083
Volume :
32
Issue :
8
Database :
MEDLINE
Journal :
Human molecular genetics
Publication Type :
Academic Journal
Accession number :
36349687
Full Text :
https://doi.org/10.1093/hmg/ddac275