6533b7cefe1ef96bd1257b74

RESEARCH PRODUCT

Statistical colocalization of monocyte gene expression and genetic risk variants for type 1 diabetes

Maxime RotivalStefan BlankenbergJennie H M YangMhairi McneillChris WallaceFrançois CambienDavid NiblettDeborah J. SmythLaurence TiretJohn A. ToddCatherine M. RiceDavid ClaytonJason D. Cooper

subject

AdultMaleLinkage disequilibriumGenotypeQuantitative Trait LociSingle-nucleotide polymorphismGenome-wide association studyQuantitative trait locusBiologyPolymorphism Single NucleotideLinkage DisequilibriumMonocytes03 medical and health sciences0302 clinical medicineRisk FactorsGeneticsHumansGenetic Predisposition to DiseaseMolecular BiologyGeneGenetics (clinical)Aged030304 developmental biologyGenetic associationGenetics0303 health sciencesModels GeneticAssociation Studies ArticlesColocalizationGeneral MedicineMiddle AgedDiabetes Mellitus Type 1Expression quantitative trait lociFemaleTranscriptomeAlgorithms030217 neurology & neurosurgeryGenome-Wide Association Study

description

One mechanism by which disease-associated DNA variation can alter disease risk is altering gene expression. However, linkage disequilibrium (LD) between variants, mostly single-nucleotide polymorphisms (SNPs), means it is not sufficient to show that a particular variant associates with both disease and expression, as there could be two distinct causal variants in LD. Here, we describe a formal statistical test of colocalization and apply it to type 1 diabetes (T1D)-associated regions identified mostly through genome-wide association studies and expression quantitative trait loci (eQTLs) discovered in a recently determined large monocyte expression data set from the Gutenberg Health Study (1370 individuals), with confirmation sought in an additional data set from the Cardiogenics Transcriptome Study (558 individuals). We excluded 39 out of 60 overlapping eQTLs in 49 T1D regions from possible colocalization and identified 21 coincident eQTLs, representing 21 genes in 14 distinct T1D regions. Our results reflect the importance of monocyte (and their derivatives, macrophage and dendritic cell) gene expression in human T1D and support the candidacy of several genes as causal factors in autoimmune pancreatic beta-cell destruction, including AFF3, CD226, CLECL1, DEXI, FKRP, PRKD2, RNLS, SMARCE1 and SUOX, in addition to the recently described GPR183 (EBI2) gene.

https://doi.org/10.1093/hmg/dds098