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外切核糖核酸酶RNase R的底物识别与催化作用。

Substrate recognition and catalysis by the exoribonuclease RNase R.

作者信息

Vincent Helen A, Deutscher Murray P

机构信息

Department of Biochemistry and Molecular Biology, University of Miami School of Medicine, Miami, Florida 33101, USA.

出版信息

J Biol Chem. 2006 Oct 6;281(40):29769-75. doi: 10.1074/jbc.M606744200. Epub 2006 Aug 7.

Abstract

RNase R is a processive, 3' to 5' hydrolytic exoribonuclease that together with polynucleotide phosphorylase plays an important role in the degradation of structured RNAs. However, RNase R differs from other exoribonucleases in that it can by itself degrade RNAs with extensive secondary structure provided that a single-stranded 3' overhang is present. Using a variety of specifically designed substrates, we show here that a 3' overhang of at least 7 nucleotides is required for tight binding and activity, whereas optimum binding and activity are achieved when the overhang is 10 or more nucleotides in length. In contrast, duplex RNAs with no overhang or with a 4-nucleotide overhang bind extremely poorly to RNase R and are inactive as substrates. A duplex RNA with a 10-nucleotide 5' overhang also is not a substrate. Interestingly, this molecule is bound only weakly, indicating that RNase R does not simply recognize single-stranded RNA, but the RNA must thread into the enzyme with 3' to 5' polarity. We also show that ribose moieties are required for recognition of the substrate as a whole since RNase R is unable to bind or degrade single-stranded DNA. However, RNA molecules with deoxyribose or dideoxyribose residues at their 3' termini can be bound and degraded. Based on these data and a homology model of RNase R, derived from the structure of the closely related enzyme, RNase II, we present a model for how RNase R interacts with its substrates and degrades RNA.

摘要

核糖核酸酶R是一种具有连续性的3'至5'水解外切核糖核酸酶,它与多核苷酸磷酸化酶共同在结构化RNA的降解过程中发挥重要作用。然而,核糖核酸酶R与其他外切核糖核酸酶的不同之处在于,只要存在单链3'端突出,它自身就能降解具有广泛二级结构的RNA。通过使用各种专门设计的底物,我们在此表明,紧密结合和活性需要至少7个核苷酸的3'端突出,而当突出长度为10个或更多核苷酸时,可实现最佳结合和活性。相比之下,没有突出或具有4个核苷酸突出的双链RNA与核糖核酸酶R的结合极差,并且作为底物无活性。具有10个核苷酸5'端突出的双链RNA也不是底物。有趣的是,该分子仅弱结合,这表明核糖核酸酶R不仅仅识别单链RNA,而是RNA必须以3'至5'的极性穿入酶中。我们还表明,由于核糖核酸酶R无法结合或降解单链DNA,因此识别整个底物需要核糖部分。然而,在其3'末端具有脱氧核糖或双脱氧核糖残基的RNA分子可以被结合并降解。基于这些数据以及从密切相关的酶核糖核酸酶II的结构推导而来的核糖核酸酶R的同源模型,我们提出了一个关于核糖核酸酶R如何与其底物相互作用并降解RNA的模型。

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