FTDC1/2,表观遗传调控和胚胎发育所需的DNMT1的卵母细胞特异性辅助因子

IF 13.7 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Congyang Li, Jiashuo Li, Siyu Du, Yunfei Ma, Yueshuai Guo, Xiangzheng Zhang, Bing Wang, Shuai Zhu, Huiqing An, Ming Chen, Junjie Guo, Longsen Han, Juan Ge, Xu Qian, Tim Schedl, Xuejiang Guo, Qiang Wang
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引用次数: 0

摘要

配子体发育和胚胎发育过程中独特的表观遗传模式表明存在专门的甲基化机制。在本研究中,我们发现了DNA甲基转移酶1 (DNMT1)的两个卵母细胞特异性辅因子,它们由含铁蛋白结构域1和2 (Ftdc1和Ftdc2)的未表征基因编码。基因消融Ftdc1或Ftdc2可导致妊娠缺陷和女性不孕。FTDC1或FTDC2缺失会导致早期胚胎中DNA甲基化的逐渐缺失,包括印迹区。这种损失与DNMT1蛋白的显著减少有关,这可能是通过泛素-蛋白酶体途径引起的。在机制上,我们发现FTDC1、FTDC2和DNMT1通过直接相互作用形成复合物,从而相互稳定。令人惊讶的是,敲除Ftdc1或Ftdc2比敲除dnmt1突变体表现出更强的DNA去甲基化表型和更早的胚胎致死,这表明它们具有独特的功能。这些数据表明,FTDC1/2在胚胎发生过程中特别参与维持基因组甲基化,为哺乳动物发育的表观遗传控制提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

FTDC1/2, oocyte-specific cofactors of DNMT1 required for epigenetic regulation and embryonic development

FTDC1/2, oocyte-specific cofactors of DNMT1 required for epigenetic regulation and embryonic development

The unique epigenetic patterns during gametogenesis and embryonic development indicate the existence of specialized methylation machinery. In the present study, we describe the discovery of two oocyte-specific cofactors of DNA methyltransferase 1 (DNMT1), encoded by uncharacterized genes, ferritin domain containing 1 and 2 (Ftdc1 and Ftdc2). Genetic ablation of Ftdc1 or Ftdc2 causes midgestation defects and female infertility. FTDC1 or FTDC2 depletion induces the progressive loss of DNA methylation including imprinted regions in early embryos. This loss correlates with a marked reduction in DNMT1 protein due to increased degradation, likely via the ubiquitin-proteasome pathway. Mechanistically, we find that FTDC1, FTDC2 and DNMT1 form a complex by direct interactions, thereby stabilizing each other. Surprisingly, knockout of Ftdc1 or Ftdc2 displayed stronger DNA demethylation phenotypes and earlier embryonic lethality than the Dnmt1-null mutant, implying their unique functions. These data suggest that FTDC1/2 are crucial players specifically involved in maintaining genomic methylation during embryogenesis, offering new insights into the epigenetic control of mammalian development.

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来源期刊
Cell Death and Differentiation
Cell Death and Differentiation 生物-生化与分子生物学
CiteScore
24.70
自引率
1.60%
发文量
181
审稿时长
3 months
期刊介绍: Mission, vision and values of Cell Death & Differentiation: To devote itself to scientific excellence in the field of cell biology, molecular biology, and biochemistry of cell death and disease. To provide a unified forum for scientists and clinical researchers It is committed to the rapid publication of high quality original papers relating to these subjects, together with topical, usually solicited, reviews, meeting reports, editorial correspondence and occasional commentaries on controversial and scientifically informative issues.
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