Deenalattha D H Sanduni, Jurich Chris P, Lange Bret, Armstrong Darren, Nein Kaitlyn, Yesselman Joseph D
Department of Chemistry, University of Nebraska, 639 North 12 St, Lincoln, NE 68588, USA.
bioRxiv. 2025 Feb 25:2024.11.21.624766. doi: 10.1101/2024.11.21.624766.
Dimethyl sulfate (DMS) chemical mapping probes RNA structure, where low reactivity is generally interpreted as Watson-Crick (WC) base pairs and high reactivity as unpaired nucleotides. Studies examining DMS reactivity of RNAs with known 3D structures have identified nucleotides that deviate from this interpretation with distinct solvent accessibility and hydrogen bonding patterns. Understanding the frequency of these outliers and their recurring structural 3D features remains incomplete. To address this knowledge gap, we systematically analyzed DMS reactivity patterns across a library of 7,500 RNA constructs containing two-way junctions with known 3D structures. We observe DMS reactivity exists on a continuum over four orders of magnitude with approximately 10% overlap in reactivity between WC and non-WC nucleotides. We find that non-WC bases with WC-like DMS protection exhibit increased hydrogen bonding and decreased solvent accessibility, whereas WC pairs exhibiting greater DMS reactivity tend to flank junctions, correlating with weaker base stacking and greater junction dynamics. Furthermore, we discover that DMS reactivity values in non-canonical pairs correlate with atomic distances and base pair geometry, enabling discrimination between different 3D conformations. These DMS reactivity patterns indicate that DMS reactivity provides atomic-scale information about RNA 3D conformations, which can be used to model RNA structures and dynamics.
硫酸二甲酯(DMS)化学图谱可探测RNA结构,其中低反应性通常被解释为沃森-克里克(WC)碱基对,高反应性则被解释为未配对的核苷酸。对具有已知三维结构的RNA的DMS反应性进行研究,已鉴定出一些核苷酸,它们偏离了这种解释,具有独特的溶剂可及性和氢键模式。了解这些异常值的频率及其反复出现的三维结构特征仍不完整。为了填补这一知识空白,我们系统地分析了一个包含7500个具有已知三维结构的双向接头的RNA构建体文库中的DMS反应性模式。我们观察到,DMS反应性在四个数量级上呈连续分布,WC和非WC核苷酸之间的反应性重叠约为10%。我们发现,具有类似WC的DMS保护的非WC碱基表现出增加的氢键和降低的溶剂可及性,而表现出更高DMS反应性的WC碱基对往往位于接头两侧,这与较弱的碱基堆积和更大的接头动力学相关。此外,我们发现非经典碱基对中的DMS反应性值与原子距离和碱基对几何形状相关,能够区分不同的三维构象。这些DMS反应性模式表明,DMS反应性提供了有关RNA三维构象的原子尺度信息,可用于模拟RNA结构和动力学。