生物
溴尿嘧啶
乙酰化
组蛋白密码
发起人
组蛋白
核小体
SAP30型
组蛋白H4
组蛋白H2A
基因
组蛋白甲基转移酶
组蛋白H1
遗传学
组蛋白甲基化
组蛋白H3
细胞生物学
计算生物学
基因表达
DNA甲基化
作者
Afsaneh Goudarzi,Di Zhang,He Huang,Sophie Barral,Oh Joon Kwon,Shankang Qi,Zhanyun Tang,Thierry Buchou,Anne-Laure Vitte,Tieming He,Zhongyi Cheng,Emilie Montellier,Jonathan Gaucher,Sandrine Curtet,Alexandra Debernardi,Guillaume Charbonnier,Denis Puthier,Carlo Petosa,Daniel Panne,Sophie Rousseaux,Robert G. Roeder,Yingming Zhao,Saadi Khochbin
出处
期刊:Molecular Cell
[Elsevier]
日期:2016-04-21
卷期号:62 (2): 169-180
被引量:173
标识
DOI:10.1016/j.molcel.2016.03.014
摘要
Recently discovered histone lysine acylation marks increase the functional diversity of nucleosomes well beyond acetylation. Here, we focus on histone butyrylation in the context of sperm cell differentiation. Specifically, we investigate the butyrylation of histone H4 lysine 5 and 8 at gene promoters where acetylation guides the binding of Brdt, a bromodomain-containing protein, thereby mediating stage-specific gene expression programs and post-meiotic chromatin reorganization. Genome-wide mapping data show that highly active Brdt-bound gene promoters systematically harbor competing histone acetylation and butyrylation marks at H4 K5 and H4 K8. Despite acting as a direct stimulator of transcription, histone butyrylation competes with acetylation, especially at H4 K5, to prevent Brdt binding. Additionally, H4 K5K8 butyrylation also marks retarded histone removal during late spermatogenesis. Hence, alternating H4 acetylation and butyrylation, while sustaining direct gene activation and dynamic bromodomain binding, could impact the final male epigenome features.
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