Phosphorylation within Intrinsic Disordered Region Discriminates Histone Variant macroH2A1 Splicing Isoforms-macroH2A1.1 and macroH2A1.2

被引:10
|
作者
Giallongo, Sebastiano [1 ,2 ]
Lo Re, Oriana [1 ,3 ]
Lochmanova, Gabriela [4 ,5 ]
Parca, Luca [6 ]
Petrizzelli, Francesco [6 ,7 ]
Zdrahal, Zbynek [4 ,5 ]
Mazza, Tommaso [6 ]
Vinciguerra, Manlio [1 ,3 ]
机构
[1] St Anne Univ Hosp, Int Clin Res Ctr, Pekarska 53, Brno 65691, Czech Republic
[2] Masaryk Univ, Fac Med, Dept Biol, Kamenice 753-5, Brno 62500, Czech Republic
[3] Med Univ Varna, Dept Translat Stem Cell Biol, Varna 9002, Bulgaria
[4] Masaryk Univ, Mendel Ctr Plant Genom & Prote, Cent European Inst Technol, Kamenice 753-5, Brno 62500, Czech Republic
[5] Masaryk Univ, Fac Sci, Natl Ctr Biomol Res, Lab Funct Genom & Prote, Kamenice 753-5, Brno 62500, Czech Republic
[6] IRCCS, Casa Sollievo Sofferenza, Bioinformat Unit, Viale Cappuccini 1, I-71013 San Giovanni Rotondo, Italy
[7] Sapienza Univ Rome, Dept Mol Med, Viale Regina Elena 291, I-00161 Rome, Italy
来源
BIOLOGY-BASEL | 2021年 / 10卷 / 07期
基金
欧盟地平线“2020”;
关键词
mass spectrometry; post-translational modifications; CHROMATIN; BINDING; ISOFORMS; LINKER; DNA;
D O I
10.3390/biology10070659
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Simple Summary MacroH2A1, a histone H2A variant, is present as two alternative splicing isoforms, macroH2A1.1 and macroH2A1.2, which are finely regulated through several mechanisms, including post-translational modifications (PTM). In this article, the authors provide the PTM pattern of macroH2A1.1 and macroH2A1.2 in the same experimental setting through mass spec analysis. They report a different phosphorylation level in their intrinsically disordered linker region, which can be responsible for their different biological role, as computational analysis shows. Background: Gene expression in eukaryotic cells can be governed by histone variants, which replace replication-coupled histones, conferring unique chromatin properties. MacroH2A1 is a histone H2A variant containing a domain highly similar to H2A and a large non-histone (macro) domain. MacroH2A1, in turn, is present in two alternatively exon-spliced isoforms: macroH2A1.1 and macroH2A1.2, which regulate cell plasticity and proliferation in a remarkably distinct manner. The N-terminal and the C-terminal tails of H2A histones stem from the nucleosome core structure and can be target sites for several post-translational modifications (PTMs). MacroH2A1.1 and macroH2A1.2 isoforms differ only in a few amino acids and their ability to bind NAD-derived metabolites, a property allegedly conferring their different functions in vivo. Some of the modifications on the macroH2A1 variant have been identified, such as phosphorylation (T129, S138) and methylation (K18, K123, K239). However, no study to our knowledge has analyzed extensively, and in parallel, the PTM pattern of macroH2A1.1 and macroH2A1.2 in the same experimental setting, which could facilitate the understanding of their distinct biological functions in health and disease. Methods: We used a mass spectrometry-based approach to identify the sites for phosphorylation, acetylation, and methylation in green fluorescent protein (GFP)-tagged macroH2A1.1 and macroH2A1.2 expressed in human hepatoma cells. The impact of selected PTMs on macroH2A1.1 and macroH2A1.2 structure and function are demonstrated using computational analyses. Results: We identified K7 as a new acetylation site in both macroH2A1 isoforms. Quantitative comparison of histone marks between the two isoforms revealed significant differences in the levels of phosphorylated T129 and S170. Our computational analysis provided evidence that the phosphorylation status in the intrinsically disordered linker region in macroH2A1 isoforms might represent a key regulatory element contributing to their distinct biological responses. Conclusions: Taken together, our results report different PTMs on the two macroH2A1 splicing isoforms as responsible for their distinct features and distribution in the cell.
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页数:13
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