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通过密度泛函理论计算研究核酸的化学位移并与实验进行比较。

Chemical shifts in nucleic acids studied by density functional theory calculations and comparison with experiment.

机构信息

Department of Zoology, University of Cambridge, Downing Street, Cambridge CB2 3EJ, UK.

出版信息

Chemistry. 2012 Sep 24;18(39):12372-87. doi: 10.1002/chem.201103593. Epub 2012 Aug 16.

Abstract

NMR chemical shifts are highly sensitive probes of local molecular conformation and environment and form an important source of structural information. In this study, the relationship between the NMR chemical shifts of nucleic acids and the glycosidic torsion angle, χ, has been investigated for the two commonly occurring sugar conformations. We have calculated by means of DFT the chemical shifts of all atoms in the eight DNA and RNA mono-nucleosides as a function of these two variables. From the DFT calculations, structures and potential energy surfaces were determined by using constrained geometry optimizations at the BP86/TZ2P level of theory. The NMR parameters were subsequently calculated by single-point calculations at the SAOP/TZ2P level of theory. Comparison of the (1)H and (13)C NMR shifts calculated for the mono-nucleosides with the shifts determined by NMR spectroscopy for nucleic acids demonstrates that the theoretical shifts are valuable for the characterization of nucleic acid conformation. For example, a clear distinction can be made between χ angles in the anti and syn domains. Furthermore, a quantitative determination of the χ angle in the syn domain is possible, in particular when (13)C and (1)H chemical shift data are combined. The approximate linear dependence of the C1' shift on the χ angle in the anti domain provides a good estimate of the angle in this region. It is also possible to derive the sugar conformation from the chemical shift information. The DFT calculations reported herein were performed on mono-nucleosides, but examples are also provided to estimate intramolecularly induced shifts as a result of hydrogen bonding, polarization effects, or ring-current effects.

摘要

核磁共振化学位移是探测局部分子构象和环境的高度灵敏探针,也是结构信息的重要来源。在这项研究中,我们研究了两种常见糖构象中核酸的核磁共振化学位移与糖苷扭转角 χ 之间的关系。我们通过 DFT 计算了所有原子的核磁共振化学位移作为这两个变量的函数。从 DFT 计算中,我们使用约束几何优化在 BP86/TZ2P 理论水平上确定了结构和势能面。随后,通过单点计算在 SAOP/TZ2P 理论水平上计算了 NMR 参数。将单核苷酸的 (1)H 和 (13)C NMR 位移与核酸的 NMR 光谱确定的位移进行比较表明,理论位移对于核酸构象的表征是有价值的。例如,可以清楚地区分反式和顺式区域的 χ 角。此外,当结合 (13)C 和 (1)H 化学位移数据时,可以对顺式区域中的 χ 角进行定量确定。在反式区域中 C1'位移与 χ 角的近似线性关系提供了该区域角度的良好估计。也可以从化学位移信息中推导出糖构象。本文报道的 DFT 计算是在单核苷酸上进行的,但也提供了一些例子来估计氢键、极化效应或环电流效应引起的分子内诱导位移。

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