Dax1和Nanog协同作用以稳定小鼠胚胎干细胞并诱导多能性。

Dax1 and Nanog act in parallel to stabilize mouse embryonic stem cells and induced pluripotency.

作者信息

Zhang Junlei, Liu Gaoke, Ruan Yan, Wang Jiali, Zhao Ke, Wan Ying, Liu Bing, Zheng Hongting, Peng Tao, Wu Wei, He Ping, Hu Fu-Quan, Jian Rui

机构信息

Department of Microbiology, Third Military Medical University, Chongqing 400038, China.

Department of Pathogenic Biology, Third Military Medical University, Chongqing 400038, China.

出版信息

Nat Commun. 2014 Oct 6;5:5042. doi: 10.1038/ncomms6042.

Abstract

Nanog expression is heterogeneous and dynamic in embryonic stem cells (ESCs). However, the mechanism for stabilizing pluripotency during the transitions between Nanog(high) and Nanog(low) states is not well understood. Here we report that Dax1 acts in parallel with Nanog to regulate mouse ESC (mESCs) identity. Dax1 stable knockdown mESCs are predisposed towards differentiation but do not lose pluripotency, whereas Dax1 overexpression supports LIF-independent self-renewal. Although partially complementary, Dax1 and Nanog function independently and cannot replace one another. They are both required for full reprogramming to induce pluripotency. Importantly, Dax1 is indispensable for self-renewal of Nanog(low) mESCs. Moreover, we report that Dax1 prevents extra-embryonic endoderm (ExEn) commitment by directly repressing Gata6 transcription. Dax1 may also mediate inhibition of trophectoderm differentiation independent or as a downstream effector of Oct4. These findings establish a basal role of Dax1 in maintaining pluripotency during the state transition of mESCs and somatic cell reprogramming.

摘要

在胚胎干细胞(ESC)中,Nanog的表达具有异质性且是动态变化的。然而,在Nanog高表达和低表达状态转变过程中稳定多能性的机制尚未完全明确。在此,我们报告Dax1与Nanog协同作用来调控小鼠胚胎干细胞(mESC)的特性。稳定敲低Dax1的mESC易于分化,但并未丧失多能性,而Dax1过表达则支持不依赖白血病抑制因子(LIF)的自我更新。尽管Dax1和Nanog部分互补,但它们独立发挥功能且不能相互替代。诱导多能性的完全重编程需要二者共同参与。重要的是,Dax1对于Nanog低表达的mESC的自我更新不可或缺。此外,我们报告Dax1通过直接抑制Gata6转录来阻止胚外内胚层(ExEn)的定向分化。Dax1也可能独立介导对滋养外胚层分化的抑制,或者作为Oct4的下游效应因子发挥作用。这些发现确立了Dax1在mESC状态转变和体细胞重编程过程中维持多能性的基础作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10fb/4205889/b8734b92a7b0/ncomms6042-f1.jpg

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