Back to Search Start Over

Genome-wide maps of enhancer regulation connect risk variants to disease genes

Authors :
Tejal A. Patwardhan
Tom M. Eisenhaure
Benjamin R. Doughty
Jacob C. Ulirsch
Thouis R. Jones
Tung T. Nguyen
Michael Kane
Kushal K. Dey
Helen Y. Kang
Philine Guckelberger
Mark J. Daly
Elle M. Weeks
Joseph Nasser
Drew T. Bergman
Anshul Kundaje
Jesse M. Engreitz
Ang Cui
Hilary K. Finucane
Alkes L. Price
Glen Munson
John P. Ray
Nir Hacohen
Kristy Mualim
Eric S. Lander
Heini M. Natri
Charles B. Epstein
Ramnik J. Xavier
Charles P. Fulco
Hailiang Huang
Ryan L. Collins
Publication Year :
2020
Publisher :
Cold Spring Harbor Laboratory, 2020.

Abstract

Genome-wide association studies have now identified tens of thousands of noncoding loci associated with human diseases and complex traits, each of which could reveal insights into biological mechanisms of disease. Many of the underlying causal variants are thought to affect enhancers, but we have lacked genome-wide maps of enhancer-gene regulation to interpret such variants. We previously developed the Activity-by-Contact (ABC) Model to predict enhancer-gene connections and demonstrated that it can accurately predict the results of CRISPR perturbations across several cell types. Here, we apply this ABC Model to create enhancer-gene maps in 131 cell types and tissues, and use these maps to interpret the functions of fine-mapped GWAS variants. For inflammatory bowel disease (IBD), causal variants are >20-fold enriched in enhancers in particular cell types, and ABC outperforms other regulatory methods at connecting noncoding variants to target genes. Across 72 diseases and complex traits, ABC links 5,036 GWAS signals to 2,249 unique genes, including a class of 577 genes that appear to influence multiple phenotypes via variants in enhancers that act in different cell types. Guided by these variant-to-function maps, we show that an enhancer containing an IBD risk variant regulates the expression ofPPIFto tune mitochondrial membrane potential. Together, our study reveals insights into principles of genome regulation, illuminates mechanisms that influence IBD, and demonstrates a generalizable strategy to connect common disease risk variants to their molecular and cellular functions.

Details

Database :
OpenAIRE
Accession number :
edsair.doi...........af602c085e001e44d42cac6b461e53ec
Full Text :
https://doi.org/10.1101/2020.09.01.278093