Biophysics division, Saha Institute of Nuclear Physics, 1/AF, Bidhannagar, Kolkata 700 064, India.
Prog Biophys Mol Biol. 2013 Nov;113(2):264-83. doi: 10.1016/j.pbiomolbio.2013.07.003. Epub 2013 Jul 23.
RNA is now known to possess various structural, regulatory and enzymatic functions for survival of cellular organisms. Functional RNA structures are generally created by three-dimensional organization of small structural motifs, formed by base pairing between self-complementary sequences from different parts of the RNA chain. In addition to the canonical Watson-Crick or wobble base pairs, several non-canonical base pairs are found to be crucial to the structural organization of RNA molecules. They appear within different structural motifs and are found to stabilize the molecule through long-range intra-molecular interactions between basic structural motifs like double helices and loops. These base pairs also impart functional variation to the minor groove of A-form RNA helices, thus forming anchoring site for metabolites and ligands. Non-canonical base pairs are formed by edge-to-edge hydrogen bonding interactions between the bases. A large number of theoretical studies have been done to detect and analyze these non-canonical base pairs within crystal or NMR derived structures of different functional RNA. Theoretical studies of these isolated base pairs using ab initio quantum chemical methods as well as molecular dynamics simulations of larger fragments have also established that many of these non-canonical base pairs are as stable as the canonical Watson-Crick base pairs. This review focuses on the various structural aspects of non-canonical base pairs in the organization of RNA molecules and the possible applications of these base pairs in predicting RNA structures with more accuracy.
RNA 现在被认为具有各种结构、调节和酶功能,以维持细胞生物的生存。功能性 RNA 结构通常通过来自 RNA 链不同部分的自我互补序列之间的碱基配对形成的三维结构基序来创建。除了规范的 Watson-Crick 或摆动碱基对之外,还发现几种非规范碱基对对于 RNA 分子的结构组织至关重要。它们出现在不同的结构基序中,并通过双螺旋和环等基本结构基序之间的长程分子内相互作用来稳定分子。这些碱基对还赋予 A 型 RNA 螺旋的小沟功能变化,从而为代谢物和配体形成锚定位点。非规范碱基对是通过碱基之间的边缘到边缘氢键相互作用形成的。已经进行了大量的理论研究,以检测和分析不同功能 RNA 的晶体或 NMR 衍生结构中的这些非规范碱基对。使用从头量子化学方法和更大片段的分子动力学模拟对这些分离碱基对的理论研究还表明,许多这些非规范碱基对与规范的 Watson-Crick 碱基对一样稳定。这篇综述重点介绍了非规范碱基对在 RNA 分子组织中的各种结构方面,以及这些碱基对在更准确地预测 RNA 结构方面的可能应用。