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Understanding the role of base stacking in nucleic acids. MD and QM analysis of tandem GA base pairs in RNA duplexes

机译:了解碱基堆积在核酸中的作用。 RNA双链中串联GA碱基对的MD和QM分析

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Preceding NMR experiments show that the conformation of tandem GA base pairs, an important recurrent non-canonical building block in RNA duplexes, is context dependent. The GA base pairs adopt "sheared" N3(G)-N6(A), N2(G)-N7(A) geometry in the r(CGAG)2 and r(iGGAiC)2 contexts while switching to "imino" N1(G)-N1(A), 06(G)-N6(A) geometry in the r(GGAC)2 and r(iCGAiG)2 contexts (iC and iG stand for isocytosine and isoguanine, respectively). As base stacking is likely to be one of the key sources of the context dependence of the conformation of GA base pairs, we calculated base stacking energies in duplexes containing such base pairs, to see if this dependence can be predicted by stacking energy calculations. When investigating the context dependence of the GA geometry two different conformations of the same duplex were compared (imino vs. sheared). The geometries were generated via explicit solvent MD simulations of the respective RNA duplexes, while the subsequent QM energy calculations focused on base stacking interactions of the four internal base pairs. Geometrical relaxation of nucleobase atoms prior to the stacking energy computations has a non-negligible effect on the results. The stacking energies were derived at the DFT-D/6-311++G(3df,3pd) level. We show a rather good correspondence between the intrinsic gas-phase stacking energies and the NMR-determined GA geometries. The conformation with more favorable gas-phase stacking is in most cases the one observed in experiments. This correlation is not improved when including solvent effects via the COSMO method. On the other side, the stacking calculations do not predict the relative thermodynamic stability of duplex formation for different sequences.
机译:先前的NMR实验表明,串联GA碱基对(RNA双链体中重要的经常性非规范构建基块)的构象取决于上下文。 GA基础对在r(CGAG)2和r(iGGAiC)2上下文中采用“剪切”的N3(G)-N6(A),N2(G)-N7(A)几何,同时切换到“ imino” N1(在r(GGAC)2和r(iCGAiG)2上下文中,G)-N1(A),06(G)-N6(A)几何结构(iC和iG分别代表异胞嘧啶和异鸟嘌呤)。由于碱基堆积可能是GA碱基对构象的上下文相关性的关键来源之一,因此我们在包含此类碱基对的双链体中计算了碱基堆积能量,以查看是否可以通过堆积能量计算来预测这种依赖性。在研究GA几何的背景依赖性时,比较了同一个双链体的两个不同构型(亚氨基与剪切型)。几何结构是通过对各个RNA双链体进行显式溶剂MD模拟生成的,而随后的QM能量计算则着重于四个内部碱基对的碱基堆积相互作用。在计算堆积能量之前,核碱基原子的几何弛豫对结果的影响不可忽略。堆积能在DFT-D / 6-311 ++ G(3df,3pd)能级下得出。我们显示出固有的气相堆积能与NMR确定的GA几何形状之间有相当好的对应关系。在大多数情况下,在气相沉积方面更有利的构象是在实验中观察到的构象。当通过COSMO方法包括溶剂效应时,这种相关性不会得到改善。另一方面,堆叠计算不能预测不同序列的双链体形成的相对热力学稳定性。

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