4.8 Article

Spatial multi-omic map of human myocardial infarction

期刊

NATURE
卷 608, 期 7924, 页码 766-+

出版社

NATURE PORTFOLIO
DOI: 10.1038/s41586-022-05060-x

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资金

  1. German Research Foundation [DFG: SFBTRR219]
  2. European Research Council [ERC-StG 101040726, ERC-StG 677448, ERC-CoG 101043403]
  3. Else Kroener Fresenius Foundation (EKFS)
  4. Dutch Kidney Foundation (DKF)
  5. Leducq Foundation
  6. Germany Society of Internal Medicine (DGIM)
  7. IZKF Faculty of Medicine at the RWTH Aachen University
  8. BMBF eMed Consortia Fibromap
  9. Informatics for Life - Klaus Tschira Foundation
  10. German Federal Ministry of Education and Research [BMBF 01ZZ2004]
  11. German Research Foundation (DFG) [INST 37/935-1 FUGG, 322900939, 454024652]
  12. High Performance and Cloud Computing Group at the Zentrum fur Datenverarbeitung of the University of Tubingen
  13. state of Baden-Wurttemberg through bwHPC
  14. TASKFORCE [EP1805]
  15. NWO VIDI [09150172010072]
  16. [CRU344-4288578857858]
  17. [CRU5011-445703531]

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In this study, an integrative molecular map of human myocardial infarction was generated using multiple analysis methods. The results elucidated the molecular principles of cardiac tissue organization and provided an important reference for mechanistic and therapeutic studies of cardiac disease.
Myocardial infarction is a leading cause of death worldwide(1). Although advances have been made in acute treatment, an incomplete understanding of remodelling processes has limited the effectiveness of therapies to reduce late-stage mortality(2). Here we generate an integrative high-resolution map of human cardiac remodelling after myocardial infarction using single-cell gene expression, chromatin accessibility and spatial transcriptomic profiling of multiple physiological zones at distinct time points in myocardium from patients with myocardial infarction and controls. Multi-modal data integration enabled us to evaluate cardiac cell-type compositions at increased resolution, yielding insights into changes of the cardiactranscriptome and epigenome through the identification of distinct tissue structures of injury, repair and remodelling. We identified and validated disease-specific cardiac cell states of major cell types and analysed them in their spatial context, evaluating their dependency on other cell types. Our data elucidate the molecular principles of human myocardial tissue organization, recapitulating a gradual cardiomyocyte and myeloid continuum following ischaemic injury. In sum, our study provides an integrative molecular map of human myocardial infarction, represents an essential reference for the field and paves the way for advanced mechanistic and therapeutic studies of cardiac disease.

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