Richet Nicolas, Liu Danni, Legrand Pierre, Velours Christophe, Corpet Armelle, Gaubert Albane, Bakail May, Moal-Raisin Gwenaelle, Guerois Raphael, Compper Christel, Besle Arthur, Guichard Berengère, Almouzni Genevieve, Ochsenbein Françoise
CEA, iBiTec-S, SB2SM, Laboratoire de Biologie Structurale et Radiobiologie, France Institute for Integrative Biology of the Cell (I2BC), CEA, CNRS, Université Paris-Sud, Batiment 144, Gif-sur-Yvette, F-91191, France.
Synchrotron SOLEIL, F-91190, Gif-sur-Yvette, France.
Nucleic Acids Res. 2015 Feb 18;43(3):1905-17. doi: 10.1093/nar/gkv021. Epub 2015 Jan 23.
MCM2 is a subunit of the replicative helicase machinery shown to interact with histones H3 and H4 during the replication process through its N-terminal domain. During replication, this interaction has been proposed to assist disassembly and assembly of nucleosomes on DNA. However, how this interaction participates in crosstalk with histone chaperones at the replication fork remains to be elucidated. Here, we solved the crystal structure of the ternary complex between the histone-binding domain of Mcm2 and the histones H3-H4 at 2.9 Å resolution. Histones H3 and H4 assemble as a tetramer in the crystal structure, but MCM2 interacts only with a single molecule of H3-H4. The latter interaction exploits binding surfaces that contact either DNA or H2B when H3-H4 dimers are incorporated in the nucleosome core particle. Upon binding of the ternary complex with the histone chaperone ASF1, the histone tetramer dissociates and both MCM2 and ASF1 interact simultaneously with the histones forming a 1:1:1:1 heteromeric complex. Thermodynamic analysis of the quaternary complex together with structural modeling support that ASF1 and MCM2 could form a chaperoning module for histones H3 and H4 protecting them from promiscuous interactions. This suggests an additional function for MCM2 outside its helicase function as a proper histone chaperone connected to the replication pathway.
MCM2是复制解旋酶机制的一个亚基,已证明在复制过程中它通过其N端结构域与组蛋白H3和H4相互作用。在复制过程中,有人提出这种相互作用有助于DNA上核小体的拆卸和组装。然而,这种相互作用如何参与在复制叉处与组蛋白伴侣的串扰仍有待阐明。在这里,我们以2.9 Å的分辨率解析了Mcm2的组蛋白结合结构域与组蛋白H3-H4之间三元复合物的晶体结构。在晶体结构中,组蛋白H3和H4组装成四聚体,但MCM2仅与单个H3-H4分子相互作用。当H3-H4二聚体掺入核小体核心颗粒时,后者的相互作用利用了与DNA或H2B接触的结合表面。三元复合物与组蛋白伴侣ASF1结合后,组蛋白四聚体解离,MCM2和ASF1同时与组蛋白相互作用,形成1:1:1:1异源复合物。对四级复合物的热力学分析以及结构建模支持ASF1和MCM2可以形成一个用于组蛋白H3和H4的伴侣模块,保护它们免受杂乱的相互作用。这表明MCM2在其解旋酶功能之外还有一个额外的功能,即作为连接到复制途径的合适的组蛋白伴侣。