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A charge-based interaction between histone H4 and Dot1 is required for H3K79 methylation and telomere silencing: identification of a new trans-histone pathway.组蛋白H4与Dot1之间基于电荷的相互作用是H3K79甲基化和端粒沉默所必需的:一种新的组蛋白间途径的鉴定。
Genes Dev. 2007 Aug 15;21(16):2018-29. doi: 10.1101/gad.1560607. Epub 2007 Aug 3.
2
Dot1 and histone H3K79 methylation in natural telomeric and HM silencing.端粒和 HM 沉默中的 Dot1 和组蛋白 H3K79 甲基化。
Mol Cell. 2011 Apr 8;42(1):118-26. doi: 10.1016/j.molcel.2011.03.006.
3
Disruptor of telomeric silencing-1 is a chromatin-specific histone H3 methyltransferase.端粒沉默破坏因子-1是一种染色质特异性组蛋白H3甲基转移酶。
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4
Multiple histone modifications in euchromatin promote heterochromatin formation by redundant mechanisms in Saccharomyces cerevisiae.在酿酒酵母中,常染色质中的多种组蛋白修饰通过冗余机制促进异染色质形成。
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Lysine methylation within the globular domain of histone H3 by Dot1 is important for telomeric silencing and Sir protein association.Dot1介导的组蛋白H3球状结构域内的赖氨酸甲基化对于端粒沉默和Sir蛋白结合很重要。
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6
Synthetic lethal screens identify gene silencing processes in yeast and implicate the acetylated amino terminus of Sir3 in recognition of the nucleosome core.合成致死筛选确定了酵母中的基因沉默过程,并表明Sir3的乙酰化氨基末端参与核小体核心的识别。
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7
Histone H3 lysine 36 methylation antagonizes silencing in Saccharomyces cerevisiae independently of the Rpd3S histone deacetylase complex.组蛋白H3赖氨酸36甲基化在酿酒酵母中独立于Rpd3S组蛋白去乙酰化酶复合体拮抗基因沉默。
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8
Interplay of chromatin modifiers on a short basic patch of histone H4 tail defines the boundary of telomeric heterochromatin.染色质修饰因子在组蛋白H4尾巴的一个短碱性区域上的相互作用定义了端粒异染色质的边界。
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10
Nonprocessive methylation by Dot1 leads to functional redundancy of histone H3K79 methylation states.Dot1介导的非连续性甲基化导致组蛋白H3K79甲基化状态的功能冗余。
Nat Struct Mol Biol. 2008 Jun;15(6):550-7. doi: 10.1038/nsmb.1432. Epub 2008 May 30.

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Ready, SET, Go: Post-translational regulation of the histone lysine methylation network in budding yeast.准备,开始,出发:芽殖酵母组蛋白赖氨酸甲基化网络的翻译后调控。
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Regulation of the Dot1 histone H3K79 methyltransferase by histone H4K16 acetylation.Dot1 组蛋白 H3K79 甲基转移酶的调控由组蛋白 H4K16 乙酰化介导。
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本文引用的文献

1
Chromatin modifications and their function.染色质修饰及其功能。
Cell. 2007 Feb 23;128(4):693-705. doi: 10.1016/j.cell.2007.02.005.
2
Methylation of lysine 4 on histone H3: intricacy of writing and reading a single epigenetic mark.组蛋白H3赖氨酸4位点的甲基化:单一表观遗传标记书写与读取的复杂性
Mol Cell. 2007 Jan 12;25(1):15-30. doi: 10.1016/j.molcel.2006.12.014.
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Organismal differences in post-translational modifications in histones H3 and H4.组蛋白H3和H4翻译后修饰中的生物体差异。
J Biol Chem. 2007 Mar 9;282(10):7641-55. doi: 10.1074/jbc.M607900200. Epub 2006 Dec 28.
4
The tale beyond the tail: histone core domain modifications and the regulation of chromatin structure.尾巴之外的故事:组蛋白核心结构域修饰与染色质结构调控
Nucleic Acids Res. 2006 May 19;34(9):2653-62. doi: 10.1093/nar/gkl338. Print 2006.
5
Two distinct mechanisms of chromatin interaction by the Isw2 chromatin remodeling complex in vivo.Isw2染色质重塑复合物在体内进行染色质相互作用的两种不同机制。
Mol Cell Biol. 2005 Nov;25(21):9165-74. doi: 10.1128/MCB.25.21.9165-9174.2005.
6
Histone H2B ubiquitylation controls processive methylation but not monomethylation by Dot1 and Set1.组蛋白H2B泛素化控制Dot1和Set1的持续性甲基化而非单甲基化。
Mol Cell. 2005 Jul 22;19(2):271-7. doi: 10.1016/j.molcel.2005.06.010.
7
Global loss of Set1-mediated H3 Lys4 trimethylation is associated with silencing defects in Saccharomyces cerevisiae.Set1介导的组蛋白H3赖氨酸4三甲基化的整体缺失与酿酒酵母中的沉默缺陷有关。
J Biol Chem. 2005 Aug 5;280(31):28761-5. doi: 10.1074/jbc.C500097200. Epub 2005 Jun 16.
8
Structural and sequence motifs of protein (histone) methylation enzymes.蛋白质(组蛋白)甲基化酶的结构和序列基序。
Annu Rev Biophys Biomol Struct. 2005;34:267-94. doi: 10.1146/annurev.biophys.34.040204.144452.
9
Role of protein methylation in regulation of transcription.蛋白质甲基化在转录调控中的作用。
Endocr Rev. 2005 Apr;26(2):147-70. doi: 10.1210/er.2004-0008. Epub 2004 Oct 12.
10
Structure of the conserved core of the yeast Dot1p, a nucleosomal histone H3 lysine 79 methyltransferase.酵母Dot1p(一种核小体组蛋白H3赖氨酸79甲基转移酶)保守核心结构
J Biol Chem. 2004 Oct 8;279(41):43296-306. doi: 10.1074/jbc.M405902200. Epub 2004 Jul 29.

