一个实时多能性报告器,用于长期和实时监测诱导多能干细胞的多能性变化

Hong-fen Shen, Yonglong Li, Shijiang Huang, Jia-Wei Xia, Zhiguang Yao, Gaofang Xiao, Ying Zhou, Yingchun Li, Jun-Wen Shi, Xiao-Lin Lin, Wen-tao Zhao, Yan Sun, Yu-guang Tian, Jun-shuang Jia, Dong Xiao
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引用次数: 1

摘要

掌握小鼠体细胞重编程为诱导多能干细胞(iPSCs)的技术,为搭建人类癌细胞重编程为iPSCs的技术平台奠定良好的基础。在小鼠胚胎干细胞(mESC)培养条件下,通过引入Oct4、Sox2、c-Myc和Klf4四种因子,成功地从携带Oct4- egfp转基因的小鼠胚胎成纤维细胞(MEFs)中生成小鼠iPSCs(即Oct4- gfp miPSCs)。Oct4-GFP miPSCs在形态、增殖、mesc特异性表面抗原和基因表达方面与mesc相似。此外,Oct4-GFP miPSCs可以在体外培养形成胚状体(EBs)并分化为三种胚层的细胞类型。此外,Oct4-GFP miPSCs在体内可发展为畸胎瘤和嵌合体。与MEFs的细胞周期分布不同,Oct4-GFP miPSCs的细胞周期结构与mESCs相似,均为高S期和低G1期。更重要的是,我们的数据表明,携带Oct4-EGFP转基因的mef在被重编程为多能期(iPSCs)之前不表达GFP,而当这些多能Oct4-GFP miPSCs暴露于eb介导的分化条件下时,GFP的表达逐渐丧失,这表明通过GFP检测可以长时间实时监测Oct4-GFP miPSCs的多能性。综上所述,我们的研究结果表明Oct4-GFP miPSC系的成功建立,将为建立癌细胞重编程为iPSCs的技术平台奠定坚实的基础。此外,这种多能性报告系统允许长期实时监测活单细胞及其后代的多能性变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A real-time pluripotency reporter for the long-term and real-time monitoring of pluripotency changes in induced pluripotent stem cells
To master the technology of reprogramming mouse somatic cells to induced pluripotent stem cells (iPSCs), which will lay a good foundation for setting up a technology platform on reprogramming human cancer cells into iPSCs. Mouse iPSCs (i.e., Oct4-GFP miPSCs) was successfully generated from mouse embryonic fibroblasts (MEFs) harboring Oct4-EGFP transgene by introducing four factors, Oct4, Sox2, c-Myc and Klf4, under mESC (Murine embryonic stem cells) culture conditions. Oct4-GFP miPSCs were similar to mESCs in morphology, proliferation, mESC-specific surface antigens and gene expression. Additionally, Oct4-GFP miPSCs could be cultured in suspension to form embryoid bodies (EBs) and differentiate into cell types of the three germ layers in vitro. Moreover, Oct4-GFP miPSCs could develop to teratoma and chimera in vivo. Unlike cell cycle distribution of MEFs, Oct4-GFP miPSCs are similar to mESCs in the cell cycle structure which consists of higher S phase and lower G1 phase. More importantly, our data demonstrated that MEFs harboring Oct4-EGFP transgene did not express GFP, until they were reprogrammed to the pluripotent stage (iPSCs), while the GFP expression was progressively lost when these pluripotent Oct4-GFP miPSCs exposed to EB-mediated differentiation conditions, suggesting the pluripotency of Oct4-GFP miPSCs can be real-time monitored over long periods of time via GFP assay. Altogether, our findings demonstrate that Oct4-GFP miPSC line is successfully established, which will lay a solid foundation for setting up a technology platform on reprogramming cancer cells into iPSCs. Furthermore, this pluripotency reporter system permits the long-term real-time monitoring of pluripotency changes in a live single-cell, and its progeny.
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