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Chromatin-dependent allosteric regulation of DNMT3A activity by MeCP2

机译:MECP2染色质依赖于DNMT3A活性的体变性调节

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摘要

Despite their central importance in mammalian development, the mechanisms that regulate the DNA methylation machinery and thereby the generation of genomic methylation patterns are still poorly understood. Here, we identify the 5mC-binding protein MeCP2 as a direct and strong interactor of DNA methyltransferase 3( DNMT3) proteins. We mapped the interaction interface to the transcriptional repression domain of MeCP2 and the ADD domain of DNMT3A and find that binding of MeCP2 strongly inhibits the activity of DNMT3A in vitro. This effect was reinforced by cellular studies where a global reduction of DNA methylation levels was observed after overexpression of MeCP2 in human cells. By engineering conformationally locked DNMT3A variants as novel tools to study the allosteric regulation of this enzyme, we show that MeCP2 stabilizes the closed, autoinhibitory conformation of DNMT3A. Interestingly, the interaction with MeCP2 and its resulting inhibition were relieved by the binding of K4 unmodified histone H3 N-terminal tail to the DNMT3A-ADD domain. Taken together, our data indicate that the localization and activity of DNMT3A are under the combined control of MeCP2 and H3 tailmodifications where, depending on the modification status of the H3 tail at the binding sites, MeCP2 can act as either a repressor or activator of DNA methylation.
机译:尽管对哺乳动物的发展核心重要性,但调节DNA甲基化机制的机制,从而仍然清楚地理解了基因组甲基化模式的产生。这里,我们将5MC结合蛋白MeCP2鉴定为DNA甲基转移酶3(DNMT3)蛋白的直接和强互接口。我们将交互界面映射到MECP2的转录镇压域和DNMT3A的添加域,并发现MECP2的结合强烈抑制体外DNMT3A的活性。通过细胞研究增强这种效果,其中在人细胞中的MECP2过表达后观察到DNA甲基化水平的全局降低。通过工程构象锁定的DNMT3A变体作为研究该酶的变构调节的新型工具,我们表明MECP2稳定了DNMT3A的闭合,自动抑制构象。有趣的是,通过将K4未改性的组蛋白H3 n末端尾部与DNMT3A-Add结构域的结合来缓解与MECP2的相互作用及其所得抑制。我们的数据表明DNMT3A的定位和活性在MECP2和H3尾部的组合控制下,根据结合位点的H3尾部的修饰状态,MECP2可以用作DNA的阻遏物或活化剂甲基化。

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  • 来源
    《Nucleic Acids Research》 |2018年第17期|共13页
  • 作者单位

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Ludwig Maximilians Univ Munchen Dept Chem Ctr Integrated Prot Sci CiPSM Butenandtstr 5-13 D-81377 Munich Germany;

    Ludwig Maximilians Univ Munchen Dept Chem Ctr Integrated Prot Sci CiPSM Butenandtstr 5-13 D-81377 Munich Germany;

    Harvard Univ Dept Stem Cell &

    Regenerat Biol Cambridge MA 02138 USA;

    Harvard Univ Dept Stem Cell &

    Regenerat Biol Cambridge MA 02138 USA;

    Ludwig Maximilians Univ Munchen Dept Chem Ctr Integrated Prot Sci CiPSM Butenandtstr 5-13 D-81377 Munich Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

    Univ Stuttgart Fac Chem Inst Biochem &

    Tech Biochem Dept Biochem Allmandring 31 D-70569 Stuttgart Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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