Komin Sittipong, Gossens Christian, Tavernelli Ivano, Rothlisberger Ursula, Sebastiani Daniel
Max-Planck-Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
J Phys Chem B. 2007 May 17;111(19):5225-32. doi: 10.1021/jp067263l. Epub 2007 Apr 26.
We present first principles calculations of the NMR solvent shift of adenine in aqueous solution. The calculations are based on snapshots sampled from a molecular dynamics simulation, which were obtained via a hybrid quantum-mechanical/mechanical modeling approach, using an all-atom force field (TIP3P). We find that the solvation via the strongly fluctuating hydrogen bond network of water leads to nontrivial changes in the NMR spectra of the solutes regarding the ordering of the resonance lines. Although there are still sizable deviations from experiment, the overall agreement is satisfactory for the 1H and 15N NMR shifts. Our work is another step toward a realistic first-principles prediction of NMR chemical shifts in complex chemical environments.
我们展示了腺嘌呤在水溶液中核磁共振(NMR)溶剂位移的第一性原理计算。这些计算基于从分子动力学模拟中采样得到的快照,该模拟通过混合量子力学/力学建模方法获得,使用全原子力场(TIP3P)。我们发现,通过水的强烈波动氢键网络进行的溶剂化作用,会导致溶质的NMR谱在共振线排序方面发生显著变化。尽管与实验仍存在较大偏差,但对于1H和15N NMR位移,总体一致性是令人满意的。我们的工作朝着在复杂化学环境中对NMR化学位移进行实际的第一性原理预测又迈进了一步。