心脏纤维化
血管紧张素II
肌成纤维细胞
纤维化
成纤维细胞
细胞外基质
医学
心力衰竭
心室重构
转录组
生物
细胞生物学
生物信息学
内科学
受体
细胞培养
基因表达
遗传学
基因
作者
Micheal A. McLellan,Daniel A. Skelly,Malathi S.I. Dona,Galen T Squiers,Gabriella E. Farrugia,Taylah L. Gaynor,Charles D. Cohen,Raghav Pandey,Henry Diep,Antony Vinh,Nadia Rosenthal,Alexander R. Pinto
出处
期刊:Circulation
[Lippincott Williams & Wilkins]
日期:2020-07-30
卷期号:142 (15): 1448-1463
被引量:282
标识
DOI:10.1161/circulationaha.119.045115
摘要
Background: Cardiac fibrosis is a key antecedent to many types of cardiac dysfunction including heart failure. Physiological factors leading to cardiac fibrosis have been recognized for decades. However, the specific cellular and molecular mediators that drive cardiac fibrosis, and the relative effect of disparate cell populations on cardiac fibrosis, remain unclear. Methods: We developed a novel cardiac single-cell transcriptomic strategy to characterize the cardiac cellulome, the network of cells that forms the heart. This method was used to profile the cardiac cellular ecosystem in response to 2 weeks of continuous administration of angiotensin II, a profibrotic stimulus that drives pathological cardiac remodeling. Results: Our analysis provides a comprehensive map of the cardiac cellular landscape uncovering multiple cell populations that contribute to pathological remodeling of the extracellular matrix of the heart. Two phenotypically distinct fibroblast populations, Fibroblast- Cilp and Fibroblast- Thbs4 , emerged after induction of tissue stress to promote fibrosis in the absence of smooth muscle actin–expressing myofibroblasts, a key profibrotic cell population. After angiotensin II treatment, Fibroblast- Cilp develops as the most abundant fibroblast subpopulation and the predominant fibrogenic cell type. Mapping intercellular communication networks within the heart, we identified key intercellular trophic relationships and shifts in cellular communication after angiotensin II treatment that promote the development of a profibrotic cellular microenvironment. Furthermore, the cellular responses to angiotensin II and the relative abundance of fibrogenic cells were sexually dimorphic. Conclusions: These results offer a valuable resource for exploring the cardiac cellular landscape in health and after chronic cardiovascular stress. These data provide insights into the cellular and molecular mechanisms that promote pathological remodeling of the mammalian heart, highlighting early transcriptional changes that precede chronic cardiac fibrosis.
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