Single-cell analysis defines the lineage plasticity of stem cells in cervix epithelium.

IF 4 Q2 CELL & TISSUE ENGINEERING
Zixian Zhao, Yujia Wang, Yingchuan Wu, Dandan Li, Ting Zhang, Yu Ma, Xiaoming Teng, Wei Zuo
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引用次数: 6

Abstract

Information about the dynamic change and post-injury regeneration of cervical epithelium is relatively rare, even though it is tightly related to gynecologic malignancy. Here, using a feeder cell-based culturing system, we stably cloned mouse and human P63 and KRT5 expressing cells from the adult cervix as putative cervical stem/progenitor cells (CVSCs). When subjected to differentiation, the cultured cells gave rise to mature cervical epithelium by differentiating into squamous or glandular cells. The ability of endogenous mouse CVSCs to reconstitute cervical epithelium after injury was also evident from the genetic lineage tracing experiments. Single-cell transcriptomic analysis further classified the CVSCs into three subtypes and delineated their bi-lineage differentiation roadmap by pseudo-time analysis. We also tracked the real-time differentiation routes of two representing single CVSC lines in vitro and found that they recapitulated the predicted roadmap in pseudo-time analysis. Signaling pathways including Wnt, TGF-beta, Notch and EGFR were found to regulate the cervical epithelial hierarchy and implicated the different roles of distinct types of cells in tissue homeostasis and tumorigenesis. Collectively, the above data provide a cloning system to achieve stable in vitro culture of a bi-lineage stem/progenitor cell population in the cervix, which has profound implications for our understanding of the cervix stem/progenitor cell function in homeostasis, regeneration, and disease and could be helpful for developing stem cell-based therapies in future.

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单细胞分析确定了子宫颈上皮干细胞的谱系可塑性。
尽管宫颈上皮与妇科恶性肿瘤密切相关,但关于其动态变化和损伤后再生的信息相对较少。在这里,我们使用基于饲养细胞的培养系统,稳定地克隆了小鼠和人类成年子宫颈表达P63和KRT5的细胞作为推定的子宫颈干/祖细胞(CVSCs)。经分化后,培养的细胞分化为鳞状细胞或腺状细胞,形成成熟的宫颈上皮。内源性小鼠CVSCs在损伤后重建宫颈上皮的能力也从遗传谱系追踪实验中得到了证明。单细胞转录组学分析进一步将CVSCs分为三个亚型,并通过伪时间分析描绘了它们的双谱系分化路线图。我们还跟踪了两个具有代表性的单个CVSC细胞系的体外实时分化路线,发现它们在伪时间分析中再现了预测的路线图。包括Wnt、tgf - β、Notch和EGFR在内的信号通路被发现调节宫颈上皮结构,并涉及不同类型细胞在组织稳态和肿瘤发生中的不同作用。综上所述,上述数据提供了一个克隆系统,可以在体外稳定培养子宫颈双系干细胞/祖细胞群,这对我们了解子宫颈干细胞/祖细胞在体内平衡、再生和疾病中的功能具有深远的意义,并可能有助于未来开发基于干细胞的治疗方法。
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来源期刊
Cell Regeneration
Cell Regeneration Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
5.80
自引率
0.00%
发文量
42
审稿时长
35 days
期刊介绍: Cell Regeneration aims to provide a worldwide platform for researches on stem cells and regenerative biology to develop basic science and to foster its clinical translation in medicine. Cell Regeneration welcomes reports on novel discoveries, theories, methods, technologies, and products in the field of stem cells and regenerative research, the journal is interested, but not limited to the following topics: ◎ Embryonic stem cells ◎ Induced pluripotent stem cells ◎ Tissue-specific stem cells ◎ Tissue or organ regeneration ◎ Methodology ◎ Biomaterials and regeneration ◎ Clinical translation or application in medicine
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