KLF4-dependent phenotypic modulation of smooth muscle cells has a key role in atherosclerotic plaque pathogenesis

KLF4公司 发病机制 生物 表型 纤维帽 细胞生物学 病理 病变 电池类型 免疫染色 转录因子 间充质干细胞 细胞 表型转换 癌症研究 免疫学 免疫组织化学 基因 遗传学 医学 SOX2
作者
Laura S. Shankman,Delphine Gomez,Olga A. Cherepanova,Morgan Salmon,Gabriel F. Alencar,Ryan M. Haskins,Pamela Swiatlowska,Alexandra Newman,Elizabeth S. Greene,Adam C. Straub,Brant E. Isakson,Gwendalyn J. Randolph,Gary K. Owens
出处
期刊:Nature Medicine [Springer Nature]
卷期号:21 (6): 628-637 被引量:870
标识
DOI:10.1038/nm.3866
摘要

A high percentage of smooth muscle cells in atherosclerotic lesions lose expression of smooth muscle marker proteins and acquire the phenotype of other cell types, a process of functional importance in lesion pathogenesis that is controlled by the transcription factor KLF4. Previous studies investigating the role of smooth muscle cells (SMCs) and macrophages in the pathogenesis of atherosclerosis have provided controversial results owing to the use of unreliable methods for clearly identifying each of these cell types. Here, using Myh11-CreERT2 ROSA floxed STOP eYFP Apoe−/− mice to perform SMC lineage tracing, we find that traditional methods for detecting SMCs based on immunostaining for SMC markers fail to detect >80% of SMC-derived cells within advanced atherosclerotic lesions. These unidentified SMC-derived cells exhibit phenotypes of other cell lineages, including macrophages and mesenchymal stem cells (MSCs). SMC-specific conditional knockout of Krüppel-like factor 4 (Klf4) resulted in reduced numbers of SMC-derived MSC- and macrophage-like cells, a marked reduction in lesion size, and increases in multiple indices of plaque stability, including an increase in fibrous cap thickness as compared to wild-type controls. On the basis of in vivo KLF4 chromatin immunoprecipitation–sequencing (ChIP-seq) analyses and studies of cholesterol-treated cultured SMCs, we identified >800 KLF4 target genes, including many that regulate pro-inflammatory responses of SMCs. Our findings indicate that the contribution of SMCs to atherosclerotic plaques has been greatly underestimated, and that KLF4-dependent transitions in SMC phenotype are critical in lesion pathogenesis.
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