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本文引用的文献

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Assessment of Quantification Precision of Histone Post-Translational Modifications by Using an Ion Trap and down To 50 000 Cells as Starting Material.使用离子阱和低至 50000 个细胞起始材料评估组蛋白翻译后修饰的定量精度。
J Proteome Res. 2018 Jan 5;17(1):234-242. doi: 10.1021/acs.jproteome.7b00544. Epub 2017 Nov 21.
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Characterization of histone acylations links chromatin modifications with metabolism.组蛋白酰化修饰的表征将染色质修饰与代谢联系起来。
Nat Commun. 2017 Oct 26;8(1):1141. doi: 10.1038/s41467-017-01384-9.
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Proteome-wide acetylation dynamics in human cells.人类细胞中蛋白质组范围的乙酰化动力学。
Sci Rep. 2017 Aug 31;7(1):10296. doi: 10.1038/s41598-017-09918-3.
4
Metabolic labeling in middle-down proteomics allows for investigation of the dynamics of the histone code.中向蛋白质组学中的代谢标记可用于研究组蛋白密码的动态变化。
Epigenetics Chromatin. 2017 Jul 6;10(1):34. doi: 10.1186/s13072-017-0139-z.
5
Characterization of Complete Histone Tail Proteoforms Using Differential Ion Mobility Spectrometry.使用差分离子淌度质谱法对完整组蛋白尾部蛋白进行表征。
Anal Chem. 2017 May 16;89(10):5461-5466. doi: 10.1021/acs.analchem.7b00379. Epub 2017 Apr 26.
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Interplay between epigenetics and metabolism in oncogenesis: mechanisms and therapeutic approaches.肿瘤发生过程中表观遗传学与代谢之间的相互作用:机制与治疗方法
Oncogene. 2017 Jun 15;36(24):3359-3374. doi: 10.1038/onc.2016.485. Epub 2017 Jan 16.
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High-Resolution Mapping of RNA-Binding Regions in the Nuclear Proteome of Embryonic Stem Cells.胚胎干细胞核蛋白质组中RNA结合区域的高分辨率图谱
Mol Cell. 2016 Oct 20;64(2):416-430. doi: 10.1016/j.molcel.2016.09.034.
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Label-Free Relative Quantitation of Isobaric and Isomeric Human Histone H2A and H2B Variants by Fourier Transform Ion Cyclotron Resonance Top-Down MS/MS.通过傅里叶变换离子回旋共振自上而下的串联质谱对同量异位和同分异构的人类组蛋白H2A和H2B变体进行无标记相对定量分析。
J Proteome Res. 2016 Sep 2;15(9):3196-203. doi: 10.1021/acs.jproteome.6b00414. Epub 2016 Aug 3.
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A Novel Quantitative Mass Spectrometry Platform for Determining Protein O-GlcNAcylation Dynamics.一种用于测定蛋白质O-连接N-乙酰葡糖胺糖基化动力学的新型定量质谱平台。
Mol Cell Proteomics. 2016 Jul;15(7):2462-75. doi: 10.1074/mcp.O115.049627. Epub 2016 Apr 25.
10
Metabolic Regulation of Gene Expression by Histone Lysine β-Hydroxybutyrylation.组蛋白赖氨酸β-羟基丁酰化对基因表达的代谢调控
Mol Cell. 2016 Apr 21;62(2):194-206. doi: 10.1016/j.molcel.2016.03.036.

整合蛋白质组学和靶向代谢组学以了解组蛋白修饰的全局变化。

Integrating Proteomics and Targeted Metabolomics to Understand Global Changes in Histone Modifications.

机构信息

Epigenetics Institute, Department of Biochemistry and Biophysics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, USA.

出版信息

Proteomics. 2018 Sep;18(18):e1700309. doi: 10.1002/pmic.201700309. Epub 2018 Apr 20.

DOI:10.1002/pmic.201700309
PMID:29512899
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6261489/
Abstract

The chromatin fiber is the control panel of eukaryotic cells. Chromatin is mostly composed of DNA, which contains the genetic instruction for cell phenotype, and histone proteins, which provide the scaffold for chromatin folding and part of the epigenetic inheritance. Histone writers/erasers "flag" chromatin regions by catalyzing/removing covalent histone post-translational modifications (PTMs). Histone PTMs chemically contribute to chromatin relaxation or compaction and recruit histone readers to modulate DNA readout. The precursors of protein PTMs are mostly small metabolites. For instance, acetyl-CoA is used for acetylation, ATP for phosphorylation, and S-adenosylmethionine for methylation. Interestingly, PTMs such as acetylation can occur at neutral pH also without their respective enzyme when the precursor is sufficiently concentrated. Therefore, it is essential to differentially quantify the contribution of histone writers/erasers versus the effect of local concentration of metabolites to understand the primary regulation of histone PTM abundance. Aberrant phenotypes such as cancer cells have misregulated metabolism and thus the composition and the modulation of chromatin is not only driven by enzymatic tuning. In this review, the latest advances in mass spectrometry (MS) to analyze histone PTMs and the most adopted quantification methods for related metabolites, both necessary to understand PTM relative changes, are discussed.

摘要

染色质纤维是真核细胞的控制面板。染色质主要由 DNA 组成,其中包含细胞表型的遗传指令,以及组蛋白蛋白,它们为染色质折叠提供支架,并构成部分表观遗传遗传。组蛋白书写器/擦除器通过催化/去除组蛋白翻译后修饰 (PTM) 来“标记”染色质区域。组蛋白 PTM 通过化学方式有助于染色质松弛或浓缩,并募集组蛋白读取器以调节 DNA 读出。蛋白质 PTM 的前体主要是小代谢物。例如,乙酰辅酶 A 用于乙酰化,ATP 用于磷酸化,S-腺苷甲硫氨酸用于甲基化。有趣的是,当前体足够集中时,即使没有相应的酶,某些 PTM(如乙酰化)也可以在中性 pH 下发生。因此,区分组蛋白书写器/擦除器的贡献与局部代谢物浓度的影响对于理解组蛋白 PTM 丰度的主要调节至关重要。异常表型,如癌细胞,具有失调的代谢,因此染色质的组成和调节不仅受酶的调节。在这篇综述中,讨论了用于分析组蛋白 PTM 的质谱 (MS) 的最新进展,以及用于相关代谢物的最常用定量方法,这两者都是理解 PTM 相对变化所必需的。