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通过中低通量蛋白质组学监测细胞重编程过程中组蛋白H4亚型的波动。

Fluctuations in histone H4 isoforms during cellular reprogramming monitored by middle-down proteomics.

作者信息

Benevento Marco, Tonge Peter D, Puri Mira C, Nagy Andras, Heck Albert J R, Munoz Javier

机构信息

Biomolecular Mass Spectrometry and Proteomics, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Utrecht, The Netherlands.

Netherlands Proteomics Centre, Utrecht, The Netherlands.

出版信息

Proteomics. 2015 Sep;15(18):3219-31. doi: 10.1002/pmic.201500031. Epub 2015 Aug 24.

DOI:10.1002/pmic.201500031
PMID:26080932
Abstract

Cellular reprogramming remodels the gene expression program by re-setting the epigenome of somatic cells into an embryonic-like pluripotent state. Post-translational modifications of histones play an important role in this process. Previously, we found by ChIP-seq widespread changes of specific histone H3 marks in two divergent reprogramming routes leading to alternative pluripotent sates . Here, using an unbiased middle-down proteomics approach we have identified 72 unique isoforms of histone H4 and quantified 56 of them in the same set of samples. We found substantial differences between somatic and late-phase reprogramming cells. Also, ESCs and iPSCs displayed higher levels of H4 acetylation and tri-methylation concomitantly with lower levels of mono- and di-methylation when compared to cells undergoing reprogramming. Our data shows that the epigenetic remodeling induced by the reprogramming process goes beyond histone H3 and reveals the importance of H4 modifications as well. The presented data is a valuable resource to study the epigenetic mechanisms involved in the acquisition of induced pluripotency. All MS data have been deposited in the ProteomeXchange with identifier PXD002062 (http://proteomecentral.proteomexchange.org/dataset/PXD002062).

摘要

细胞重编程通过将体细胞的表观基因组重设为胚胎样多能状态来重塑基因表达程序。组蛋白的翻译后修饰在这一过程中发挥着重要作用。此前,我们通过染色质免疫沉淀测序(ChIP-seq)发现在两条导致不同多能状态的不同重编程途径中,特定组蛋白H3标记存在广泛变化。在此,我们使用一种无偏向性的中向下蛋白质组学方法,鉴定出了72种独特的组蛋白H4异构体,并在同一组样本中对其中56种进行了定量。我们发现体细胞与重编程后期细胞之间存在显著差异。此外,与正在进行重编程的细胞相比,胚胎干细胞(ESCs)和诱导多能干细胞(iPSCs)显示出更高水平的H4乙酰化和三甲基化,同时伴随着更低水平的单甲基化和二甲基化。我们的数据表明,重编程过程诱导的表观遗传重塑不仅限于组蛋白H3,还揭示了H4修饰的重要性。所呈现的数据是研究诱导多能性获得过程中涉及的表观遗传机制的宝贵资源。所有质谱数据已存入蛋白质组交换库,标识符为PXD002062(http://proteomecentral.proteomexchange.org/dataset/PXD002062)。

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