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工程化和天然氨酰-tRNA 合成酶合成 Glu-tRNA(Gln)。

Synthesis of Glu-tRNA(Gln) by engineered and natural aminoacyl-tRNA synthetases.

机构信息

Department of Chemistry and Biochemistry and Interdepartmental Program in Biomolecular Science and Engineering, University of California, Santa Barbara, California 93106-9510, USA.

出版信息

Biochemistry. 2010 Aug 10;49(31):6727-36. doi: 10.1021/bi100886z.

Abstract

A protein engineering approach to delineating which distinct elements of homologous tRNA synthetase architectures are responsible for divergent RNA-amino acid pairing specificities is described. Previously, we constructed a hybrid enzyme in which 23 amino acids from the catalytic domain of Escherichia coli glutaminyl-tRNA synthetase (GlnRS) were replaced with the corresponding residues of human glutamyl-tRNA synthetase (GluRS). The engineered hybrid (GlnRS S1/L1/L2) synthesizes Glu-tRNA(Gln) more than 10(4)-fold more efficiently than GlnRS. Detailed comparison of kinetic parameters between GlnRS S1/L1/L2 and the naturally occurring Methanothermobacter thermautotrophicus GluRS(ND), which is also capable of Glu-tRNA(Gln) synthesis, now shows that both k(cat) and K(m) for glutamate are recapitulated in the engineered enzyme, but that K(m) for tRNA is 200-fold higher. Thus, the simultaneous optimization of paired amino acid and tRNA binding sites found in a naturally occurring enzyme is not recapitulated in a hybrid that is successfully engineered for amino acid complementarity. We infer that the GlnRS architecture has differentiated to match only cognate amino acid-RNA pairs, and that the substrate selection functions do not operate independently of each other. Design and characterization of four additional hybrids identify further residues involved in improving complementarity for glutamate and in communicating between amino acid and tRNA binding sites. The robust catalytic function demonstrated in this engineered system offers a novel platform for exploring the stereochemical origins of coding as a property of the ancient Rossmann fold.

摘要

一种蛋白质工程方法被用来描绘同源 tRNA 合成酶结构的哪些不同元素负责不同的 RNA-氨基酸配对特异性。此前,我们构建了一种杂合酶,其中来自大肠杆菌谷氨酰-tRNA 合成酶(GlnRS)催化结构域的 23 个氨基酸被人源谷氨酸-tRNA 合成酶(GluRS)的相应残基取代。该工程杂合酶(GlnRS S1/L1/L2)合成 Glu-tRNA(Gln)的效率比 GlnRS 高 10(4)倍以上。现在,对 GlnRS S1/L1/L2 和天然产的产甲烷菌热原体谷氨酸-tRNA 合成酶(ND)之间的动力学参数进行详细比较,该酶也能够合成 Glu-tRNA(Gln),结果表明在工程酶中同时再现了谷氨酸的 k(cat)和 K(m),但 tRNA 的 K(m)高 200 倍。因此,在成功用于氨基酸互补性工程的杂合酶中,没有再现天然酶中配对的氨基酸和 tRNA 结合位点的同时优化。我们推断,GlnRS 结构已经分化,只匹配同源的氨基酸-RNA 对,并且底物选择功能不是相互独立的。另外四个杂合酶的设计和特性鉴定进一步确定了参与提高谷氨酸互补性和在氨基酸和 tRNA 结合位点之间进行通信的残基。在这个工程系统中表现出的强大催化功能为探索编码作为古老的 Rossmann 折叠特性的立体化学起源提供了一个新的平台。

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