Cell Reports
Volume 30, Issue 9, 3 March 2020, Pages 3149-3163.e6
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Dynamic Interstitial Cell Response during Myocardial Infarction Predicts Resilience to Rupture in Genetically Diverse Mice

https://doi.org/10.1016/j.celrep.2020.02.008Get rights and content
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Highlights

  • Longitudinal transcriptional profiling of cardiac interstitial cells post-infarct

  • Identification of epicardial versus endocardial origin of cardiac stromal cells

  • A distinct early injury-response signature precedes appearance of myofibroblasts

  • Modulation of early fibrosis predicts cardiac rupture and pathological remodeling

Summary

Cardiac ischemia leads to the loss of myocardial tissue and the activation of a repair process that culminates in the formation of a scar whose structural characteristics dictate propensity to favorable healing or detrimental cardiac wall rupture. To elucidate the cellular processes underlying scar formation, here we perform unbiased single-cell mRNA sequencing of interstitial cells isolated from infarcted mouse hearts carrying a genetic tracer that labels epicardial-derived cells. Sixteen interstitial cell clusters are revealed, five of which were of epicardial origin. Focusing on stromal cells, we define 11 sub-clusters, including diverse cell states of epicardial- and endocardial-derived fibroblasts. Comparing transcript profiles from post-infarction hearts in C57BL/6J and 129S1/SvImJ inbred mice, which displays a marked divergence in the frequency of cardiac rupture, uncovers an early increase in activated myofibroblasts, enhanced collagen deposition, and persistent acute phase response in 129S1/SvImJ mouse hearts, defining a crucial time window of pathological remodeling that predicts disease outcome.

Keywords

myocardial infarction
single-cell biology
cardiac rupture
fibrosis
genetic diversity
heart
mouse
epicardial-derived
scRNAseq
Seurat

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3

Present address: Amgen, 1120 Veterans Blvd., South San Francisco, CA 94080, USA

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