Rif1 interacts with non-canonical polycomb repressive complex PRC1.6 to regulate mouse embryonic stem cells fate potential.

IF 4 Q2 CELL & TISSUE ENGINEERING
Lu Li, Pishun Li, Jiale Chen, Li Li, Yunfan Shen, Yangzixuan Zhu, Jiayi Liu, Lu Lv, Song Mao, Fang Chen, Guang Hu, Kai Yuan
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引用次数: 4

Abstract

Mouse embryonic stem cells (mESCs) cycle in and out of a transient 2-cell (2C)-like totipotent state, driven by a complex genetic circuit involves both the coding and repetitive sections of the genome. While a vast array of regulators, including the multi-functional protein Rif1, has been reported to influence the switch of fate potential, how they act in concert to achieve this cellular plasticity remains elusive. Here, by modularizing the known totipotency regulatory factors, we identify an unprecedented functional connection between Rif1 and the non-canonical polycomb repressive complex PRC1.6. Downregulation of the expression of either Rif1 or PRC1.6 subunits imposes similar impacts on the transcriptome of mESCs. The LacO-LacI induced ectopic colocalization assay detects a specific interaction between Rif1 and Pcgf6, bolstering the intactness of the PRC1.6 complex. Chromatin immunoprecipitation followed by sequencing (ChIP-seq) analysis further reveals that Rif1 is required for the accurate targeting of Pcgf6 to a group of genomic loci encompassing many genes involved in the regulation of the 2C-like state. Depletion of Rif1 or Pcgf6 not only activates 2C genes such as Zscan4 and Zfp352, but also derepresses a group of the endogenous retroviral element MERVL, a key marker for totipotency. Collectively, our findings discover that Rif1 can serve as a novel auxiliary component in the PRC1.6 complex to restrain the genetic circuit underlying totipotent fate potential, shedding new mechanistic insights into its function in regulating the cellular plasticity of embryonic stem cells.

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Rif1与非规范多梳抑制复合体PRC1.6相互作用,调控小鼠胚胎干细胞命运潜能。
小鼠胚胎干细胞(mESCs)在一个涉及基因组编码和重复部分的复杂遗传回路的驱动下,在短暂的2细胞(2C)样全能性状态中循环往复。虽然包括多功能蛋白Rif1在内的大量调节因子已被报道影响命运潜能的转换,但它们如何协同作用以实现这种细胞可塑性仍然是难以捉摸的。在这里,通过模块化已知的全能性调节因子,我们发现了Rif1和非规范多梳抑制复合体PRC1.6之间前所未有的功能联系。下调Rif1或PRC1.6亚基的表达会对mESCs的转录组产生类似的影响。LacO-LacI诱导的异位共定位检测检测了Rif1和Pcgf6之间的特异性相互作用,增强了PRC1.6复合物的完整性。染色质免疫沉淀测序(ChIP-seq)分析进一步表明,Rif1是Pcgf6精确靶向一组基因组位点所必需的,这些基因组位点包含许多参与2c样状态调节的基因。Rif1或Pcgf6的缺失不仅激活了2C基因,如Zscan4和Zfp352,而且还抑制了一组内源性逆转录病毒元件MERVL,这是全能性的关键标志。总之,我们的研究结果发现,Rif1可以作为PRC1.6复合体的一个新的辅助成分来抑制潜在的全能性命运潜能的遗传回路,从而为其调节胚胎干细胞细胞可塑性的功能提供了新的机制见解。
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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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