Chemistry Department, Western Washington University, 516 High St., Bellingham, WA 98225-9150, USA.
N. N. Vorozhtsov Novosibirsk Institute of Organic Chemistry SB RAS, 9 Lavrentieva Ave., Novosibirsk 630090, Russia.
Nucleic Acids Res. 2018 Nov 16;46(20):10827-10839. doi: 10.1093/nar/gky893.
DNA damage can affect various regulatory elements of the genome, with the consequences for DNA structure, dynamics, and interaction with proteins remaining largely unexplored. We used solution NMR spectroscopy, restrained and free molecular dynamics to obtain the structures and investigate dominant motions for a set of DNA duplexes containing CpG sites permuted with combinations of 5-methylcytosine (mC), the primary epigenetic base, and 8-oxoguanine (oxoG), an abundant DNA lesion. Guanine oxidation significantly changed the motion in both hemimethylated and fully methylated DNA, increased base pair breathing, induced BI→BII transition in the backbone 3' to the oxoG and reduced the variability of shift and tilt helical parameters. UV melting experiments corroborated the NMR and molecular dynamics results, showing significant destabilization of all methylated contexts by oxoG. Notably, some dynamic and thermodynamic effects were not additive in the fully methylated oxidized CpG, indicating that the introduced modifications interact with each other. Finally, we show that the presence of oxoG biases the recognition of methylated CpG dinucleotides by ROS1, a plant enzyme involved in epigenetic DNA demethylation, in favor of the oxidized DNA strand. Thus, the conformational and dynamic effects of spurious DNA oxidation in the regulatory CpG dinucleotide can have far-reaching biological consequences.
DNA 损伤可影响基因组的多种调控元件,但其对 DNA 结构、动力学和与蛋白质相互作用的影响在很大程度上仍未被探索。我们使用溶液 NMR 光谱学、约束和自由分子动力学,获得了一系列包含 CpG 位点的 DNA 双链体的结构,并研究了其主要运动,这些双链体的 CpG 位点是由 5-甲基胞嘧啶(mC)和 8-氧鸟嘌呤(oxoG)组合置换的,oxoG 是一种丰富的 DNA 损伤。鸟嘌呤氧化显著改变了半甲基化和完全甲基化 DNA 的运动,增加了碱基对呼吸,诱导 oxoG 3' 处的骨架发生 BI→BII 转变,并降低了螺旋参数的位移和倾斜变化性。UV 融解实验证实了 NMR 和分子动力学的结果,表明 oxoG 显著降低了所有甲基化环境的稳定性。值得注意的是,在完全甲基化的氧化 CpG 中,一些动力学和热力学效应不是加和的,表明引入的修饰相互作用。最后,我们表明,氧化 DNA 中存在 oxoG 会影响植物酶 ROS1 对甲基化 CpG 二核苷酸的识别,有利于氧化的 DNA 链。因此,在调控 CpG 二核苷酸中假 DNA 氧化的构象和动力学效应可能会产生深远的生物学后果。