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染色质重塑过程中部分解聚核小体的组蛋白尾巴动力学

Histone Tail Dynamics in Partially Disassembled Nucleosomes During Chromatin Remodeling.

作者信息

Kameda Takeru, Awazu Akinori, Togashi Yuichi

机构信息

Department of Mathematical and Life Sciences, Graduate School of Science, Hiroshima University, Higashi-Hiroshima, Japan.

Graduate School of Integrated Sciences for Life, Hiroshima University, Higashi-Hiroshima, Japan.

出版信息

Front Mol Biosci. 2019 Nov 28;6:133. doi: 10.3389/fmolb.2019.00133. eCollection 2019.

Abstract

Nucleosomes are structural units of the chromosome consisting of DNA wrapped around histone proteins, and play important roles in compaction and regulation of the chromatin structure. While the structure and dynamics of canonical nucleosomes have been studied extensively, those of nucleosomes in intermediate states, that occur when their structure or positioning is modulated, have been less understood. In particular, the dynamic features of partially disassembled nucleosomes have not been discussed in previous studies. Using all-atom molecular dynamics simulations, in this study, we investigated the dynamics and stability of nucleosome structures lacking a histone-dimer. DNA in nucleosomes lacking a histone H2A/H2B dimer was drastically deformed due to loss of local interactions between DNA and histones. In contrast, conformation of DNA in nucleosomes lacking H3/H4 was similar to the canonical nucleosome, as the H2A C-terminal domain infiltrated the space originally occupied by the dissociated H3/H4 histones and restricted DNA dynamics in close proximity. Our results suggest that, besides histone chaperones, the intrinsic dynamics of nucleosomes support the exchange of H2A/H2B, which is significantly more frequent than that of H3/H4.

摘要

核小体是染色体的结构单位,由缠绕在组蛋白上的DNA组成,在染色质结构的压缩和调控中发挥重要作用。虽然经典核小体的结构和动力学已得到广泛研究,但对于结构或定位受到调控时出现的中间状态核小体的结构和动力学,人们了解较少。特别是,部分解聚核小体的动态特征在以往研究中尚未被探讨。在本研究中,我们使用全原子分子动力学模拟,研究了缺乏组蛋白二聚体的核小体结构的动力学和稳定性。缺乏组蛋白H2A/H2B二聚体的核小体中的DNA由于DNA与组蛋白之间局部相互作用的丧失而发生剧烈变形。相比之下,缺乏H3/H4的核小体中DNA的构象与经典核小体相似,因为H2A的C末端结构域渗入了原本由解离的H3/H4组蛋白占据的空间,并限制了附近DNA的动力学。我们的结果表明,除了组蛋白伴侣外,核小体的内在动力学支持H2A/H2B的交换,其频率明显高于H3/H4。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7045/6896900/123897673bd3/fmolb-06-00133-g0001.jpg

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