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鸟嘌呤感应核糖开关适体结构和 Mg2+ 结合对折叠动力学的影响。

Influence of ground-state structure and Mg2+ binding on folding kinetics of the guanine-sensing riboswitch aptamer domain.

机构信息

Institute for Organic Chemistry and Chemical Biology, Center for Biomolecular Magnetic Resonance, Johann Wolfgang Goethe-University, Max-von-Laue-Strasse 7 & 9, 60438 Frankfurt am Main, Germany.

出版信息

Nucleic Acids Res. 2011 Dec;39(22):9768-78. doi: 10.1093/nar/gkr664. Epub 2011 Sep 2.

Abstract

Riboswitch RNAs fold into complex tertiary structures upon binding to their cognate ligand. Ligand recognition is accomplished by key residues in the binding pocket. In addition, it often crucially depends on the stability of peripheral structural elements. The ligand-bound complex of the guanine-sensing riboswitch from Bacillus subtilis, for example, is stabilized by extensive interactions between apical loop regions of the aptamer domain. Previously, we have shown that destabilization of this tertiary loop-loop interaction abrogates ligand binding of the G37A/C61U-mutant aptamer domain (Gsw(loop)) in the absence of Mg(2+). However, if Mg(2+) is available, ligand-binding capability is restored by a population shift of the ground-state RNA ensemble toward RNA conformations with pre-formed loop-loop interactions. Here, we characterize the striking influence of long-range tertiary structure on RNA folding kinetics and on ligand-bound complex structure, both by X-ray crystallography and time-resolved NMR. The X-ray structure of the ligand-bound complex reveals that the global architecture is almost identical to the wild-type aptamer domain. The population of ligand-binding competent conformations in the ground-state ensemble of Gsw(loop) is tunable through variation of the Mg(2+) concentration. We quantitatively describe the influence of distinct Mg(2+) concentrations on ligand-induced folding trajectories both by equilibrium and time-resolved NMR spectroscopy at single-residue resolution.

摘要

核糖开关 RNA 在与其互补配体结合时会折叠成复杂的三级结构。配体识别是通过结合口袋中的关键残基来完成的。此外,它通常还严重依赖于外围结构元件的稳定性。例如,枯草芽孢杆菌鸟嘌呤感应核糖开关的配体结合复合物通过适体结构域的顶端环区域之间的广泛相互作用得到稳定。以前,我们已经表明,在没有 Mg(2+)的情况下,破坏这种三级环-环相互作用会使 G37A/C61U 突变适体结构域(Gsw(loop))的配体结合丧失。然而,如果有 Mg(2+)存在,通过将基态 RNA 集合中的 RNA 构象向具有预先形成的环-环相互作用的构象转移,配体结合能力就会得到恢复。在这里,我们通过 X 射线晶体学和时间分辨 NMR 研究,描述了远程三级结构对 RNA 折叠动力学和配体结合复合物结构的显著影响。配体结合复合物的 X 射线结构表明,其整体结构几乎与野生型适体结构域相同。通过改变 Mg(2+)浓度,可以调节 Gsw(loop)在基态集合中具有配体结合能力的构象的比例。我们通过平衡和时间分辨 NMR 光谱以单残基分辨率定量描述了不同 Mg(2+)浓度对配体诱导折叠轨迹的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c859/3239184/1a24094e0c97/gkr664f1.jpg

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