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Integrated single-cell analysis-based classification of vascular mononuclear phagocytes in mouse and human atherosclerosis

Alma ZerneckeInstitute of Experimental Biomedicine, University Hospital Würzburg , Josef Schneider Str. 2, 97080 Würzburg , GermanyFlorian ErhardInstitute for Virology and Immunobiology, Julius-Maximilians-University Würzburg , Versbacher Straße 7, 97078 Würzburg , GermanyTobias WeinbergerDZHK (German Centre for Cardiovascular Research), partner site Munich Heart Alliance , Munich , GermanyChristian SchulzDZHK (German Centre for Cardiovascular Research), partner site Munich Heart Alliance , Munich , GermanyKlaus LeyDepartment of Bioengineering, University of California , San Diego, La Jolla, CA 92093 , USAAntoine‐Emmanuel SalibaHelmholtz Institute for RNA-based Infection Research (HIRI), Helmholtz-Center for Infection Research (HZI) , Josef Schneider Str. 2, 97080 Würzburg , GermanyClément CochainComprehensive Heart Failure Center Würzburg, University Hospital Würzburg , Am Schwarzenberg 15, 97078 Würzburg , Germany
2022en
ABI

Аннотация

AIMS: Accumulation of mononuclear phagocytes [monocytes, macrophages, and dendritic cells (DCs)] in the vessel wall is a hallmark of atherosclerosis. Using integrated single-cell analysis of mouse and human atherosclerosis, we here aimed to refine the nomenclature of mononuclear phagocytes in atherosclerotic vessels and to compare their transcriptomic profiles in mouse and human disease. METHODS AND RESULTS: We integrated 12 single-cell RNA-sequencing (scRNA-seq) datasets of immune cells isolated from healthy or atherosclerotic mouse aortas, and data from 11 patients (n = 4 coronary vessels, n = 7 carotid endarterectomy specimens) from two studies. Integration of mouse data identified subpopulations with discrete transcriptomic signatures within previously described populations of aortic resident (Lyve1), inflammatory (Il1b), as well as foamy (Trem2hi) macrophages. We identified unique transcriptomic features distinguishing aortic intimal resident macrophages from atherosclerosis-associated Trem2hi macrophages. Also, populations of Xcr1+ Type 1 classical DCs (cDC1), Cd209a+ cDC2, and mature DCs (Ccr7, Fscn1) with a 'mreg-DC' signature were detected. In humans, we uncovered macrophage and DC populations with gene expression patterns similar to those observed in mice. In particular, core transcripts of the foamy/Trem2hi signature (TREM2, SPP1, GPNMB, CD9) mapped to a specific population of macrophages in human lesions. Comparison of mouse and human data and direct cross-species data integration suggested transcriptionally similar macrophage and DC populations in mice and humans. CONCLUSIONS: We refined the nomenclature of mononuclear phagocytes in mouse atherosclerotic vessels, and show conserved transcriptomic features of macrophages and DCs in atherosclerosis in mice and humans, emphasizing the relevance of mouse models to study mononuclear phagocytes in atherosclerosis.

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