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生物重要天然碱基对之间的分子间 CH···O/N H 键:一项彻底的量子化学研究。

Intermolecular CH···O/N H-bonds in the biologically important pairs of natural nucleobases: a thorough quantum-chemical study.

机构信息

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

出版信息

J Biomol Struct Dyn. 2014;32(6):993-1022. doi: 10.1080/07391102.2013.799439. Epub 2013 Jun 3.

DOI:10.1080/07391102.2013.799439
PMID:23730732
Abstract

This study aims to cast light on the physico-chemical nature and energetic of the non-conventional CH···O/N H-bonds in the biologically important natural nucleobase pairs using a comprehensive quantum-chemical approach. As a whole, the 36 biologically important pairs, involving canonical and rare tautomers of nucleobases, were studied by means of all available up-to-date state-of-the-art quantum-chemical techniques along with quantum theory "Atoms in molecules" (QTAIM), Natural Bond Orbital (NBO) analysis, Grunenberg's compliance constants theory, geometrical and vibrational analyses to identify the CH···O/N interactions, reveal their physico-chemical nature and estimate their strengths as well as contribution to the overall base-pairs stability. It was shown that all the 38 CH···O/N contacts (25 CH···O and 13 CH···N H-bonds) completely satisfy all classical geometrical, electron-topological, in particular Bader's and "two-molecule" Koch and Popelier's, and vibrational criteria of H-bonding. The positive values of Grunenberg's compliance constants prove that the CH···O/N contacts in nucleobase pairs are stabilizing interactions unlike electrostatic repulsion and anti-H-bonds. NBO analysis indicates the electron density transfer from the lone electron pair of the acceptor atom (O/N) to the antibonding orbital corresponding to the donor group σ(∗)(CH). Moreover, significant increase in the frequency of the out-of-plane deformation modes γ (CH) under the formation of the CH···O (by 17.2÷81.3/10.8÷84.7 cm(-1)) and CH···N (by 32.7÷85.9/9.0÷77.9 cm(-1)) H-bonds at the density functional theory (DFT)/second-order Møller-Plesset (MP2) levels of theory, respectively, and concomitant changes of their intensities can be considered as reliable indicators of H-bonding. The strengths of the CH···O/N interactions, evaluated by means of Espinosa-Molins-Lecomte formula, lie within the range 0.45÷3.89/0.62÷4.10 kcal/mol for the CH···O H-bonds and 1.45÷3.17/1.70÷3.43 kcal/mol for the CH···N H-bonds at the DFT/MP2 levels of theory, respectively. We revealed high linear mutual correlations between the H-bond energy and different physico-chemical parameters of the CH···O/N H-bonds. Based on these observations, the authors asserted that the most reliable descriptors of the H-bonding are the electron density ρ at the СН···О/N H-bond critical points and the NBO calculated stabilization energy E((2)). The linear dependence of the H-bond energy ECH···O/N (in kcal/mol) on the electron density ρ (in atomic units) was established (DFT/MP2): ECH···O = 248.501[Formula: see text]ρ-0.367/260.518[Formula: see text]ρ-0.373 and ECH···N = 218.125[Formula: see text]ρ-0.339/243.599[Formula: see text]ρ-0.441. Red-shifted and blue-shifted CH···O/N H-bonds behave in a similar way and can be described with the same fit parameters. It was found that the A-U HH2 and U-U3 nucleobase pairs are stabilized solely by the CH···O/N H-bonds. At the same time, in the A-U HH1, A-U HH2, A-Asyn 1, A-Asyn 2, A-Asyn 3, A-A4, A-G1, A-G2, G-U1, G-U2, G-U3, G-C HH1, U-U1, U-U2, U-U3 and A-C nucleobase pairs the CH···O/N H-bonds play a prominent role (>30%) in their stabilization. We suppose that unconventional CH···O/N H-bond plays the role of the third "fulcrum", ensuring structurally dynamic similarity of the isomorphic base pairs of different origin, which are incorporated equally well into the structure of the DNA double helix.

摘要

本研究旨在利用全面的量子化学方法,阐明生物重要天然核碱基对中非传统的 CH···O/N氢键的物理化学性质和能量。总体而言,通过使用所有可用的最新最先进的量子化学技术以及量子理论“分子中的原子”(QTAIM)、自然键轨道(NBO)分析、Grunenberg 顺应常数理论、几何和振动分析,研究了 36 对涉及核碱基的经典和罕见互变异构体的生物重要对,以确定 CH···O/N 相互作用,揭示其物理化学性质,并估计其强度以及对碱基对整体稳定性的贡献。结果表明,所有 38 个 CH···O/N 接触(25 个 CH···O 和 13 个 CH···N H 键)完全满足所有经典的几何、电子拓扑学,特别是 Bader 以及“双分子”Koch 和 Popelier 的,以及振动的氢键标准。Grunenberg 顺应常数的正值证明,与静电排斥和反氢键不同,核碱基对中的 CH···O/N 接触是稳定的相互作用。NBO 分析表明,从接受体原子(O/N)的孤对电子到对应供体基团 σ(∗)(CH)的反键轨道的电子密度转移。此外,在 CH···O(通过 17.2÷81.3/10.8÷84.7 cm(-1))和 CH···N(通过 32.7÷85.9/9.0÷77.9 cm(-1))H 键形成下,面外变形模式 γ (CH)的频率显著增加,在密度泛函理论(DFT)/二阶 Møller-Plesset(MP2)理论水平上,分别伴随着它们强度的变化,可以作为氢键的可靠指标。通过 Espinosa-Molins-Lecomte 公式评估的 CH···O/N 相互作用的强度范围为 0.45÷3.89/0.62÷4.10 kcal/mol 用于 CH···O H 键,分别为 1.45÷3.17/1.70÷3.43 kcal/mol 用于 CH···N H 键。我们揭示了 CH···O/N H 键的氢键能量与不同物理化学参数之间的高度线性相互关系。基于这些观察结果,作者断言氢键的最可靠描述符是 CH···O/N H 键临界点的电子密度 ρ 和 NBO 计算的稳定化能 E((2))。建立了氢键能量 ECH···O/N(以 kcal/mol 为单位)与电子密度 ρ(以原子单位为单位)的线性关系(DFT/MP2):ECH···O = 248.501[公式:见正文]ρ-0.367/260.518[公式:见正文]ρ-0.373 和 ECH···N = 218.125[公式:见正文]ρ-0.339/243.599[公式:见正文]ρ-0.441。红移和蓝移的 CH···O/N H 键表现出相似的行为,可以用相同的拟合参数来描述。结果发现,A-U HH2 和 U-U3 核碱基对仅由 CH···O/N H 键稳定。同时,在 A-U HH1、A-U HH2、A-Asyn 1、A-Asyn 2、A-Asyn 3、A-A4、A-G1、A-G2、G-U1、G-U2、G-U3、G-C HH1、U-U1、U-U2、U-U3 和 A-C 核碱基对中,CH···O/N H 键在其稳定性中起着重要作用(>30%)。我们假设非常规的 CH···O/N H 键起着第三个“支点”的作用,确保了不同来源的同构碱基对在结构上具有动态相似性,它们同样可以很好地融入 DNA 双螺旋结构中。

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