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首页> 外文期刊>Journal of Molecular Biology >Solution structure of an archaeal RNase P binary protein complex: formation of the 30-kDa complex between Pyrococcus furiosus RPP21 and RPP29 is accompanied by coupled protein folding and highlights critical features for protein-protein and protein-RNA interactions.
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Solution structure of an archaeal RNase P binary protein complex: formation of the 30-kDa complex between Pyrococcus furiosus RPP21 and RPP29 is accompanied by coupled protein folding and highlights critical features for protein-protein and protein-RNA interactions.

机译:古细菌RNase P二元蛋白质复合物的溶液结构:激烈热球菌RPP21和RPP29之间30-kDa复合物的形成伴随着蛋白质折叠,并突出了蛋白质-蛋白质和蛋白质-RNA相互作用的关键特征。

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Ribonuclease P (RNase P) is a ribonucleoprotein (RNP) enzyme that catalyzes the Mg(2+)-dependent 5' maturation of precursor tRNAs. In all domains of life, it is a ribozyme: the RNase P RNA (RPR) component has been demonstrated to be responsible for catalysis. However, the number of RNase P protein subunits (RPPs) varies from 1 in bacteria to 9 or 10 in eukarya. The archaeal RPR is associated with at least 4 RPPs, which function in pairs (RPP21-RPP29 and RPP30-POP5). We used solution NMR spectroscopy to determine the three-dimensional structure of the protein-protein complex comprising Pyrococcus furiosus RPP21 and RPP29. We found that the protein-protein interaction is characterized by coupled folding of secondary structural elements that participate in interface formation. In addition to detailing the intermolecular contacts that stabilize this 30-kDa binary complex, the structure identifies surfaces rich in conserved basic residues likely vital for recognition of the RPR and/or precursor tRNA. Furthermore, enzymatic footprinting experiments allowed us to localize the RPP21-RPP29 complex to the specificity domain of the RPR. These findings provide valuable new insights into mechanisms of RNP assembly and serve as important steps towards a three-dimensional model of this ancient RNP enzyme.
机译:核糖核酸酶P(RNase P)是一种核糖核蛋白(RNP)酶,可催化前体tRNA的Mg(2+)依赖性5'成熟。在生活的所有领域,它都是核酶:RNase P RNA(RPR)成分已被证明是催化作用的原因。但是,RNase P蛋白亚基(RPP)的数量从细菌中的1到真核生物中的9或10不等。古细菌RPR与至少4个成对起作用的RPP(RPP21-RPP29和RPP30-POP5)相关。我们使用溶液NMR光谱法确定包含激烈热球菌RPP21和RPP29的蛋白质-蛋白质复合物的三维结构。我们发现蛋白质-蛋白质相互作用的特征在于参与界面形成的二级结构元件的折叠结合。除了详细说明可稳定此30 kDa二元复合物的分子间接触外,该结构还鉴定了富含保守碱性残基的表面,这些表面可能对RPR和/或前体tRNA的识别至关重要。此外,酶足迹实验使我们能够将RPP21-RPP29复合体定位到RPR的特异性域。这些发现为RNP组装机制提供了有价值的新见解,并且是迈向此古老RNP酶三维模型的重要步骤。

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