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嗜热古菌嗜热栖热袍菌OT3中核糖核酸酶P的三维模型。

A three-dimensional model of RNase P in the hyperthermophilic archaeon Pyrococcus horikoshii OT3.

作者信息

Gao Xuzhu, Oshima Kosuke, Ueda Toshifumi, Nakashima Takashi, Kimura Makoto

机构信息

Laboratory of Structural Biology, Graduate School of Systems Life Sciences, Hakozaki 6-10-1, Fukuoka, 812-8581, Japan.

Laboratory of Biochemistry, Department of Bioscience and Biotechnology, Graduate School, Faculty of Agriculture, Kyushu University, Hakozaki 6-10-1, Fukuoka, 812-8581, Japan.

出版信息

Biochem Biophys Res Commun. 2017 Nov 18;493(2):1063-1068. doi: 10.1016/j.bbrc.2017.09.085. Epub 2017 Sep 19.

Abstract

Ribonuclease P (RNase P) is an endoribonuclease involved in maturation of the 5'-end of tRNA. We found previously that RNase P in the hyperthermophilic archaeon Pyrococcus horikoshii OT3 consists of a catalytic RNase P RNA (PhopRNA) and five protein cofactors designated PhoPop5, PhoRpp21, PhoRpp29, PhoRpp30, and PhoRpp38. The crystal structures of the five proteins have been determined, a three-dimensional (3-D) model of PhopRNA has been constructed, and biochemical data, including protein-RNA interaction sites, have become available. Here, this information was combined to orient the crystallographic structures of the proteins relative to their RNA binding sites in the PhopRNA model. Some alterations were made to the PhopRNA model to improve the fit. In the resulting structure, a heterotetramer composed of PhoPop5 and PhoRpp30 bridges helices P3 and P16 in the PhopRNA C-domain, thereby probably stabilizing a double-stranded RNA structure (helix P4) containing catalytic Mg ions, while a heterodimer of PhoRpp21 and PhoRpp29 locates on a single-stranded loop connecting helices P11 and P12 in the specificity domain (S-domain) in PhopRNA, probably forming an appropriate conformation of the precursor tRNA (pre-tRNA) binding site. The fifth protein PhoRpp38 binds each kink-turn (K-turn) motif in helices P12.1, P12.2, and P16 in PhopRNA. Comparison of the structure of the resulting 3-D model with that of bacterial RNase P suggests transition from RNA-RNA interactions in bacterial RNase P to protein-RNA interactions in archaeal RNase P. The proposed 3-D model of P. horikoshii RNase P will serve as a framework for further structural and functional studies on archaeal, as well as eukaryotic, RNase Ps.

摘要

核糖核酸酶P(RNase P)是一种参与tRNA 5'端成熟的内切核糖核酸酶。我们之前发现,嗜热古菌火之球菌OT3中的RNase P由催化性的RNase P RNA(PhopRNA)和五个蛋白质辅因子组成,分别命名为PhoPop5、PhoRpp21、PhoRpp29、PhoRpp30和PhoRpp38。这五种蛋白质的晶体结构已被确定,PhopRNA的三维(3-D)模型已构建完成,包括蛋白质-RNA相互作用位点在内的生化数据也已可得。在此,将这些信息结合起来,以确定蛋白质的晶体结构相对于它们在PhopRNA模型中的RNA结合位点的方向。对PhopRNA模型进行了一些修改以提高契合度。在最终的结构中,由PhoPop5和PhoRpp30组成的异源四聚体连接PhopRNA C结构域中的螺旋P3和P16,从而可能稳定包含催化性镁离子的双链RNA结构(螺旋P4),而PhoRpp21和PhoRpp29的异源二聚体位于PhopRNA特异性结构域(S结构域)中连接螺旋P11和P12的单链环上,可能形成前体tRNA(pre-tRNA)结合位点的合适构象。第五种蛋白质PhoRpp38与PhopRNA中螺旋P12.1、P12.2和P16中的每个扭结转角(K-turn)基序结合。将所得3-D模型的结构与细菌RNase P的结构进行比较,表明从细菌RNase P中的RNA-RNA相互作用转变为古菌RNase P中的蛋白质-RNA相互作用。所提出的火之球菌RNase P的3-D模型将作为进一步研究古菌以及真核生物RNase P的结构和功能的框架。

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