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综合 NMR/分子动力学确定热力学稳定的 CUUG RNA 四链环的整体构象。

Integrated NMR/Molecular Dynamics Determination of the Ensemble Conformation of a Thermodynamically Stable CUUG RNA Tetraloop.

机构信息

Institute for Organic Chemistry and Chemical Biology, Center for Biomolecular Magnetic Resonance (BMRZ), Goethe University Frankfurt am Main, Max-von-Laue-Str. 7, 60438 Frankfurt/Main, Hessen, Germany.

Structural Biology and NMR Laboratory, Linderstrøm-Lang Centre for Protein Science, Department of Biology, University of Copenhagen, DK-2200 Copenhagen N, Denmark.

出版信息

J Am Chem Soc. 2023 Aug 2;145(30):16557-16572. doi: 10.1021/jacs.3c03578. Epub 2023 Jul 21.

Abstract

Both experimental and theoretical structure determinations of RNAs have remained challenging due to the intrinsic dynamics of RNAs. We report here an integrated nuclear magnetic resonance/molecular dynamics (NMR/MD) structure determination approach to describe the dynamic structure of the CUUG tetraloop. We show that the tetraloop undergoes substantial dynamics, leading to averaging of the experimental data. These dynamics are particularly linked to the temperature-dependent presence of a hydrogen bond within the tetraloop. Interpreting the NMR data by a single structure represents the low-temperature structure well but fails to capture all conformational states occurring at a higher temperature. We integrate MD simulations, starting from structures of CUUG tetraloops within the Protein Data Bank, with an extensive set of NMR data, and provide a structural ensemble that describes the dynamic nature of the tetraloop and the experimental NMR data well. We thus show that one of the most stable and frequently found RNA tetraloops displays substantial dynamics, warranting such an integrated structural approach.

摘要

由于 RNA 的固有动力学,RNA 的实验和理论结构测定仍然具有挑战性。我们在这里报告了一种集成的核磁共振/分子动力学(NMR/MD)结构测定方法,用于描述 CUUG 四环的动态结构。我们表明,四环经历了大量的动力学,导致实验数据的平均化。这些动力学与四环内氢键在温度依赖性存在特别相关。通过单个结构解释 NMR 数据可以很好地表示低温结构,但无法捕获在更高温度下发生的所有构象状态。我们整合了 MD 模拟,从蛋白质数据库中的 CUUG 四环结构开始,结合了大量的 NMR 数据,并提供了一个结构集合,很好地描述了四环的动态性质和实验 NMR 数据。因此,我们表明,最稳定和最常发现的 RNA 四环之一显示出大量的动力学,这需要这种集成的结构方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c09/10401711/5b8c7361c4ca/ja3c03578_0001.jpg

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