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Multiple cell types contribute to the atherosclerotic lesion fibrous cap by PDGFRβ and bioenergetic mechanisms

纤维帽 PDGFRB公司 壁细胞 细胞生物学 PDGFB公司 血小板源性生长因子受体 肌成纤维细胞 生长因子 间充质干细胞 生物 细胞外基质 生长因子受体 电池类型 病理 纤维化 受体 细胞 内皮干细胞 体外 信号转导 医学 生物化学 基因
作者
Alexandra Newman,Vlad Serbulea,Richard A. Baylis,Laura S. Shankman,Xenia Bradley,Gabriel F. Alencar,Katherine Owsiany,Rebecca A. Deaton,Santosh Karnewar,Sohel Shamsuzzaman,Anita Salamon,Mahima Reddy,Liang Guo,Aloke V. Finn,Renu Virmani,Olga A. Cherepanova,Gary K. Owens
出处
期刊:Nature metabolism [Springer Nature]
卷期号:3 (2): 166-181 被引量:148
标识
DOI:10.1038/s42255-020-00338-8
摘要

Stable atherosclerotic plaques are characterized by a thick, extracellular matrix-rich fibrous cap populated by protective ACTA2+ myofibroblast (MF)-like cells, assumed to be almost exclusively derived from smooth muscle cells (SMCs). Herein, we show that in murine and human lesions, 20% to 40% of ACTA2+ fibrous cap cells, respectively, are derived from non-SMC sources, including endothelial cells (ECs) or macrophages that have undergone an endothelial-to-mesenchymal transition (EndoMT) or a macrophage-to-mesenchymal transition (MMT). In addition, we show that SMC-specific knockout of the Pdgfrb gene, which encodes platelet-derived growth factor receptor beta (PDGFRβ), in Apoe−/− mice fed a Western diet for 18 weeks resulted in brachiocephalic artery lesions nearly devoid of SMCs but with no changes in lesion size, remodelling or indices of stability, including the percentage of ACTA2+ fibrous cap cells. However, prolonged Western diet feeding of SMC Pdgfrb-knockout mice resulted in reduced indices of stability, indicating that EndoMT- and MMT-derived MFs cannot compensate indefinitely for loss of SMC-derived MFs. Using single-cell and bulk RNA-sequencing analyses of the brachiocephalic artery region and in vitro models, we provide evidence that SMC-to-MF transitions are induced by PDGF and transforming growth factor-β and dependent on aerobic glycolysis, while EndoMT is induced by interleukin-1β and transforming growth factor-β. Together, we provide evidence that the ACTA2+ fibrous cap originates from a tapestry of cell types, which transition to an MF-like state through distinct signalling pathways that are either dependent on or associated with extensive metabolic reprogramming. Newman et al. explore the origins of myofibroblasts in atherosclerotic fibrous caps, finding that while composed of cells from multiple origins, smooth muscle cells predominate and are required for long-term plaque stability.
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