Gene Expression Networks in the Murine Pulmonary Myocardium Provide Insight into the Pathobiology of Atrial Fibrillation

Author:

Boutilier Jordan K12,Taylor Rhonda L121,Mann Tracy3,McNamara Elyshia12,Hoffman Gary J3,Kenny Jacob3,Dilley Rodney J4,Henry Peter3,Morahan Grant12,Laing Nigel G12,Nowak Kristen J13

Affiliation:

1. Harry Perkins Institute for Medical Research

2. Centre for Medical Research, University of Western Australia, Queen Elizabeth II Medical Centre, Nedlands, 6009, Australia

3. School of Biomedical Sciences, University of Western Australia, Queen Elizabeth II Medical Centre, Nedlands, 6009, Australia

4. Ear Sciences Centre, Faculty of Health and Medical Sciences, University of Western Australia, Queen Elizabeth II Medical Centre, Nedlands, 6009, Australia

Abstract

Abstract The pulmonary myocardium is a muscular coat surrounding the pulmonary and caval veins. Although its definitive physiological function is unknown, it may have a pathological role as the source of ectopic beats initiating atrial fibrillation. How the pulmonary myocardium gains pacemaker function is not clearly defined, although recent evidence indicates that changed transcriptional gene expression networks are at fault. The gene expression profile of this distinct cell type in situ was examined to investigate underlying molecular events that might contribute to atrial fibrillation. Via systems genetics, a whole-lung transcriptome data set from the BXD recombinant inbred mouse resource was analyzed, uncovering a pulmonary cardiomyocyte gene network of 24 transcripts, coordinately regulated by chromosome 1 and 2 loci. Promoter enrichment analysis and interrogation of publicly available ChIP-seq data suggested that transcription of this gene network may be regulated by the concerted activity of NKX2-5, serum response factor, myocyte enhancer factor 2, and also, at a post-transcriptional level, by RNA binding protein motif 20. Gene ontology terms indicate that this gene network overlaps with molecular markers of the stressed heart. Therefore, we propose that perturbed regulation of this gene network might lead to altered calcium handling, myocyte growth, and contractile force contributing to the aberrant electrophysiological properties observed in atrial fibrillation. We reveal novel molecular interactions and pathways representing possible therapeutic targets for atrial fibrillation. In addition, we highlight the utility of recombinant inbred mouse resources in detecting and characterizing gene expression networks of relatively small populations of cells that have a pathological significance.

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology

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