Mapping disease regulatory circuits at cell-type resolution from single-cell multiomics data

Author:

Chen Xi,Wang YuanORCID,Cappuccio Antonio,Cheng Wan-Sze,Zamojski Frederique RufORCID,Nair Venugopalan D.,Miller Clare M.,Rubenstein Aliza B.,Nudelman German,Tadych Alicja,Theesfeld Chandra L.ORCID,Vornholt Alexandria,George Mary-Catherine,Ruffin Felicia,Dagher Michael,Chawla Daniel G.,Soares-Schanoski Alessandra,Spurbeck Rachel R.,Ndhlovu Lishomwa C.,Sebra Robert,Kleinstein Steven H.ORCID,Letizia Andrew G.ORCID,Ramos IreneORCID,Fowler Vance G.,Woods Christopher W.,Zaslavsky ElenaORCID,Troyanskaya Olga G.,Sealfon Stuart C.ORCID

Abstract

AbstractResolving chromatin-remodeling-linked gene expression changes at cell-type resolution is important for understanding disease states. Here we describe MAGICAL (Multiome Accessibility Gene Integration Calling and Looping), a hierarchical Bayesian approach that leverages paired single-cell RNA sequencing and single-cell transposase-accessible chromatin sequencing from different conditions to map disease-associated transcription factors, chromatin sites, and genes as regulatory circuits. By simultaneously modeling signal variation across cells and conditions in both omics data types, MAGICAL achieved high accuracy on circuit inference. We applied MAGICAL to study Staphylococcusaureus sepsis from peripheral blood mononuclear single-cell data that we generated from subjects with bloodstream infection and uninfected controls. MAGICAL identified sepsis-associated regulatory circuits predominantly in CD14 monocytes, known to be activated by bacterial sepsis. We addressed the challenging problem of distinguishing host regulatory circuit responses to methicillin-resistant and methicillin-susceptible S.aureus infections. Although differential expression analysis failed to show predictive value, MAGICAL identified epigenetic circuit biomarkers that distinguished methicillin-resistant from methicillin-susceptible S.aureus infections.

Publisher

Springer Science and Business Media LLC

Subject

Computer Networks and Communications,Computer Science Applications,Computer Science (miscellaneous)

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