Scuola Internazionale Superiore di Studi Avanzati, Via Bonomea 265, Trieste 34136, Italy.
Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO 63110, USA.
Nucleic Acids Res. 2021 Aug 20;49(14):e84. doi: 10.1093/nar/gkab459.
Small-angle X-ray scattering (SAXS) experiments are increasingly used to probe RNA structure. A number of forward models that relate measured SAXS intensities and structural features, and that are suitable to model either explicit-solvent effects or solute dynamics, have been proposed in the past years. Here, we introduce an approach that integrates atomistic molecular dynamics simulations and SAXS experiments to reconstruct RNA structural ensembles while simultaneously accounting for both RNA conformational dynamics and explicit-solvent effects. Our protocol exploits SAXS pure-solute forward models and enhanced sampling methods to sample an heterogenous ensemble of structures, with no information towards the experiments provided on-the-fly. The generated structural ensemble is then reweighted through the maximum entropy principle so as to match reference SAXS experimental data at multiple ionic conditions. Importantly, accurate explicit-solvent forward models are used at this reweighting stage. We apply this framework to the GTPase-associated center, a relevant RNA molecule involved in protein translation, in order to elucidate its ion-dependent conformational ensembles. We show that (a) both solvent and dynamics are crucial to reproduce experimental SAXS data and (b) the resulting dynamical ensembles contain an ion-dependent fraction of extended structures.
小角 X 射线散射(SAXS)实验越来越多地用于探测 RNA 结构。过去几年中,已经提出了许多将测量的 SAXS 强度与结构特征相关联的正向模型,这些模型适用于模拟显式溶剂效应或溶质动力学。在这里,我们介绍了一种方法,该方法将原子分子动力学模拟和 SAXS 实验集成在一起,以重建 RNA 结构集合,同时考虑 RNA 构象动力学和显式溶剂效应。我们的方案利用 SAXS 纯溶质正向模型和增强采样方法来采样结构的异构集合,而无需在飞行中提供有关实验的任何信息。然后,通过最大熵原理对生成的结构集合进行重新加权,以匹配多个离子条件下的参考 SAXS 实验数据。重要的是,在重新加权阶段使用准确的显式溶剂正向模型。我们将该框架应用于 GTPase 相关中心,这是一种与蛋白质翻译相关的相关 RNA 分子,以阐明其离子依赖性构象集合。我们表明,(a)溶剂和动力学对于重现实验 SAXS 数据至关重要,(b)所得的动力学集合包含离子依赖性的扩展结构分数。