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Colocalization of GWAS and eQTL signals detects target genes

Abstract:
The vast majority of genome-wide association study (GWAS) risk loci fall in non-coding regions of the genome. One possible hypothesis is that these GWAS risk loci alter the individual's disease risk through their effect on gene expression in different tissues. In order to understand the mechanisms driving a GWAS risk locus, it is helpful to determine which gene is affected in specific tissue types. For example, the relevant gene and tissue could play a role in the disease mechanism if the same variant responsible for a GWAS locus also affects gene expression. Identifying whether or not the same variant is causal in both GWASs and expression quantitative trail locus (eQTL) studies is challenging because of the uncertainty induced by linkage disequilibrium and the fact that some loci harbor multiple causal variants. However, current methods that address this problem assume that each locus contains a single causal variant. In this paper, we present eCAVIAR, a probabilistic method that has several key advantages over existing methods. First, our method can account for more than one causal variant in any given locus. Second, it can leverage summary statistics without accessing the individual genotype data. We use both simulated and real datasets to demonstrate the utility of our method. Using publicly available eQTL data on 45 different tissues, we demonstrate that eCAVIAR can prioritize likely relevant tissues and target genes for a set of glucose- and insulin-related trait loci.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1016/j.ajhg.2016.10.003

Authors


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Institution:
University of Oxford
Division:
MSD
Department:
NDM
Sub department:
Human Genetics Wt Centre
Role:
Author


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Funding agency for:
van de Bunt, M
Grant:
Postdoctoral fellowship
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Funding agency for:
van de Bunt, M
Grant:
Postdoctoral fellowship
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Grant:
NationalInstituteofNeurologicalDisorders
StrokeInformaticsCenterforNeurogenetics
Neurogenomics(P30NS062691


Publisher:
Cell Press
Journal:
American Journal of Human Genetics More from this journal
Volume:
99
Issue:
6
Pages:
1245-1260
Publication date:
2016-12-01
Acceptance date:
2016-10-03
DOI:
EISSN:
1537-6605
ISSN:
0002-9297


Language:
English
Pubs id:
pubs:662029
UUID:
uuid:e0a01169-3a4b-4c35-a2f9-4a0f9479ea64
Local pid:
pubs:662029
Source identifiers:
662029
Deposit date:
2017-01-12

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