Wilson Alex L, Outeiral Carlos, Dowd Sarah E, Doig Andrew J, Popelier Paul L A, Waltho Jonathan P, Almond Andrew
Manchester Institute of Biotechnology and Department of Chemistry, School of Natural Science, Faculty of Science and Engineering, The University of Manchester, M1 7DN, Manchester, UK.
Division of Neuroscience and Experimental Psychology, Michael Smith Building, School of Biological Sciences, Faculty of Biology, Medicine and Health, The University of Manchester, M13 9PT, Manchester, UK.
Commun Chem. 2020 May 6;3(1):56. doi: 10.1038/s42004-020-0298-x.
Ribonucleic acids (RNAs) are key to the central dogma of molecular biology. While Raman spectroscopy holds great potential for studying RNA conformational dynamics, current computational Raman prediction and assignment methods are limited in terms of system size and inclusion of conformational exchange. Here, a framework is presented that predicts Raman spectra using mixtures of sub-spectra corresponding to major conformers calculated using classical and ab initio molecular dynamics. Experimental optimization allowed purines and pyrimidines to be characterized as predominantly syn and anti, respectively, and ribose into exchange between equivalent south and north populations. These measurements are in excellent agreement with Raman spectroscopy of ribonucleosides, and previous experimental and computational results. This framework provides a measure of ribonucleoside solution populations and conformational exchange in RNA subunits. It complements other experimental techniques and could be extended to other molecules, such as proteins and carbohydrates, enabling biological insights and providing a new analytical tool.
核糖核酸(RNAs)是分子生物学中心法则的关键。虽然拉曼光谱在研究RNA构象动力学方面具有巨大潜力,但目前的计算拉曼预测和归属方法在系统规模和构象交换纳入方面存在局限性。在此,提出了一个框架,该框架使用对应于使用经典和从头算分子动力学计算的主要构象异构体的子光谱混合物来预测拉曼光谱。实验优化使得嘌呤和嘧啶分别主要被表征为顺式和反式,核糖在等效的南向和北向群体之间进行交换。这些测量结果与核糖核苷的拉曼光谱以及先前的实验和计算结果非常吻合。该框架提供了一种测量核糖核苷溶液群体和RNA亚基中构象交换的方法。它补充了其他实验技术,并且可以扩展到其他分子,如蛋白质和碳水化合物,从而实现生物学洞察并提供一种新的分析工具。