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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Trans Hoogsteen/Sugar Edge Base Pairing in RNA. Structures, Energies, and Stabilities from Quantum Chemical Calculations
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Trans Hoogsteen/Sugar Edge Base Pairing in RNA. Structures, Energies, and Stabilities from Quantum Chemical Calculations

机译:RNA中的反Hoogsteen /糖边缘碱基配对。量子化学计算的结构,能量和稳定性

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摘要

Trans Hoogsteen/sugar edge (H/SE) RNA base pairs form one of the six families of RNA base pairs that utilize the 2'-hydroxyl group of ribose for base pairing and play key roles in stabilizing folded RNA molecules. Here, we provide a detailed quantum chemical characterization of intrinsic structures and interaction energies of this base pair family, along with the evaluation of solvent screening effects by a continuum solvent approach. We report DFT-optimized geometries and MP2 interaction energies for all 10 crystallographically identified members of the family, for a representative set of them, using complete basis set extrapolation. For 6 of the 10 base pairs, we had to apply geometric constraints to keep the geometries relevant to RNA. We confirm that the remaining, hitherto undetected, possible members of this family do not have appropriate steric features required to establish stable base pairing in the trans H/SE fashion. The interaction patterns in the trans H/SE family are highly diverse, with gas-phase interaction energies in the range from — 1 to —17 kcal/mol. Except for the C/rC and G/rG trans H/SE base pairs, the interaction energy is roughly evenly distributed between the HF and correlation components. Thus, in the trans H/SE base pairs, the relative importance of electron correlation is noticeably smaller than in the cis WC/SE or cis and trans SE/SE base pairs, but still larger than in canonical base pairs. The trans H/SE A/rG base pair is the intrinsically most stable member of this family. This base pair is also known as the sheared AG base pair and belongs to the most prominent set of RNA base pairs utilized in molecular building blocks of functional RNAs. For all trans H/SE base pairs that we identified, in addition to conventional base pairing, viable alternative structures were stabilized by amino-acceptor interactions. In the QM calculations, these amino-acceptor complexes appear to be equally as stable as those with common H-bonds, and more importantly, the switch to amino-acceptor interaction does not require any significant geometrical rearrangement of the base pairs. Such interactions are worthy of further investigations, as X-ray crystallography cannot unambiguously distinguish between conventional and amino-acceptor interactions involving the 2'-hydroxyl group, formation of such interactions is usually not considered, and molecular modeling force fields do not include such interactions properly as a result of neglect of amino-group pyramidalization.
机译:反Hoogsteen /糖边缘(H / SE)RNA碱基对形成6个RNA碱基对家族之一,它们利用核糖的2'-羟基进行碱基配对,并在稳定折叠的RNA分子中起关键作用。在这里,我们提供了该碱基对家族的内在结构和相互作用能的详细量子化学表征,以及通过连续溶剂方法对溶剂筛选效果的评估。我们使用完整的基集外推法报告了该家族所有10个经晶体学鉴定的成员的DFT优化几何形状和MP2相互作用能,以代表一组代表。对于10个碱基对中的6个,我们必须应用几何约束以保持与RNA相关的几何形状。我们确认,该家族中迄今尚未发现的其余可能成员不具有以反H / SE方式建立稳定碱基配对所需的适当空间特征。反式H / SE族中的相互作用模式非常多样,气相相互作用能在-1 kcal / mol至17 kcal / mol的范围内。除了C / rC和G / rG跨H / SE碱基对之外,相互作用能在HF和相关分量之间大致均匀地分布。因此,在反式H / SE碱基对中,电子相关的相对重要性明显小于顺式WC / SE或顺式和反式SE / SE碱基对,但仍大于规范碱基对。反式H / SE A / rG碱基对是该家族本质上最稳定的成员。该碱基对也被称为剪切的AG碱基对,属于功能性RNA的分子构件中最主要的RNA碱基对。对于我们确定的所有反式H / SE碱基对,除常规碱基配对外,还通过氨基-受体相互作用稳定了可行的替代结构。在QM计算中,这些氨基受体配合物似乎与具有常见H键的氨基受体配合物一样稳定,更重要的是,切换至氨基受体相互作用不需要碱基对的任何重大几何重排。此类相互作用值得进一步研究,因为X射线晶体学无法明确地区分涉及2'-羟基的常规相互作用与氨基-受体相互作用,通常不考虑此类相互作用的形成,并且分子建模力场不包括此类相互作用。由于忽略了氨基锥体化反应而造成的结果。

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