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PRC2 解码活性组蛋白甲基化标记 H3K36me2/3 的结构基础。

Structural basis for PRC2 decoding of active histone methylation marks H3K36me2/3.

机构信息

Max Planck Institute of Biochemistry, Laboratory of Chromatin Biology, Martinsried, Germany.

California Institute for Quantitative Biology (QB3), University of California, California Institute for Quantitative Biology (QB3), Molecular Biophysics and Integrative Bio-Imaging Division, Lawrence Berkeley National Laboratory, Berkeley, United States.

出版信息

Elife. 2020 Nov 19;9:e61964. doi: 10.7554/eLife.61964.

Abstract

Repression of genes by Polycomb requires that PRC2 modifies their chromatin by trimethylating lysine 27 on histone H3 (H3K27me3). At transcriptionally active genes, di- and tri-methylated H3K36 inhibit PRC2. Here, the cryo-EM structure of PRC2 on dinucleosomes reveals how binding of its catalytic subunit EZH2 to nucleosomal DNA orients the H3 N-terminus via an extended network of interactions to place H3K27 into the active site. Unmodified H3K36 occupies a critical position in the EZH2-DNA interface. Mutation of H3K36 to arginine or alanine inhibits H3K27 methylation by PRC2 on nucleosomes . Accordingly, H3K36A and H3K36R mutants show reduced levels of H3K27me3 and defective Polycomb repression of HOX genes. The relay of interactions between EZH2, the nucleosomal DNA and the H3 N-terminus therefore creates the geometry that permits allosteric inhibition of PRC2 by methylated H3K36 in transcriptionally active chromatin.

摘要

多梳抑制基因表达需要 PRC2 通过将组蛋白 H3 赖氨酸 27 三甲基化(H3K27me3)来修饰其染色质。在转录活跃的基因上,二甲基化和三甲基化的 H3K36 抑制 PRC2。在此,通过冷冻电镜结构研究发现,PRC2 二联体核小体上的复合物结构,其催化亚基 EZH2 通过扩展的相互作用网络结合核小体 DNA,从而将 H3 N 端定向到活性位点,将 H3K27 置于活性位点中。未修饰的 H3K36 占据 EZH2-DNA 界面的关键位置。H3K36 突变为精氨酸或丙氨酸会抑制 PRC2 在核小体上对 H3K27 的甲基化。因此,H3K36A 和 H3K36R 突变体显示出 H3K27me3 水平降低和 HOX 基因的多梳抑制缺陷。因此,EZH2、核小体 DNA 和 H3 N 端之间的相互作用传递创造了允许组蛋白 H3K36 在转录活跃染色质中通过变构抑制 PRC2 的几何形状。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34e1/7725500/5ab3409e9b37/elife-61964-fig1.jpg

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