医学
新生血管
心肌梗塞
血管生成
转录组
内皮
血管生成
细胞生物学
再生(生物学)
内科学
病理
干细胞
内皮干细胞
癌症研究
生物
心脏病学
基因表达
体外
祖细胞
遗传学
基因
作者
Ziwen Li,Emmanouil G Solomonidis,Marco Meloni,Richard S. Taylor,Rodger Duffin,Ross Dobie,Marlène S. Magalhaes,Beth E. P. Henderson,Pieter A. Louwe,Gabriela D’Amico,Kairbaan Hodivala‐Dilke,Ajay M. Shah,Nicholas L. Mills,Benjamin D. Simons,Gillian A. Gray,Neil C. Henderson,Andrew H. Baker,Mairi Brittan
标识
DOI:10.1093/eurheartj/ehz305
摘要
A better understanding of the pathways that regulate regeneration of the coronary vasculature is of fundamental importance for the advancement of strategies to treat patients with heart disease. Here, we aimed to investigate the origin and clonal dynamics of endothelial cells (ECs) associated with neovascularization in the adult mouse heart following myocardial infarction (MI). Furthermore, we sought to define murine cardiac endothelial heterogeneity and to characterize the transcriptional profiles of pro-angiogenic resident ECs in the adult mouse heart, at single-cell resolution.An EC-specific multispectral lineage-tracing mouse (Pdgfb-iCreERT2-R26R-Brainbow2.1) was used to demonstrate that structural integrity of adult cardiac endothelium following MI was maintained through clonal proliferation by resident ECs in the infarct border region, without significant contributions from bone marrow cells or endothelial-to-mesenchymal transition. Ten transcriptionally discrete heterogeneous EC states, as well as the pathways through which each endothelial state is likely to enhance neovasculogenesis and tissue regeneration following ischaemic injury were defined. Plasmalemma vesicle-associated protein (Plvap) was selected for further study, which showed an endothelial-specific and increased expression in both the ischaemic mouse and human heart, and played a direct role in regulating human endothelial proliferation in vitro.We present a single-cell gene expression atlas of cardiac specific resident ECs, and the transcriptional hierarchy underpinning endogenous vascular repair following MI. These data provide a rich resource that could assist in the development of new therapeutic interventions to augment endogenous myocardial perfusion and enhance regeneration in the injured heart.
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