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大肠杆菌核糖核酸酶E催化结构域的结构及其对RNA周转的影响。

Structure of Escherichia coli RNase E catalytic domain and implications for RNA turnover.

作者信息

Callaghan Anastasia J, Marcaida Maria Jose, Stead Jonathan A, McDowall Kenneth J, Scott William G, Luisi Ben F

机构信息

Department of Biochemistry, University of Cambridge, 80 Tennis Court Road, Cambridge CB2 1GA, UK.

出版信息

Nature. 2005 Oct 20;437(7062):1187-91. doi: 10.1038/nature04084.

Abstract

The coordinated regulation of gene expression is required for homeostasis, growth and development in all organisms. Such coordination may be partly achieved at the level of messenger RNA stability, in which the targeted destruction of subsets of transcripts generates the potential for cross-regulating metabolic pathways. In Escherichia coli, the balance and composition of the transcript population is affected by RNase E, an essential endoribonuclease that not only turns over RNA but also processes certain key RNA precursors. RNase E cleaves RNA internally, but its catalytic power is determined by the 5' terminus of the substrate, even if this lies at a distance from the cutting site. Here we report crystal structures of the catalytic domain of RNase E as trapped allosteric intermediates with RNA substrates. Four subunits of RNase E catalytic domain associate into an interwoven quaternary structure, explaining why the subunit organization is required for catalytic activity. The subdomain encompassing the active site is structurally congruent to a deoxyribonuclease, making an unexpected link in the evolutionary history of RNA and DNA nucleases. The structure explains how the recognition of the 5' terminus of the substrate may trigger catalysis and also sheds light on the question of how RNase E might selectively process, rather than destroy, specific RNA precursors.

摘要

基因表达的协调调控是所有生物体维持体内平衡、生长和发育所必需的。这种协调可以部分地在信使核糖核酸(mRNA)稳定性水平上实现,其中转录本子集的靶向破坏产生了交叉调节代谢途径的潜力。在大肠杆菌中,转录本群体的平衡和组成受核糖核酸酶E(RNase E)影响,RNase E是一种必需的内切核糖核酸酶,不仅能使RNA周转,还能加工某些关键的RNA前体。RNase E在RNA内部切割,但它的催化能力由底物的5'末端决定,即使该末端距离切割位点有一段距离。在这里,我们报告了RNase E催化结构域与RNA底物形成别构中间体时的晶体结构。RNase E催化结构域的四个亚基缔合形成交织的四级结构,解释了为什么亚基组织是催化活性所必需的。包含活性位点的亚结构域在结构上与脱氧核糖核酸酶一致,这在RNA和DNA核酸酶的进化史上建立了意想不到的联系。该结构解释了对底物5'末端的识别如何触发催化作用,也阐明了RNase E如何选择性地加工而非破坏特定RNA前体的问题。

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