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miR-302 簇-MBD2 通过表观遗传调控 NANOG 完成诱导多能干细胞重编程。

Epigenetic regulation of NANOG by miR-302 cluster-MBD2 completes induced pluripotent stem cell reprogramming.

机构信息

Department of Microbiology and Immunology and Indiana University School of Medicine, Indianapolis, Indiana 46202-5181, USA.

出版信息

Stem Cells. 2013 Apr;31(4):666-81. doi: 10.1002/stem.1302.

Abstract

While most somatic cells undergoing induced pluripotent stem (iPS) cell reprogramming with Yamanaka factors accumulate at stable partially reprogrammed stages, the molecular mechanisms required to achieve full reprogramming are unknown. MicroRNAs (miRNAs) fine-tune mRNA translation and are implicated in reprogramming, but miRNA functional targets critical for complete iPS cell reprogramming remain elusive. We identified methyl-DNA binding domain protein 2 (MBD2) as an epigenetic suppressor, blocking full reprogramming of somatic to iPS cells through direct binding to NANOG promoter elements preventing transcriptional activation. When we overexpressed miR-302 cluster we observed a significant increase in conversion of partial to fully reprogrammed iPS cells by suppressing MBD2 expression, thereby increasing NANOG expression. Thus, expression of exogenous miR-302 cluster (without miR-367) is efficient in attaining a fully reprogrammed iPS state in partially reprogrammed cells by relieving MBD2-mediated inhibition of NANOG expression. Our studies provide a direct molecular mechanism involved in generating complete human iPS cell reprogramming to study disease pathogenesis, drug screening, and for potential cell-based therapies.

摘要

虽然大多数体细胞在经过 Yamanaka 因子诱导多能干细胞(iPS)细胞重编程后,会在稳定的部分重编程阶段积累,但实现完全重编程所需的分子机制尚不清楚。微小 RNA(miRNA)精细调节 mRNA 翻译,并与重编程有关,但对于完全 iPS 细胞重编程至关重要的 miRNA 功能靶标仍然难以捉摸。我们鉴定出甲基化 DNA 结合蛋白 2(MBD2)是一种表观遗传抑制剂,通过直接结合 NANOG 启动子元件阻止转录激活,从而阻止体细胞到 iPS 细胞的完全重编程。当我们过表达 miR-302 簇时,我们观察到通过抑制 MBD2 表达,部分重编程的 iPS 细胞向完全重编程的 iPS 细胞的转化率显著增加,从而增加 NANOG 的表达。因此,表达外源性 miR-302 簇(不含 miR-367)通过解除 MBD2 对 NANOG 表达的抑制作用,有效地将部分重编程细胞诱导为完全重编程的 iPS 状态。我们的研究提供了一个直接的分子机制,用于研究疾病发病机制、药物筛选和潜在的基于细胞的治疗方法。

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