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UHRF1 SRA 识别 CpG 和非 CpG DNA 中对称甲基化胞嘧啶的机制见解。

Mechanistic insights into recognition of symmetric methylated cytosines in CpG and non-CpG DNA by UHRF1 SRA.

机构信息

Macromolecular Structural Biology Lab, Department of Biotechnology, Indian Institute of Technology Hyderabad, Kandi, Sangareddy, Telangana 502285, India.

Macromolecular Structural Biology Lab, Department of Biotechnology, Indian Institute of Technology Hyderabad, Kandi, Sangareddy, Telangana 502285, India.

出版信息

Int J Biol Macromol. 2021 Feb 15;170:514-522. doi: 10.1016/j.ijbiomac.2020.12.149. Epub 2021 Jan 4.

Abstract

Non-CpG DNA methylation (non-mCpG) is enriched in the genome of brain neurons and germline cells in mammals. Accumulation of non-mCpG during postnatal brain development correlates with gene regulation and inactivation of distal regulatory elements. Recently, UHRF1 has been found to contribute to de novo non-CpG methylation, however, whether UHRF1 could recognize non-mCpG is unknown. Here, we have demonstrated through calorimetric measurements that the UHRF1 SRA can recognize mCpH and fully-mCpHpG, types of non-mCpG. Our ITC binding studies endorse the preferential reading of hemi-mCpG by UHRF1 SRA and also show 6-fold weaker binding for fully-mCpG than hemi-mCpG. Despite presence of symmetrical (5-methyl cytosine) 5mCs, stoichiometry of 1:1 for UHRF1 SRA binding to fully-mCpG indicates that UHRF1 SRA may not form a stable complex with fully-mCpG DNA. Contrarily, UHRF1 SRA recognizes fully-mCpHpG with a stoichiometry of 2:1 protein to DNA duplex with binding affinity higher than fully-mCpG. Our crystal structure of UHRF1 SRA bound to fully-mCpHpG DNA reveals dual flip-out mechanism of 5mC recognition. Metadynamics studies corroborates with ITC data that UHRF1 SRA could not form a stable complex with fully-mCpG DNA. Altogether, this study demonstrates that UHRF1 SRA recognizes non-mCpG DNA and exhibits contrasting mechanisms for hemi-mCpG and fully-mCpHpG DNA recognition.

摘要

非 CpG 甲基化(non-mCpG)在哺乳动物的大脑神经元和生殖细胞的基因组中富集。出生后大脑发育过程中 non-mCpG 的积累与基因调控和远端调控元件失活相关。最近,UHRF1 被发现有助于从头开始的非 CpG 甲基化,然而,UHRF1 是否能够识别 non-mCpG 尚不清楚。在这里,我们通过量热法测量表明,UHRF1 SRA 可以识别 mCpH 和全甲基化的 CpHpG,这是 non-mCpG 的两种类型。我们的 IT C 结合研究支持 UHRF1 SRA 对半甲基化的优先读取,并且还显示全甲基化的 CpHpG 比半甲基化的 CpH 结合弱 6 倍。尽管存在对称的(5-甲基胞嘧啶)5mCs,但 UHRF1 SRA 与全甲基化的 CpHpG 结合的计量比为 1:1 表明 UHRF1 SRA 可能不会与全甲基化的 CpHpG DNA 形成稳定的复合物。相反,UHRF1 SRA 以 2:1 的蛋白-DNA 二聚体计量比识别全甲基化的 CpHpG,其结合亲和力高于全甲基化的 CpHpG。我们的 UHRF1 SRA 与全甲基化的 CpHpG DNA 结合的晶体结构揭示了 5mC 识别的双重翻转机制。元动力学研究与 IT C 数据一致,表明 UHRF1 SRA 不能与全甲基化的 CpHpG DNA 形成稳定的复合物。总之,这项研究表明 UHRF1 SRA 识别非 CpG DNA,并表现出对半甲基化的 CpH 和全甲基化的 CpHpG DNA 识别的不同机制。

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