Spatial multi-omic map of human myocardial infarction

Christoph Kuppe(Erasmus MC), Ricardo O. Ramirez Flores(Heidelberg University), Zhijian Li(Universitätsklinikum Aachen), Monica T. Hannani(Heidelberg University), Jovan Tanevski(Heidelberg University), Maurice Halder(RWTH Aachen University), Mingbo Cheng(Universitätsklinikum Aachen), Susanne Ziegler(RWTH Aachen University), Xiaoting Zhang(RWTH Aachen University), Fabian Preisker(RWTH Aachen University), Nadine Kaesler(RWTH Aachen University), Yaoxian Xu(RWTH Aachen University), Remco M. Hoogenboezem(Erasmus MC Cancer Institute), Eric M. Bindels(Erasmus MC Cancer Institute), Rebekka K. Schneider(Erasmus MC), Hendrik Milting(Heart and Diabetes Center North Rhine-Westphalia), Ivan G. Costa(Universitätsklinikum Aachen), Julio Sáez-Rodríguez(Heidelberg University), Rafael Kramann(Erasmus MC)
bioRxiv (Cold Spring Harbor Laboratory)
December 10, 2020
Cited by 78Open Access
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Abstract

Abstract Myocardial infarction is a leading cause of mortality. While advances in the acute treatment have been made, the late-stage mortality is still high, driven by an incomplete understanding of cardiac remodeling processes 1,2 . Here we used single-cell gene expression, chromatin accessibility and spatial transcriptomic profiling of different physiological zones and timepoints of human myocardial infarction and human control myocardium to generate an integrative high-resolution map of cardiac remodeling. This approach allowed us to increase spatial resolution of cell-type composition and provide spatially resolved insights into the cardiac transcriptome and epigenome with identification of distinct cellular zones of injury, repair and remodeling. We here identified and validated mechanisms of fibroblast to myofibroblast differentiation that drive cardiac fibrosis. Our study provides an integrative molecular map of human myocardial infarction and represents a reference to advance mechanistic and therapeutic studies of cardiac disease.


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