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由鸟嘌呤的酮式和烯醇式互变异构体组成的长G·G*沃森-克里克DNA碱基错配是如何发生互变异构的?量子力学/量子拓扑原子理论研究结果。

How does the long G·G* Watson-Crick DNA base mispair comprising keto and enol tautomers of the guanine tautomerise? The results of a QM/QTAIM investigation.

作者信息

Brovarets' Ol'ha O, Hovorun Dmytro M

机构信息

Department of Molecular and Quantum Biophysics, Institute of Molecular Biology and Genetics, National Academy of Sciences of Ukraine, 150 Akademika Zabolotnoho Str., 03680 Kyiv, Ukraine.

出版信息

Phys Chem Chem Phys. 2014 Aug 14;16(30):15886-99. doi: 10.1039/c4cp01241k.

Abstract

The double proton transfer (DPT) in the long G·G* Watson-Crick base mispair (|C6N1(G*)N1C6(G)| = 36.4°; C1 symmetry), involving keto and enol tautomers of the guanine (G) nucleobase, along two intermolecular neighboring O6H···O6 (8.39) and N1···HN1 (6.14 kcal mol(-1)) H-bonds that were established to be slightly anti-cooperative, leads to its transformation into the G*·G base mispair through a single transition state (|C6N1N1C6| = 37.1°; C1), namely to the interconversion into itself. It was shown that the G·G* ↔ G*·G tautomerisation via the DPT is assisted by the third specific contact, that sequentially switches along the intrinsic reaction coordinate (IRC) in an original way: (G)N2H···N2(G*) H-bond (-25.13 to -10.37) → N2···N2 van der Waals contact (-10.37 to -9.23) → (G)N2···HN2(G*) H-bond (-9.23 to 0.79) → (G*)N2···HN2(G) H-bond (0.79 to 7.35 Bohr). The DPT tautomerisation was found to proceed through the asynchronous concerted mechanism by employing the QM/QTAIM approach and the methodology of the scans of the geometric, electron-topological, energetic, polar and NBO properties along the IRC. Nine key points, that can be considered as part of the tautomerisation repertoire, have been established and analyzed in detail. Furthermore, it was shown that the G·G* or G*·G base mispair is a thermodynamically and dynamically stable structure with a lifetime of 8.22 × 10(-10) s and all 6 low-frequency intermolecular vibrations are able to develop during this time span. Lastly, our results highlight the importance of the G·G* ↔ G*·G DPT tautomerisation, which can have implications for biological and chemical sensing applications.

摘要

在长的G·G沃森-克里克碱基错配(|C6N1(G)N1C6(G)| = 36.4°;C1对称性)中,涉及鸟嘌呤(G)核碱基的酮式和烯醇式互变异构体,沿着两个分子间相邻的O6H···O6(8.39)和N1···HN1(6.14千卡摩尔⁻¹)氢键(已确定这两个氢键略有反协同作用),通过一个单一的过渡态(|C6N1N1C6| = 37.1°;C1)导致其转变为G*·G碱基错配,即自身的互变异构。结果表明,通过双质子转移(DPT)实现的G·G* ↔ G*·G互变异构受到第三个特定接触的辅助,该接触沿着内在反应坐标(IRC)以一种独特的方式依次切换:(G)N2H···N2(G*)氢键(-25.13至-10.37)→ N2···N2范德华接触(-10.37至-9.23)→(G)N2···HN2(G*)氢键(-9.23至0.79)→(G*)N2···HN2(G)氢键(0.79至7.35玻尔)。通过采用QM/QTAIM方法以及沿着IRC扫描几何、电子拓扑、能量、极性和NBO性质的方法,发现DPT互变异构通过异步协同机制进行。已经确定并详细分析了九个关键点,可将其视为互变异构过程的一部分。此外,结果表明G·G或G·G碱基错配是一种热力学和动力学稳定的结构,寿命为8.22×10⁻¹⁰秒,并且在这段时间内所有6种低频分子间振动都能够发生。最后,我们的结果突出了G·G* ↔ G*·G DPT互变异构的重要性,这可能对生物和化学传感应用产生影响。

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