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S1结构域在核酸外切酶活性中的作用:底物特异性与多聚化

The role of the S1 domain in exoribonucleolytic activity: substrate specificity and multimerization.

作者信息

Amblar Mónica, Barbas Ana, Gomez-Puertas Paulino, Arraiano Cecília M

机构信息

Instituto de Tecnologia Química e Biológica/Universidade Nova de Lisboa, Oeiras, Portugal.

出版信息

RNA. 2007 Mar;13(3):317-27. doi: 10.1261/rna.220407. Epub 2007 Jan 22.

Abstract

RNase II is a 3'-5' exoribonuclease that processively hydrolyzes single-stranded RNA generating 5' mononucleotides. This enzyme contains a catalytic core that is surrounded by three RNA-binding domains. At its C terminus, there is a typical S1 domain that has been shown to be critical for RNA binding. The S1 domain is also present in the other major 3'-5' exoribonucleases from Escherichia coli: RNase R and polynucleotide phosphorylase (PNPase). In this report, we examined the involvement of the S1 domain in the different abilities of these three enzymes to overcome RNA secondary structures during degradation. Hybrid proteins were constructed by replacing the S1 domain of RNase II for the S1 from RNase R and PNPase, and their exonucleolytic activity and RNA-binding ability were examined. The results revealed that both the S1 domains of RNase R and PNPase are able to partially reverse the drop of RNA-binding ability and exonucleolytic activity resulting from removal of the S1 domain of RNase II. Moreover, the S1 domains investigated are not equivalent. Furthermore, we demonstrate that S1 is neither responsible for the ability to overcome secondary structures during RNA degradation, nor is it related to the size of the final product generated by each enzyme. In addition, we show that the S1 domain from PNPase is able to induce the trimerization of the RNaseII-PNP hybrid protein, indicating that this domain can have a role in the biogenesis of multimers.

摘要

核糖核酸酶II是一种3'-5'外切核糖核酸酶,它能持续水解单链RNA,生成5'单核苷酸。这种酶含有一个催化核心,周围环绕着三个RNA结合结构域。在其C末端,有一个典型的S1结构域,已证明该结构域对RNA结合至关重要。S1结构域也存在于大肠杆菌的其他主要3'-5'外切核糖核酸酶中:核糖核酸酶R和多核苷酸磷酸化酶(PNPase)。在本报告中,我们研究了S1结构域在这三种酶降解过程中克服RNA二级结构的不同能力中的作用。通过用核糖核酸酶R和PNPase的S1结构域替换核糖核酸酶II的S1结构域构建了杂合蛋白,并检测了它们的外切核酸酶活性和RNA结合能力。结果表明,核糖核酸酶R和PNPase的S1结构域都能够部分逆转因去除核糖核酸酶II的S1结构域而导致的RNA结合能力和外切核酸酶活性的下降。此外,所研究的S1结构域并不等同。此外,我们证明S1既不负责RNA降解过程中克服二级结构的能力,也与每种酶产生的最终产物大小无关。此外,我们表明PNPase的S1结构域能够诱导核糖核酸酶II-PNP杂合蛋白的三聚化,表明该结构域可能在多聚体的生物合成中起作用。

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