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手枪核酶的分子模拟:统一实验数据的解释,并与锤头核酶建立功能联系。

Molecular simulations of the pistol ribozyme: unifying the interpretation of experimental data and establishing functional links with the hammerhead ribozyme.

机构信息

Laboratory for Biomolecular Simulation Research, Institute for Quantitative Biomedicine, and Department of Chemistry & Chemical Biology, Rutgers University, Piscataway, New Jersey 08854-8076, USA.

出版信息

RNA. 2019 Nov;25(11):1439-1456. doi: 10.1261/rna.071944.119. Epub 2019 Jul 30.

Abstract

The pistol ribozyme (Psr) is among the most recently discovered RNA enzymes and has been the subject of experiments aimed at elucidating the mechanism. Recent biochemical studies have revealed exciting clues about catalytic interactions in the active site not apparent from available crystallographic data. The present work unifies the interpretation of the existing body of structural and functional data on Psr by providing a dynamical model for the catalytically active state in solution from molecular simulation. Our results suggest that a catalytic Mg ion makes inner-sphere contact with G33:N7 and outer-sphere coordination to the pro- of the scissile phosphate, promoting electrostatic stabilization of the dianionic transition state and neutralization of the developing charge of the leaving group through a metal-coordinated water molecule that is made more acidic by a hydrogen bond donated from the 2'OH of P32. This model is consistent with experimental activity-pH and mutagenesis data, including sensitivity to G33(7cG) and phosphorothioate substitution/metal ion rescue. The model suggests several experimentally testable predictions, including the response of cleavage activity to mutations at G42 and P32 positions in the ribozyme, and thio substitutions of the substrate in the presence of different divalent metal ions. Further, the model identifies striking similarities of Psr to the hammerhead ribozyme (HHr), including similar global fold, organization of secondary structure around an active site three-way junction, catalytic metal ion binding mode, and guanine general base. However, the specific binding mode and role of the Mg ion, as well as a conserved 2'-OH in the active site, are interrelated but subtly different between the ribozymes.

摘要

手枪核酶(Psr)是最近发现的 RNA 酶之一,也是旨在阐明其机制的实验的主题。最近的生化研究揭示了关于活性部位催化相互作用的令人兴奋的线索,这些线索在可用的晶体学数据中并不明显。本工作通过从分子模拟提供催化活性状态的动力学模型,统一了解释现有 Psr 结构和功能数据的方法。我们的结果表明,一个催化 Mg 离子与 G33:N7 形成内球接触,并与切口磷酸的前体进行外球配位,通过与金属配位的水分子促进阴离子过渡态的静电稳定,该水分子通过来自 P32 的 2'OH 的氢键供体变得更酸性,从而中和离去基团的发展电荷。该模型与实验活性-pH 和诱变数据一致,包括对 G33(7cG)和硫代磷酸酯取代/金属离子拯救的敏感性。该模型提出了几个可通过实验检验的预测,包括在核酶中 G42 和 P32 位置突变对切割活性的响应,以及在不同二价金属离子存在下底物的硫代取代。此外,该模型表明 Psr 与锤头核酶(HHr)具有惊人的相似性,包括相似的整体折叠、活性部位三向连接点周围二级结构的组织、催化金属离子结合模式和鸟嘌呤通用碱基。然而,在核酶之间,Mg 离子的特定结合模式和作用以及活性部位中的保守 2'-OH 是相互关联但略有不同的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0627/6795133/34637c53be81/1439f02.jpg

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