DNA methylation QTL analysis identifies new regulators of human longevity

Author:

Szymczak Silke1,Dose Janina2,Torres Guillermo G2,Heinsen Femke-Anouska2,Venkatesh Geetha2,Datlinger Paul3,Nygaard Marianne45,Mengel-From Jonas45,Flachsbart Friederike2,Klapper Wolfram6,Christensen Kaare457,Lieb Wolfgang8,Schreiber Stefan2,Häsler Robert2,Bock Christoph3910,Franke Andre2,Nebel Almut2

Affiliation:

1. Institute of Medical Informatics and Statistics, Kiel University, University Hospital Schleswig-Holstein, Campus Kiel, D-24105 Kiel, Germany

2. Institute of Clinical Molecular Biology, Kiel University, University Hospital Schleswig-Holstein, Campus Kiel, D-24105 Kiel, Germany

3. CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, A-1090 Vienna, Austria

4. Research Unit of Epidemiology, Biostatistics and Biodemography, Department of Public Health, University of Southern Denmark, DK-5000 Odense C, Denmark

5. Department of Clinical Genetics, Odense University Hospital, DK-5000 Odense C, Denmark

6. Institute of Pathology, Kiel University, University Hospital Schleswig-Holstein, Campus Kiel, D-24105 Kiel, Germany

7. Department of Clinical Biochemistry and Pharmacology, Odense University Hospital, DK-5000 Odense C, Denmark

8. Institute of Epidemiology, Kiel University, University Hospital Schleswig-Holstein, Campus Kiel, D-24105 Kiel, Germany

9. Department of Laboratory Medicine, Medical University of Vienna, A-1090 Vienna, Austria

10. Max Planck Institute for Informatics, Saarland Informatics Campus, D-66123 Saarbrücken, Germany

Abstract

Abstract Human longevity is a complex trait influenced by both genetic and environmental factors, whose interaction is mediated by epigenetic mechanisms like DNA methylation. Here, we generated genome-wide whole-blood methylome data from 267 individuals, of which 71 were long-lived (90–104 years), by applying reduced representation bisulfite sequencing. We followed a stringent two-stage analysis procedure using discovery and replication samples to detect differentially methylated sites (DMSs) between young and long-lived study participants. Additionally, we performed a DNA methylation quantitative trait loci analysis to identify DMSs that underlie the longevity phenotype. We combined the DMSs results with gene expression data as an indicator of functional relevance. This approach yielded 21 new candidate genes, the majority of which are involved in neurophysiological processes or cancer. Notably, two candidates (PVRL2, ERCC1) are located on chromosome 19q, in close proximity to the well-known longevity- and Alzheimer’s disease-associated loci APOE and TOMM40. We propose this region as a longevity hub, operating on both a genetic (APOE, TOMM40) and an epigenetic (PVRL2, ERCC1) level. We hypothesize that the heritable methylation and associated gene expression changes reported here are overall advantageous for the LLI and may prevent/postpone age-related diseases and facilitate survival into very old age.

Funder

National Institutes of Health

US National Institute of Health

Velux Foundation

Danish Agency for Science Technology and Innovation

National Program for Research Infrastructure 2007

Bundesministerium für Bildung und Forschung

INTERREG 4A Syddanmark-Schleswig-K.E.R.N

EpiHealth

Deutsche Forschungsgemeinschaft

Publisher

Oxford University Press (OUP)

Subject

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

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