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首页> 外文期刊>Journal of Molecular Biology >Regulation of Nucleosome Stacking and Chromatin Compaction by the Histone H4 N-Terminal Tail-H2A Acidic Patch Interaction
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Regulation of Nucleosome Stacking and Chromatin Compaction by the Histone H4 N-Terminal Tail-H2A Acidic Patch Interaction

机译:由组蛋白H4 n末端尾-H2a酸性贴剂相互作用调节核心堆叠和染色质压实

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摘要

Chromatin folding and dynamics are critically dependent on nucleosome nucleosome interactions with important contributions from internucleosome binding of the histone H4 N-terminal tail K16-R23 domain to the surface of the H2A/H2B dimer. The H4 Lys16 plays a pivotal role in this regard. Using in vitro reconstituted 12-mer nucleosome arrays, we have investigated the mechanism of the H4 N-terminal tail in maintaining nucleosome nucleosome stacking and mediating intra- and inter-array chromatin compaction, with emphasis on the role of K16 and the positive charge region, R17-R23. Analytical ultracentrifugation sedimentation velocity experiments and precipitation assays were employed to analyze effects on chromatin folding and self-association, respectively. Effects on chromatin folding caused by various mutations and modifications at position K16 in the H4 histone were studied. Additionally, using charge-quenching mutations, we characterized the importance of the interaction of the residues within the H4 positive charge region R17-R23 with the H2A acidic patch of the adjacent nucleosome. Furthermore, crosslinking experiments were conducted to establish the proximity of the basic tail region to the acidic patch. Our data indicate that the positive charge and length of the side chain of H4 K16 are important for its access to the adjacent nucleosome in the process of nucleosome nucleosome stacking and array folding. The location and orientation of the H4 R17-R23 domain on the H2A/H2B dimer surface of the neighboring nucleosome core particle (NCP) in the compacted chromatin fiber were established. The dominance of electrostatic interactions in maintaining intra-array interaction was demonstrated. (C) 2017 Elsevier Ltd. All rights reserved.
机译:染色质折叠和动力学依赖于与组蛋白H4 n末端尾爪K16-R23结构域的细核致结合到H2A / H2B二聚体的表面的重要贡献的核细胞核核心的相互作用。 H4 Lys16在这方面发挥了枢轴作用。使用体外重构的12-MEL核小阵列,我们研究了H4 N-末端尾部在维持核小体堆叠和介导和阵列内染色质压实中的机制,重点是K16和正电荷区域的作用,R17-R23。分析超速离心沉淀速度实验和沉淀测定分别分析染色质折叠和自我关联的影响。研究了对H4组蛋白的各种突变和在位置K16处的各种突变和修饰引起的染色质折叠的影响。另外,使用电荷淬火突变,我们表征了H4正电荷区R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R17-R23与相邻核小体的H2A酸性蛋白的相互作用的重要性。此外,进行交联实验以确定基本尾部到酸性贴剂的邻近。我们的数据表明,H4 K16的侧链的正电荷和长度对于在核小体核心堆叠和阵列折叠过程中对邻近核小体的访问是重要的。建立了在压实染色质纤维中相邻核心核心颗粒(NCP)的H2A / H2B二聚体表面上的H4R17-R23结构域的位置和取向。证明了保持阵列内相互作用的静电相互作用的优势。 (c)2017 Elsevier Ltd.保留所有权利。

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  • 来源
    《Journal of Molecular Biology》 |2017年第13期|共18页
  • 作者单位

    Nanyang Technol Univ Sch Biol Sci Coll Sci 60 Nanyang Dr Singapore 637551 Singapore;

    Nanyang Technol Univ Sch Biol Sci Coll Sci 60 Nanyang Dr Singapore 637551 Singapore;

    Nanyang Technol Univ Sch Biol Sci Coll Sci 60 Nanyang Dr Singapore 637551 Singapore;

    Nanyang Technol Univ Sch Biol Sci Coll Sci 60 Nanyang Dr Singapore 637551 Singapore;

    Nanyang Technol Univ Sch Biol Sci Coll Sci 60 Nanyang Dr Singapore 637551 Singapore;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
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