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由TET蛋白介导的NANOG和SOX17之间的平衡调节人类原始生殖细胞命运的特化。

The balance between NANOG and SOX17 mediated by TET proteins regulates specification of human primordial germ cell fate.

作者信息

Li Zili, Fang Fang, Long Yuting, Zhao Qian, Wang Xiaotong, Ye Zhen, Meng Tianqing, Gu Xiuli, Xiang Wenpei, Xiong Chengliang, Li Honggang

机构信息

Institute of Reproductive Health, Tongji Medical College, Huazhong University of Science and Technology, 13 Hangkong Road, Wuhan, 430030, China.

Wuhan Tongji Reproductive Medicine Hospital, 128 Sanyang Road, Wuhan, 430013, China.

出版信息

Cell Biosci. 2022 Nov 4;12(1):181. doi: 10.1186/s13578-022-00917-0.

Abstract

BACKGROUND

Human primordial germ cells (hPGCs) initiate from the early post-implantation embryo at week 2-3 and undergo epigenetic reprogramming during development. However, the regulatory mechanism of DNA methylation during hPGC specification is still largely unknown due to the difficulties in analyzing early human embryos. Using an in vitro model of hPGC induction, we found a novel function of TET proteins and NANOG in the hPGC specification which was different from that discovered in mice.

METHODS

Using the CRISPR-Cas9 system, we generated a set of TET1, TET2 and TET3 knockout H1 human embryonic stem cell (hESC) lines bearing a BLIMP1-2A-mKate2 reporter. We determined the global mRNA transcription and DNA methylation profiles of pluripotent cells and induced hPGC-like cells (hPGCLCs) by RNA-seq and whole-genome bisulfite sequencing (WGBS) to reveal the involved signaling pathways after TET proteins knockout. ChIP-qPCR was performed to verify the binding of TET and NANOG proteins in the SOX17 promoter. Real-time quantitative PCR, western blot and immunofluorescence were performed to measure gene expression at mRNA and protein levels. The efficiency of hPGC induction was evaluated by FACS.

RESULTS

In humans, TET1, TET2 and TET3 triple-knockout (TKO) human embryonic stem cells (hESCs) impaired the NODAL signaling pathway and impeded hPGC specification in vitro, while the hyperactivated NODAL signaling pathway led to gastrulation failure when Tet proteins were inactivated in mouse. Specifically, TET proteins stimulated SOX17 through the NODAL signaling pathway and directly regulates NANOG expression at the onset of hPGCLCs induction. Notably, NANOG could bind to SOX17 promoter to regulate its expression in hPGCLCs specification. Furthermore, in TKO hESCs, DNMT3B-mediated hypermethylation of the NODAL signaling-related genes and NANOG/SOX17 promoters repressed their activation and inhibited hPGCLC induction. Knockout of DNMT3B in TKO hESCs partially restored NODAL signaling and NANOG/SOX17 expression, and rescued hPGCLC induction.

CONCLUSION

Our results show that TETs-mediated oxidation of 5-methylcytosine modulates the NODAL signaling pathway and its downstream genes, NANOG and SOX17, by promoting demethylation in opposition to DNMT3B-mediated methylation, suggesting that the epigenetic balance of DNA methylation and demethylation in key genes plays a fundamental role in early hPGC specification.

摘要

背景

人类原始生殖细胞(hPGCs)在植入后第2 - 3周的早期胚胎中起始,并在发育过程中经历表观遗传重编程。然而,由于分析早期人类胚胎存在困难,hPGC特化过程中DNA甲基化的调控机制仍很大程度上未知。利用hPGC诱导的体外模型,我们发现了TET蛋白和NANOG在hPGC特化中的一种新功能,这与在小鼠中发现的不同。

方法

使用CRISPR - Cas9系统,我们构建了一组携带BLIMP1 - 2A - mKate2报告基因的TET1、TET2和TET3敲除的H1人胚胎干细胞(hESC)系。我们通过RNA测序和全基因组亚硫酸氢盐测序(WGBS)确定多能细胞和诱导的hPGC样细胞(hPGCLCs)的全局mRNA转录和DNA甲基化谱,以揭示TET蛋白敲除后涉及的信号通路。进行染色质免疫沉淀定量PCR(ChIP - qPCR)以验证TET和NANOG蛋白在SOX17启动子中的结合。进行实时定量PCR、蛋白质免疫印迹和免疫荧光以在mRNA和蛋白质水平测量基因表达。通过荧光激活细胞分选(FACS)评估hPGC诱导效率。

结果

在人类中,TET1、TET2和TET3三敲除(TKO)人胚胎干细胞(hESCs)损害了NODAL信号通路并在体外阻碍了hPGC特化,而当Tet蛋白在小鼠中失活时,过度激活的NODAL信号通路导致原肠胚形成失败。具体而言,TET蛋白通过NODAL信号通路刺激SOX17,并在hPGCLCs诱导开始时直接调节NANOG表达。值得注意的是,NANOG可结合到SOX17启动子以在hPGCLCs特化中调节其表达。此外,在TKO hESCs中,DNMT3B介导的NODAL信号相关基因和NANOG/SOX17启动子的高甲基化抑制了它们的激活并抑制了hPGCLC诱导。在TKO hESCs中敲除DNMT3B部分恢复了NODAL信号和NANOG/SOX17表达,并挽救了hPGCLC诱导。

结论

我们的结果表明,TETs介导的5 - 甲基胞嘧啶氧化通过促进去甲基化以对抗DNMT3B介导的甲基化来调节NODAL信号通路及其下游基因NANOG和SOX17,这表明关键基因中DNA甲基化和去甲基化的表观遗传平衡在早期hPGC特化中起基本作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ba1/9636699/04c7287ed2a2/13578_2022_917_Fig1_HTML.jpg

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