组蛋白H4与Dot1之间基于电荷的相互作用是H3K79甲基化和端粒沉默所必需的:一种新的组蛋白间途径的鉴定。

A charge-based interaction between histone H4 and Dot1 is required for H3K79 methylation and telomere silencing: identification of a new trans-histone pathway.

作者信息

Fingerman Ian M, Li Hui-Chun, Briggs Scott D

机构信息

Department of Biochemistry and Purdue Cancer Center, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

Genes Dev. 2007 Aug 15;21(16):2018-29. doi: 10.1101/gad.1560607. Epub 2007 Aug 3.

DOI:10.1101/gad.1560607
PMID:17675446
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1948857/
Abstract

Saccharomyces cerevisiae cells lacking Dot1 exhibit a complete loss of H3K79 methylation and defects in heterochromatin-mediated silencing. To further understand the mechanism of Dot1-mediated methylation, the substrate requirement of Dot1 was determined. This analysis found that Dot1 requires histone H4 for in vitro methyltransferase activity and the histone H4 tail for Dot1-mediated methylation in yeast. Mutational analyses demonstrated that the basic patch residues (R(17)H(18)R(19)) of the histone H4 N-terminal tail are required for Dot1 methyltransferase activity in vitro as well as Dot1-mediated histone H3K79 methylation in vivo. In vitro binding assays show that Dot1 can interact with the H4 N-terminal tail via the basic patch residues. Furthermore, an acidic patch at the C terminus of Dot1 is required for histone H4 tail binding in vitro, histone H3K79 di- and trimethylation in vivo, and proper telomere silencing. Our data suggest a novel trans-histone regulatory pathway whereby charged residues of one histone are required for the modification of another histone. These findings not only provide key insights into the mechanism of Dot1 histone methylation but also illustrate how chromatin-modifying enzymes engage their nucleosomal substrates in vivo.

摘要

缺乏Dot1的酿酒酵母细胞表现出H3K79甲基化完全丧失以及异染色质介导的基因沉默缺陷。为了进一步了解Dot1介导的甲基化机制,确定了Dot1的底物需求。该分析发现,Dot1在体外甲基转移酶活性方面需要组蛋白H4,在酵母中Dot1介导的甲基化需要组蛋白H4尾巴。突变分析表明,组蛋白H4 N端尾巴的碱性补丁残基(R(17)H(18)R(19))对于体外Dot1甲基转移酶活性以及体内Dot1介导的组蛋白H3K79甲基化是必需的。体外结合试验表明,Dot1可以通过碱性补丁残基与H4 N端尾巴相互作用。此外,Dot1 C端的一个酸性补丁对于体外组蛋白H4尾巴结合、体内组蛋白H3K79二甲基化和三甲基化以及适当的端粒沉默是必需的。我们的数据表明了一种新的组蛋白间调节途径,即一种组蛋白的带电残基对于另一种组蛋白的修饰是必需的。这些发现不仅为Dot1组蛋白甲基化机制提供了关键见解,还说明了染色质修饰酶在体内如何与它们的核小体底物结合。