首页> 外文期刊>Journal of chemical theory and computation: JCTC >Computational Probing of Watson-Crick/Hoogsteen Breathing in a DNA Duplex Containing N1-Methylated Adenine
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Computational Probing of Watson-Crick/Hoogsteen Breathing in a DNA Duplex Containing N1-Methylated Adenine

机译:含N1-甲基化腺嘌呤的DNA双链体呼吸呼吸的计算探测

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摘要

DNA breathing is a local conformational fluctuation spontaneously occurring in double-stranded DNAs. In particular, the possibility of individual base pairs (bps) in duplex DNA to flip between alternate bp modes, i.e., Watson Crick (WC)-like and Hoogsteen (HG)-like, at relevant time scales has impacted DNA research fields for many years. In this study, to computationally probe effects of chemical modification on the DNA breathing, we present a free energy landscape of spontaneous thermal transitions between WC and HG bps in a free DNA duplex containing N1-methylated adenine (m1A). For the current free energy computation, a variant of well-tempered metadynamics simulation was extensively performed for a total of 40 mu s to produce free energy surfaces. The free energy profile indicated that, upon the chemical modification of adenine, the HG bp (m1A.T) was located in the most favorable conformation (96.7%); however, the canonical WC bp (m1A.T) was distorted into two WC-like bps of WC* (2.8%) and WC** (0.5%). The conformational exchange between these two minor WC-like bps occurs with the first hundred nanoseconds. The transition between WC-like and HG bp features multiple transition pathways displaying various extents of base flipping in combination with glycosidic rotation. Analysis of the simulated ensemble showed that the m1A-induced changes of the backbone and sugar pucker were in a reasonable agreement with previous results inferred from NMR experiments. Also, this study revealed that the formation of the stable HG bp upon the mutation alters the characteristics of dynamic fluctuations of the neighboring WC residues of m1A. We expect this simulation approach to be a robust computational scheme to complement and guide future high-resolution experiments on many outstanding issues of duplex DNA breathing.
机译:DNA呼吸是在双链DNA中自发地发生的局部构象波动。特别地,在相关时间尺度的双相DNA中以在交替的BP模式下翻转以在交替的BP模式下翻转的各个碱基对(BPS),即Watson Crick(WC) - 麦克风(Hg),在相关的时间尺度上为许多人影响了DNA研究领域年。在本研究中,为了计算化学改性对DNA呼吸的影响,我们在含有N1-甲基化腺嘌呤(M1A)的自由DNA双链体中,在WC和HG BPS之间的自发热转变的自由能景观。对于目前的自由能量计算,广泛地进行了升高的元动力学模拟的变型,总共进行了40μm以产生自由能表面。自由能曲线表明,在腺嘌呤的化学改性后,HG BP(M1A.T)位于最有利的构象(96.7%);然而,规范WC BP(M1.T)变形为WC *(2.8%)和WC **(0.5%)的两种Wc样BPS。这两个次要的WC样BP之间的构象交换与前一百纳秒发生。 WC样和HG BP之间的转变具有多种转变途径,其显示与糖苷旋转组合的各种碱的碱。模拟集合的分析表明,与NMR实验推断的先前结果,骨架和糖褶皱的M1A诱导的变化是合理的一致性。此外,该研究表明,在突变时形成稳定的HG BP改变了M1A的相邻WC残基的动态波动的特征。我们预计该模拟方法是一种强大的计算方案,可以在多种翻转DNA呼吸的许多突出问题上进行补充和引导未来的高分辨率实验。

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