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氨酰-tRNA合成酶中特异性决定结构基序与tRNA识别元件的共变

Covariation of a specificity-determining structural motif in an aminoacyl-tRNA synthetase and a tRNA identity element.

作者信息

Hawko S A, Francklyn C S

机构信息

Department of Biochemistry, University of Vermont, Health Sciences Complex, Burlington, Vermont 05405, USA.

出版信息

Biochemistry. 2001 Feb 20;40(7):1930-6. doi: 10.1021/bi0025316.

DOI:10.1021/bi0025316
PMID:11329259
Abstract

Transfer RNA (tRNA) identity determinants help preserve the specificity of aminoacylation in vivo, and prevent cross-species interactions. Here, we investigate covariation between the discriminator base (N73) element in histidine tRNAs and residues in the histidyl-tRNA synthetase (HisRS) motif 2 loop. A model of the Escherichia coli HisRS--tRNA(His) complex predicts an interaction between the prokaryotic conserved glutamine 118 of the motif 2 loop and cytosine 73. The substitution of Gln 118 in motif 2 with glutamate decreased discrimination between cytosine and uracil some 50-fold, but left overall rates of adenylation and aminoacylation unaffected. By contrast, substitutions at neighboring Glu 115 and Arg 121 affected both adenylation and aminoacylation, consistent with their predicted involvement in both half-reactions. Additional evidence for the involvement of the motif 2 loop was provided by functional analysis of a hybrid Saccharomyces cerevisiae-- E. coli HisRS possessing the 11 amino acid motif 2 loop of the yeast enzyme. Despite an overall decreased activity of nearly 1000-fold relative to the E. coli enzyme, the chimera nevertheless exhibited a modest preference for the yeast tRNA(His) over the E. coli tRNA, and preferred wild-type yeast tRNA(His) to a variant with C at the discriminator position. These experiments suggest that part of, but not all of, the specificity is provided by the motif 2 loop. The close interaction between enzyme loop and RNA sequence elements suggested by these experiments reflects a covariation between enzyme and tRNA that may have acted to preserve aminoacylation fidelity over evolutionary time.

摘要

转运RNA(tRNA)的身份决定因素有助于在体内保持氨酰化的特异性,并防止跨物种相互作用。在此,我们研究了组氨酸tRNA中的鉴别碱基(N73)元件与组氨酰-tRNA合成酶(HisRS)基序2环中的残基之间的共变关系。大肠杆菌HisRS - tRNA(His)复合物的模型预测,基序2环中保守的原核谷氨酰胺118与胞嘧啶73之间存在相互作用。将基序2中的谷氨酰胺118替换为谷氨酸,使胞嘧啶和尿嘧啶之间的鉴别能力降低了约50倍,但腺嘌呤化和氨酰化的总体速率未受影响。相比之下,相邻的谷氨酸115和精氨酸121的替换同时影响了腺嘌呤化和氨酰化,这与它们在两个半反应中的预测作用一致。对具有酵母酶11个氨基酸基序2环的酿酒酵母 - 大肠杆菌杂交HisRS进行功能分析,为基序2环的作用提供了额外证据。尽管相对于大肠杆菌酶,其总体活性降低了近1000倍,但该嵌合体对酵母tRNA(His)的偏好仍略高于大肠杆菌tRNA,并且更倾向于野生型酵母tRNA(His)而非鉴别位点为C的变体。这些实验表明,特异性的一部分而非全部由基序2环提供。这些实验所表明的酶环与RNA序列元件之间的紧密相互作用反映了酶与tRNA之间的共变关系,这种共变关系可能在进化过程中起到了保持氨酰化保真度的作用。

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