King Abdullah University of Science and Technology (KAUST), Physical Sciences and Engineering Division, Kaust Catalysis Center, Thuwal 23955-6900, Saudi Arabia.
Department of Biochemistry and Molecular Biology, University of Texas Medical Branch, Galveston, TX 77555, USA.
Nucleic Acids Res. 2020 Jun 19;48(11):5825-5838. doi: 10.1093/nar/gkaa345.
We identified over 1000 instances of water-nucleobase stacking contacts in a variety of RNA molecules from a non-redundant set of crystal structures with resolution ≤3.0 Å. Such contacts may be of either the lone pair-π (lp-π) or the OH-π type, in nature. The distribution of the distances of the water oxygen from the nucleobase plane peaks at 3.5 Å for A, G and C, and approximately at 3.1-3.2 Å for U. Quantum mechanics (QM) calculations confirm, as expected, that the optimal energy is reached at a shorter distance for the lp-π interaction as compared to the OH-π one (3.0 versus 3.5 Å). The preference of each nucleobase for either type of interaction closely correlates with its electrostatic potential map. Furthermore, QM calculations show that for all the nucleobases a favorable interaction, of either the lp-π or the OH-π type, can be established at virtually any position of the water molecule above the nucleobase skeleton, which is consistent with the uniform projection of the OW atoms over the nucleobases ring we observed in the experimental occurrences. Finally, molecular dynamics simulations of a model system for the characterization of water-nucleobase stacking contacts confirm the stability of these interactions also under dynamic conditions.
我们在分辨率≤3.0 Å 的非冗余晶体结构集合中,鉴定了 1000 多种来自不同 RNA 分子的水-碱基堆积接触实例。这些接触可能是孤对-π(lp-π)或 OH-π 类型的。水分子氧与碱基平面之间的距离分布峰值在 A、G 和 C 处为 3.5 Å,在 U 处约为 3.1-3.2 Å。量子力学(QM)计算证实,正如预期的那样,与 OH-π 相互作用相比,lp-π 相互作用的最佳能量在更短的距离上达到(3.0 对 3.5 Å)。每种碱基对任一种相互作用的偏好都与其静电势图密切相关。此外,QM 计算表明,对于所有碱基,水分子在碱基骨架上方的几乎任何位置都可以建立有利的 lp-π 或 OH-π 相互作用,这与我们在实验中观察到的 OW 原子在碱基环上的均匀投影一致。最后,水-碱基堆积接触模型系统的分子动力学模拟证实了这些相互作用在动态条件下的稳定性。