Regional Centre of Advanced Technologies and Materials, Department of Physical Chemistry, Faculty of Science, Palacky University , 17. listopadu 12, 77146 Olomouc, Czech Republic.
Institute of Biophysics, Academy of Sciences of the Czech Republic , Královopolská 135, 612 65 Brno, Czech Republic.
J Phys Chem B. 2017 Mar 23;121(11):2420-2433. doi: 10.1021/acs.jpcb.7b00262. Epub 2017 Mar 14.
The sugar-phosphate backbone of RNA can exist in diverse rotameric substates, giving RNA molecules enormous conformational variability. The most frequent noncanonical backbone conformation in RNA is α/γ = t/t, which is derived from the canonical backbone by a crankshaft motion and largely preserves the standard geometry of the RNA duplex. A similar conformation also exists in DNA, where it has been extensively studied and shown to be involved in DNA-protein interactions. However, the function of the α/γ = t/t conformation in RNA is poorly understood. Here, we present molecular dynamics simulations of several prototypical RNA structures obtained from X-ray and NMR experiments, including canonical and mismatched RNA duplexes, UUCG and GAGA tetraloops, Loop E, the sarcin-ricin loop, a parallel guanine quadruplex, and a viral pseudoknot. The stability of various noncanonical α/γ backbone conformations was analyzed with two AMBER force fields, ff99bsc0χ and ff99bsc0χ with the recent εζ and β corrections for DNA. Although some α/γ substates were stable with seemingly well-described equilibria, many were unstable in our simulations. Notably, the most frequent noncanonical conformer α/γ = t/t was unstable in both tested force fields. Possible reasons for this instability are discussed. Our work reveals a potentially important artifact in RNA force fields and highlights a need for further force field refinement.
RNA 的糖磷酸骨架可以存在于多种构象亚稳态中,赋予 RNA 分子巨大的构象可变性。RNA 中最常见的非canonical 骨架构象是α/γ = t/t,它通过曲柄运动从canonical 骨架衍生而来,并且在很大程度上保留了 RNA 双链体的标准几何形状。在 DNA 中也存在类似的构象,它已经被广泛研究并被证明参与 DNA-蛋白质相互作用。然而,RNA 中α/γ = t/t 构象的功能还知之甚少。在这里,我们对来自 X 射线和 NMR 实验的几个典型 RNA 结构进行了分子动力学模拟,包括canonical 和错配的 RNA 双链体、UUCG 和 GAGA 四联体、Loop E、sarcin-ricin 环、平行鸟嘌呤四联体和病毒假结。使用两种 AMBER 力场(ff99bsc0χ 和 ff99bsc0χ 带有最近的 DNA εζ 和 β 修正)分析了各种非canonical α/γ 骨架构象的稳定性。尽管一些α/γ亚稳态在似乎描述良好的平衡中是稳定的,但在我们的模拟中许多亚稳态是不稳定的。值得注意的是,最常见的非canonical 构象α/γ = t/t 在两种测试的力场中都是不稳定的。对此不稳定性的可能原因进行了讨论。我们的工作揭示了 RNA 力场中一个潜在的重要人为因素,并强调了进一步力场精化的必要性。