SURGE: uncovering context-specific genetic-regulation of gene expression from single-cell RNA sequencing using latent-factor models

Author:

Strober Benjamin J.,Tayeb Karl,Popp Joshua,Qi Guanghao,Gordon M. Grace,Perez Richard,Ye Chun Jimmie,Battle AlexisORCID

Abstract

AbstractGenetic regulation of gene expression is a complex process, with genetic effects known to vary across cellular contexts such as cell types and environmental conditions. We developed SURGE, a method for unsupervised discovery of context-specific expression quantitative trait loci (eQTLs) from single-cell transcriptomic data. This allows discovery of the contexts or cell types modulating genetic regulation without prior knowledge. Applied to peripheral blood single-cell eQTL data, SURGE contexts capture continuous representations of distinct cell types and groupings of biologically related cell types. We demonstrate the disease-relevance of SURGE context-specific eQTLs using colocalization analysis and stratified LD-score regression.

Funder

NIH/NIGMS

NIH/NIDDK

Chan Zuckerberg Initiative

National Human Genome Research Institute

Publisher

Springer Science and Business Media LLC

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