Meta-GWAS of PCSK9 levels detects two novel loci at APOB and TM6SF2

Author:

Pott Janne12ORCID,Gådin Jesper R3,Theusch Elizabeth4ORCID,Kleber Marcus E56,Delgado Graciela E5,Kirsten Holger12ORCID,Hauck Stefanie M7,Burkhardt Ralph289,Scharnagl Hubert10,Krauss Ronald M411,Loeffler Markus12,März Winfried51012,Thiery Joachim2813,Silveira Angela3,van't Hooft Ferdinand M3,Scholz Markus12

Affiliation:

1. Institute for Medical Informatics, Statistics and Epidemiology, Medical Faculty, University of Leipzig, Leipzig, Germany

2. LIFE Research Center for Civilization Diseases, Medical Faculty, University of Leipzig, Leipzig, Germany

3. Division of Cardiovascular Medicine, Department of Medicine, Karolinska Institutet, Stockholm, Karolinska University Hospital Solna, Solna, Sweden

4. Department of Pediatrics, University of California San Francisco, Oakland, CA, USA

5. Vth Department of Medicine (Nephrology, Hypertensiology, Rheumatology, Endocrinology, Diabetology), Medical Faculty Mannheim, University of Heidelberg, Mannheim, Germany

6. SYNLAB MVZ Humangenetik Mannheim, Mannheim, Germany

7. Metabolomics and Proteomics Core and Research Unit Protein Science, Helmholtz Zentrum München, Neuherberg, Germany

8. Institute of Laboratory Medicine, Clinical Chemistry and Molecular Diagnostics, University Hospital Leipzig, Leipzig, Germany

9. Institute of Clinical Chemistry and Laboratory Medicine, University Hospital Regensburg, Regensburg, Germany

10. Clinical Institute of Medical and Chemical Laboratory Diagnostics, Medical University of Graz, Graz, Austria

11. Department of Medicine, University of California San Francisco, Oakland, CA, USA

12. SYNLAB Academy, SYNALB Holding Deutschland GmbH, Mannheim, Germany

13. Faculty of Medicine, Kiel University, Kiel, Germany

Abstract

Abstract Background Proprotein convertase subtilisin/kexin type 9 (PCSK9) is a key player in lipid metabolism, as it degrades low-density lipoprotein (LDL) receptors from hepatic cell membranes. So far, only variants of the PCSK9 gene locus were found to be associated with PCSK9 levels. Here we aimed to identify novel genetic loci that regulate PCSK9 levels and how they relate to other lipid traits. Additionally, we investigated to what extend the causal effect of PCSK9 on coronary artery disease (CAD) is mediated by low-density lipoprotein–cholesterol (LDL–C). Methods and Results We performed a genome-wide association study meta-analysis of PCSK9 levels in up to 12 721 samples of European ancestry. The estimated heritability was 10.3%, which increased to 12.6% using only samples from patients without statin treatment. We successfully replicated the known PCSK9 hit consisting of three independent signals. Interestingly, in a study of 300 African Americans, we confirmed the locus with a different PCSK9 variant. Beyond PCSK9, our meta-analysis detected three novel loci with genome-wide significance. Co-localization analysis with cis-eQTLs and lipid traits revealed biologically plausible candidate genes at two of them: APOB and TM6SF2. In a bivariate Mendelian Randomization analysis, we detected a strong effect of PCSK9 on LDL-C, but not vice versa. LDL-C mediated 63% of the total causal effect of PCSK9 on CAD. Conclusion Our study identified novel genetic loci with plausible candidate genes affecting PCSK9 levels. Ethnic heterogeneity was observed at the PCSK9 locus itself. Although the causal effect of PCSK9 on CAD is mainly mediated by LDL-C, an independent direct effect also occurs.

Funder

NIH

Ministry of Education

European Regional Development Fund

Swedish Heart-Lung Foundation

Swedish Research Council

Leducq Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology,General Medicine

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