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Mettl14 通过促进上胚层成熟来满足小鼠植入后发育的需要。

Mettl14 is required for mouse postimplantation development by facilitating epiblast maturation.

机构信息

State Key Laboratory of Stem Cell and Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, Beijing, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

FASEB J. 2019 Jan;33(1):1179-1187. doi: 10.1096/fj.201800719R. Epub 2018 Aug 15.

DOI:10.1096/fj.201800719R
PMID:30110177
Abstract

N6-methyladenosine (mA) is the most prevalent and reversible internal modification of mammalian messenger and noncoding RNAs mediated by specific mA writer, reader, and eraser proteins. As an mA writer, the methyltransferase-like 3-methyltransferase-like 14 (METTL14)-Wilms tumor 1-associated protein complex dynamically regulates mA modification and plays important roles in diverse biologic processes. However, our knowledge about the complete functions of this RNA methyltransferase complex, the contributions of each component to the methylation, and their effects on different biologic pathways are still limited. By using both in vivo and in vitro models, we here report that METTL14 is indispensable for postimplantation embryonic development by facilitating the conversion from naive to primed state of the epiblast. Depletion of Mettl14 leads to conspicuous embryonic growth retardation from embryonic d 6.5, mainly as a result of resistance to differentiation, which further leads to embryonic lethality early in gestation. Our data highlight the critical function of METTL14 as an mA modification regulator in orchestrating early mouse embryogenesis.-Meng, T.-G., Lu, X., Guo, L., Hou, G.-M., Ma, X.-S., Li, Q.-N., Huang, L., Fan, L.-H., Zhao, Z.-H., Ou, X.-H., OuYang, Y.-C., Schatten, H., Li, L., Wang, Z.-B., Sun, Q.-Y. Mettl14 is required for mouse postimplantation development by facilitating epiblast maturation.

摘要

N6-甲基腺嘌呤(mA)是最普遍和可逆转的哺乳动物信使 RNA 和非编码 RNA 的内部修饰,由特定的 mA 写入器、读取器和橡皮擦蛋白介导。作为 mA 写入器,甲基转移酶样 3-甲基转移酶样 14(METTL14)-Wilms 肿瘤 1 相关蛋白复合物动态调节 mA 修饰,在多种生物过程中发挥重要作用。然而,我们对这种 RNA 甲基转移酶复合物的完整功能、每个组件对甲基化的贡献以及它们对不同生物途径的影响的了解仍然有限。通过使用体内和体外模型,我们在这里报告 METTL14 通过促进内细胞团从原始状态向初始状态的转化,对于植入后胚胎发育是必不可少的。Mettl14 的耗竭导致胚胎从胚胎第 6.5 天开始明显生长迟缓,主要是由于分化受阻,这进一步导致妊娠早期胚胎致死。我们的数据强调了 METTL14 作为 mA 修饰调节剂在协调早期小鼠胚胎发生中的关键功能。

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