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酵母精氨酰-tRNA合成酶对L-精氨酸的识别

L-arginine recognition by yeast arginyl-tRNA synthetase.

作者信息

Cavarelli J, Delagoutte B, Eriani G, Gangloff J, Moras D

机构信息

UPR 9004 Biologie Structurale, Institut de Génétique et de Biologie Moléculaire et Cellulaire, CNRS/INSERM/ULP, BP 163, 67404 Illkirch Cedex, France.

出版信息

EMBO J. 1998 Sep 15;17(18):5438-48. doi: 10.1093/emboj/17.18.5438.

Abstract

The crystal structure of arginyl-tRNA synthetase (ArgRS) from Saccharomyces cerevisiae, a class I aminoacyl-tRNA synthetase (aaRS), with L-arginine bound to the active site has been solved at 2.75 A resolution and refined to a crystallographic R-factor of 19.7%. ArgRS is composed predominantly of alpha-helices and can be divided into five domains, including the class I-specific active site. The N-terminal domain shows striking similarity to some completely unrelated proteins and defines a module which should participate in specific tRNA recognition. The C-terminal domain, which is the putative anticodon-binding module, displays an all-alpha-helix fold highly similar to that of Escherichia coli methionyl-tRNA synthetase. While ArgRS requires tRNAArg for the first step of the aminoacylation reaction, the results show that its presence is not a prerequisite for L-arginine binding. All H-bond-forming capability of L-arginine is used by the protein for the specific recognition. The guanidinium group forms two salt bridge interactions with two acidic residues, and one H-bond with a tyrosine residue; these three residues are strictly conserved in all ArgRS sequences. This tyrosine is also conserved in other class I aaRS active sites but plays several functional roles. The ArgRS structure allows the definition of a new framework for sequence alignments and subclass definition in class I aaRSs.

摘要

酿酒酵母中I类氨酰-tRNA合成酶(aaRS)精氨酰-tRNA合成酶(ArgRS)与结合在活性位点的L-精氨酸的晶体结构已在2.75埃分辨率下解析,并精修至晶体学R因子为19.7%。ArgRS主要由α-螺旋组成,可分为五个结构域,包括I类特异性活性位点。N端结构域与一些完全不相关的蛋白质有显著相似性,并定义了一个应参与特定tRNA识别的模块。C端结构域是假定的反密码子结合模块,其呈现出与大肠杆菌甲硫氨酰-tRNA合成酶高度相似的全α-螺旋折叠。虽然ArgRS在氨酰化反应的第一步需要tRNAArg,但结果表明其存在不是L-精氨酸结合的先决条件。蛋白质利用L-精氨酸的所有形成氢键的能力进行特异性识别。胍基与两个酸性残基形成两个盐桥相互作用,并与一个酪氨酸残基形成一个氢键;这三个残基在所有ArgRS序列中都严格保守。这个酪氨酸在其他I类aaRS活性位点也保守,但发挥多种功能作用。ArgRS结构为I类aaRS中的序列比对和亚类定义提供了一个新框架。

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本文引用的文献

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