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ETO家族蛋白Mtgr1在干细胞维持和原始生殖细胞形成过程中介导Prdm14的功能。

ETO family protein Mtgr1 mediates Prdm14 functions in stem cell maintenance and primordial germ cell formation.

作者信息

Nady Nataliya, Gupta Ankit, Ma Ziyang, Swigut Tomek, Koide Akiko, Koide Shohei, Wysocka Joanna

机构信息

Department of Chemical and Systems Biology, Stanford University School of Medicine, Stanford, United States.

Department of Biochemistry and Molecular Biology, University of Chicago, Chicago, United States.

出版信息

Elife. 2015 Nov 2;4:e10150. doi: 10.7554/eLife.10150.

Abstract

Prdm14 is a sequence-specific transcriptional regulator of embryonic stem cell (ESC) pluripotency and primordial germ cell (PGC) formation. It exerts its function, at least in part, through repressing genes associated with epigenetic modification and cell differentiation. Here, we show that this repressive function is mediated through an ETO-family co-repressor Mtgr1, which tightly binds to the pre-SET/SET domains of Prdm14 and co-occupies its genomic targets in mouse ESCs. We generated two monobodies, synthetic binding proteins, targeting the Prdm14 SET domain and demonstrate their utility, respectively, in facilitating crystallization and structure determination of the Prdm14-Mtgr1 complex, or as genetically encoded inhibitor of the Prdm14-Mtgr1 interaction. Structure-guided point mutants and the monobody abrogated the Prdm14-Mtgr1 association and disrupted Prdm14's function in mESC gene expression and PGC formation in vitro. Altogether, our work uncovers the molecular mechanism underlying Prdm14-mediated repression and provides renewable reagents for studying and controlling Prdm14 functions.

摘要

Prdm14是一种序列特异性转录调节因子,对胚胎干细胞(ESC)多能性和原始生殖细胞(PGC)形成起作用。它至少部分通过抑制与表观遗传修饰和细胞分化相关的基因来发挥其功能。在此,我们表明这种抑制功能是通过ETO家族共抑制因子Mtgr1介导的,Mtgr1与Prdm14的前SET/SET结构域紧密结合,并在小鼠胚胎干细胞中共占据其基因组靶点。我们生成了两种单特异性抗体,即靶向Prdm14 SET结构域的合成结合蛋白,并分别展示了它们在促进Prdm14-Mtgr1复合物结晶和结构测定方面的效用,或作为Prdm14-Mtgr1相互作用的基因编码抑制剂。基于结构的点突变体和单特异性抗体消除了Prdm14-Mtgr1的结合,并破坏了Prdm14在体外小鼠胚胎干细胞基因表达和PGC形成中的功能。总之,我们的工作揭示了Prdm14介导的抑制作用的分子机制,并为研究和控制Prdm14功能提供了可再生试剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3851/4749557/57a2a45b8a9d/elife-10150-fig1.jpg

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