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大肠杆菌核糖核酸酶E N端结构域催化参数的测定及RNA底物中关键功能基团的鉴定

Determination of the catalytic parameters of the N-terminal half of Escherichia coli ribonuclease E and the identification of critical functional groups in RNA substrates.

作者信息

Redko Yulia, Tock Mark R, Adams Chris J, Kaberdin Vladimir R, Grasby Jane A, McDowall Kenneth J

机构信息

Astbury Centre for Structural Molecular Biology, Faculty of Biological Sciences, University of Leeds, Manton Building, LS2 9JT Leeds, United Kingdom.

出版信息

J Biol Chem. 2003 Nov 7;278(45):44001-8. doi: 10.1074/jbc.M306760200. Epub 2003 Aug 27.

DOI:10.1074/jbc.M306760200
PMID:12947103
Abstract

Ribonuclease E is required for the rapid decay and correct processing of RNA in Escherichia coli. A detailed understanding of the hydrolysis of RNA by this and related enzymes will require the integration of structural and molecular data with quantitative measurements of RNA hydrolysis. Therefore, an assay for RNaseE that can be set up to have relatively high throughput while being sensitive and quantitative will be advantageous. Here we describe such an assay, which is based on the automated high pressure liquid chromatography analysis of fluorescently labeled RNA samples. We have used this assay to optimize reaction conditions, to determine for the first time the catalytic parameters for a polypeptide of RNaseE, and to investigate the RNaseE-catalyzed reaction through the modification of functional groups within an RNA substrate. We find that catalysis is dependent on both protonated and unprotonated functional groups and that the recognition of a guanosine sequence determinant that is upstream of the scissile bond appears to consist of interactions with the exocyclic 2-amino group, the 7N of the nucleobase and the imino proton or 6-keto group. Additionally, we find that a ribose-like sugar conformation is preferred in the 5'-nucleotide of the scissile phosphodiester bond and that a 2'-hydroxyl group proton is not essential. Steric bulk at the 2' position in the 5'-nucleotide appears to be inhibitory to the reaction. Combined, these observations establish a foundation for the functional interpretation of a three-dimensional structure of the catalytic domain of RNaseE when solved.

摘要

核糖核酸酶E是大肠杆菌中RNA快速降解和正确加工所必需的。要详细了解这种酶及相关酶对RNA的水解作用,需要将结构和分子数据与RNA水解的定量测量相结合。因此,建立一种灵敏且定量、同时具有相对高通量的核糖核酸酶E检测方法将很有优势。在此,我们描述了这样一种检测方法,它基于对荧光标记RNA样品的自动高压液相色谱分析。我们已使用该检测方法来优化反应条件,首次确定核糖核酸酶E一个多肽的催化参数,并通过修饰RNA底物中的官能团来研究核糖核酸酶E催化的反应。我们发现催化作用既依赖于质子化的官能团,也依赖于未质子化的官能团,并且对切割键上游鸟苷序列决定簇的识别似乎包括与环外2-氨基、核碱基的7N以及亚氨基质子或6-酮基的相互作用。此外,我们发现切割磷酸二酯键5'-核苷酸中类似核糖的糖构象是优选的,并且2'-羟基质子并非必不可少。5'-核苷酸2'位的空间位阻似乎对反应有抑制作用。综合这些观察结果,为解析核糖核酸酶E催化结构域的三维结构时进行功能解释奠定了基础。

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