单细胞转录组分析揭示了新内膜增生中血管细胞的动态群体

Guangzhen Shi, Xinran Tong, Weihong Sun, Zilong Fang, Wendong Chen, Gonghao Jiang, Peili Zhang, Qun Li
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摘要

背景:新内膜增生(NIH)是血管损伤疾病的病理基础。血管细胞是 NIH 过程中的主要细胞,但它们之间的异质性程度仍不清楚。方法:通过诱导颈动脉结扎,构建小鼠 NIH 模型。然后利用单细胞测序分析血管细胞的转录谱。通过功能富集分析、基因组评分、伪时间分析和细胞间通讯分析确定了集群特征。此外,对来自纤维母细胞线追踪(Pdgfra DreER -tdTomato)小鼠的血管组织进行了免疫荧光检测,以验证Pecam1 + Pdgfra + tdTomato +细胞的存在。结果:将结扎诱导的 NIH C57BL/6 小鼠的左颈动脉(结扎)与右颈动脉(假结扎)进行比较。整合分析显示血管细胞之间存在高度异质性,包括 14 个细胞群和 7 种细胞类型。我们重点研究了三种主要细胞类型:内皮细胞(EC)、血管平滑肌细胞(vSMC)和成纤维细胞。主要发现有(1) 内皮细胞的四个亚群,包括 ECs4、间充质样内皮细胞(ECs1 和 ECs2)和纤维样内皮细胞(ECs3);(2) 成纤维细胞的四个亚群、包括促炎症成纤维细胞-1、Sca1 + 成纤维细胞-2、产生胶原蛋白的成纤维细胞-3 和间充质样成纤维细胞-4;(3)vSMCs 的四个亚群,包括 vSMCs-1、vSMCs-2、vSMCs-3-derived 和 vSMCs-3-derived、4)ECs3 表达与细胞外基质(ECM)重塑和细胞迁移相关的基因,而纤维样 vSMCs 表现出强烈的趋化因子分泌和相对较高的蛋白酶水平;(5)分泌 Vegfa 的纤维样 vSMCs 主要通过血管内皮生长因子受体 2(Vegfr2)与 ECs 相互作用。结论 :本研究展示了 NIH 动脉内的动态细胞景观,并揭示了几个集群之间的潜在关系,特别是 ECs3 和纤维样 vSMCs。这两个亚群可能是治疗 NIH 的潜在靶细胞。
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Single-Cell Transcriptome Analysis Reveals Dynamic Populations of Vascular Cells in Neointimal Hyperplasia
Background : Neointimal hyperplasia (NIH) is the pathological basis of vascular injury disease. Vascular cells are the dominant cells in the process of NIH, but the extent of heterogeneity amongst them is still unclear. Methods : A mouse model of NIH was constructed by inducing carotid artery ligation. Single-cell sequencing was then used to analyze the transcriptional profile of vascular cells. Cluster features were determined by functional enrichment analysis, gene set scoring, pseudo-time analysis, and cell-cell communication analysis. Additionally, immunofluorescencestainingwasconductedonvasculartissuesfromfibroblastlineage-traced(Pdgfra DreER -tdTomato)mice to validate the presence of Pecam1 + Pdgfra + tdTomato + cells. Results : The left carotid arteries (ligation) were compared to right carotid arteries (sham) from ligation-induced NIH C57BL/6 mice. Integrative analyses revealed a high level of heterogeneity amongst vascular cells, including fourteen clusters and seven cell types. We focused on three dominant cell types: endothelial cells (ECs), vascular smooth muscle cells (vSMCs), and fibroblasts. The major findings were: (1) four subpopulations of ECs, including ECs4, mesenchymal-like ECs (ECs1 and ECs2), and fibro-like ECs (ECs3); (2) four subpopulations of fibroblasts, including pro-inflammatory Fibs-1, Sca1 + Fibs-2, collagen-producing Fibs-3, and mesenchymal-like Fibs-4; (3) four subpopulations of vSMCs, including vSMCs-1, vSMCs-2, vSMCs-3, and vSMCs-3-derived vSMCs; (4) ECs3 express genes related to extracellular matrix (ECM) remodeling and cell migration, and fibro-like vSMCs showed strong chemokine secretion and relatively high levels of proteases; (5) fibro-like vSMCs that secrete Vegfa interact with ECs mainly through vascular endothelial growth factor receptor 2 (Vegfr2). Conclusions : This study presents the dynamic cellular landscape within NIH arteries and reveals potential relationships between several clusters, with a specific focus on ECs3 and fibro-like vSMCs. These two subpopulations may represent potential target cells for the treatment of NIH.
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