Institute of Molecular Biosciences, Goethe-University Frankfurt, Max-von-Laue-Str. 9, 60438 Frankfurt, Germany.
Center for Biomolecular Magnetic Resonance (BMRZ), Goethe-University Frankfurt, Max-von-Laue-Str. 9, 60438 Frankfurt, Germany.
Nucleic Acids Res. 2024 Jun 24;52(11):6687-6706. doi: 10.1093/nar/gkae349.
The single-stranded RNA genome of SARS-CoV-2 is highly structured. Numerous helical stem-loop structures interrupted by mismatch motifs are present in the functionally important 5'- and 3'-UTRs. These mismatches modulate local helical geometries and feature unusual arrays of hydrogen bonding donor and acceptor groups. However, their conformational and dynamical properties cannot be directly inferred from chemical probing and are difficult to predict theoretically. A mismatch motif (SL1-motif) consisting of three consecutive U•U base pairs is located in stem-loop 1 of the 3'-UTR. We combined NMR-spectroscopy and MD-simulations to investigate its structure and dynamics. All three U•U base pairs feature two direct hydrogen bonds and are as stable as Watson-Crick A:U base pairs. Plasmodium falciparum 25S rRNA contains a triple U•U mismatch motif (Pf-motif) differing from SL1-motif only with respect to the orientation of the two closing base pairs. Interestingly, while the geometry of the outer two U•U mismatches was identical in both motifs the preferred orientation of the central U•U mismatch was different. MD simulations and potassium ion titrations revealed that the potassium ion-binding mode to the major groove is connected to the different preferred geometries of the central base pair in the two motifs.
SARS-CoV-2 的单链 RNA 基因组具有高度的结构复杂性。在功能重要的 5' 和 3' UTR 中存在许多由错配基序打断的螺旋茎环结构。这些错配调节局部螺旋几何形状,并具有不寻常的氢键供体和受体基团排列。然而,它们的构象和动力学性质不能直接从化学探测推断出来,并且很难从理论上预测。位于 3'UTR 茎环 1 中的一个由三个连续 U•U 碱基对组成的错配基序(SL1 基序)。我们结合 NMR 光谱和 MD 模拟来研究其结构和动力学。所有三个 U•U 碱基对都具有两个直接氢键,与 Watson-Crick A:U 碱基对一样稳定。疟原虫 25S rRNA 含有一个三 U•U 错配基序(Pf 基序),与 SL1 基序仅在两个闭合碱基对的取向上有所不同。有趣的是,虽然两个基序中外侧的两个 U•U 错配的几何形状相同,但中央 U•U 错配的优选取向不同。MD 模拟和钾离子滴定表明,与中央碱基对不同的优选几何形状相关的是结合到大沟的钾离子结合模式。