The crystal structures of the α-subunit of the α(2)β (2) tetrameric Glycyl-tRNA synthetase.

Kemin Tan, Min Zhou, Rongguang Zhang, Wayne F Anderson, Andrzej Joachimiak
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引用次数: 9

Abstract

Aminoacyl-tRNA synthetases (AARSs) are ligases (EC.6.1.1.-) that catalyze the acylation of amino acids to their cognate tRNAs in the process of translating genetic information from mRNA to protein. Their amino acid and tRNA specificity are crucial for correctly translating the genetic code. Glycine is the smallest amino acid and the glycyl-tRNA synthetase (GlyRS) belongs to Class II AARSs. The enzyme is unusual because it can assume different quaternary structures. In eukaryotes, archaebacteria and some bacteria, it forms an α(2) homodimer. In some bacteria, GlyRS is an α(2)β(2) heterotetramer and shows a distant similarity to α(2) GlyRSs. The human pathogen eubacterium Campylobacter jejuni GlyRS (CjGlyRS) is an α(2)β(2) heterotetramer and is similar to Escherichia coli GlyRS; both are members of Class IIc AARSs. The two-step aminoacylation reaction of tetrameric GlyRSs requires the involvement of both α- and β-subunits. At present, the structure of the GlyRS α(2)β(2) class and the details of the enzymatic mechanism of this enzyme remain unknown. Here we report the crystal structures of the catalytic α-subunit of CjGlyRS and its complexes with ATP, and ATP and glycine. These structures provide detailed information on substrate binding and show evidence for a proposed mechanism for amino acid activation and the formation of the glycyl-adenylate intermediate for Class II AARSs.

α(2)β(2)四聚体甘氨酸- trna合成酶α-亚基的晶体结构。
氨基酰基- trna合成酶(aars)是一种连接酶(EC.6.1.1.-),在将遗传信息从mRNA翻译成蛋白质的过程中,催化氨基酸酰化成其同源trna。它们的氨基酸和tRNA特异性对于正确翻译遗传密码至关重要。甘氨酸是最小的氨基酸,glyyl - trna合成酶(GlyRS)属于II类aars。这种酶是不寻常的,因为它可以呈现不同的四级结构。在真核生物、古细菌和一些细菌中,它形成α(2)同二聚体。在某些细菌中,GlyRS是α(2)β(2)异四聚体,与α(2) GlyRSs有一定的相似性。人致病菌空肠弯曲杆菌GlyRS (CjGlyRS)是一种α(2)β(2)异源四聚体,与大肠杆菌GlyRS相似;他们都是IIc类aars的成员。四聚体GlyRSs的两步氨基酰化反应需要α-和β-亚基的参与。目前,GlyRS α(2)β(2)类酶的结构和具体的酶促机制尚不清楚。本文报道了CjGlyRS的催化α-亚基及其与ATP、ATP与甘氨酸配合物的晶体结构。这些结构提供了底物结合的详细信息,并为II类aars的氨基酸激活和甘酰腺苷酸中间体形成的机制提供了证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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