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Stella safeguards the oocyte methylome by preventing de novo methylation mediated by DNMT1

  • Yingfeng Li
  • , Zhuqiang Zhang
  • , Jiayu Chen
  • , Wenqiang Liu
  • , Weiyi Lai
  • , Baodong Liu
  • , Xiang Li
  • , Liping Liu
  • , Shaohua Xu
  • , Qiang Dong
  • , Mingzhu Wang
  • , Xiaoya Duan
  • , Jiajun Tan
  • , Yong Zheng
  • , Pumin Zhang
  • , Guoping Fan
  • , Jiemin Wong
  • , Guo Liang Xu
  • , Zhigao Wang
  • , Hailin Wang
  • Shaorong Gao, Bing Zhu*
*此作品的通讯作者
  • Beijing Normal University
  • Chinese Academy of Sciences
  • National Institute of Biological Sciences, Beijing
  • Tongji University
  • CAS - Research Center for Eco-Environmental Sciences
  • University of Texas Southwestern Medical Center
  • East China Normal University
  • University of Chinese Academy of Sciences
  • Baylor College of Medicine
  • University of California at Los Angeles
  • CAS - Center for Excellence in Molecular Cell Science

科研成果: 期刊稿件文章同行评审

摘要

Postnatal growth of mammalian oocytes is accompanied by a progressive gain of DNA methylation, which is predominantly mediated by DNMT3A, a de novo DNA methyltransferase1,2. Unlike the genome of sperm and most somatic cells, the oocyte genome is hypomethylated in transcriptionally inert regions2–4. However, how such a unique feature of the oocyte methylome is determined and its contribution to the developmental competence of the early embryo remains largely unknown. Here we demonstrate the importance of Stella, a factor essential for female fertility5–7, in shaping the oocyte methylome in mice. Oocytes that lack Stella acquire excessive DNA methylation at the genome-wide level, including in the promoters of inactive genes. Such aberrant hypermethylation is partially inherited by two-cell-stage embryos and impairs zygotic genome activation. Mechanistically, the loss of Stella leads to ectopic nuclear accumulation of the DNA methylation regulator UHRF18,9, which results in the mislocalization of maintenance DNA methyltransferase DNMT1 in the nucleus. Genetic analysis confirmed the primary role of UHRF1 and DNMT1 in generating the aberrant DNA methylome in Stella-deficient oocytes. Stella therefore safeguards the unique oocyte epigenome by preventing aberrant de novo DNA methylation mediated by DNMT1 and UHRF1.

源语言英语
页(从-至)136-140
页数5
期刊Nature
564
7734
DOI
出版状态已出版 - 6 12月 2018

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