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首页> 外文期刊>RNA >Structure-function analysis of Sua5 protein reveals novel functional motifs required for the biosynthesis of the universal t(6) A tRNA modification
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Structure-function analysis of Sua5 protein reveals novel functional motifs required for the biosynthesis of the universal t(6) A tRNA modification

机译:SUA5蛋白的结构函数分析显示了通用T(6)的生物合成所需的新型功能基序

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摘要

N-6-threonyl-carbamoyl adenosine (t(6)A) is a universal tRNA modification found at position 37, next to the anticodon, in almost all tRNAs decoding ANN codons (where N = A, U, G, or C). t(6)A stabilizes the codon-anticodon interaction and hence promotes translation fidelity. The first step of the biosynthesis of t(6)A, the production of threonyl-carbamoyl adenylate (TC-AMP), is catalyzed by the Sua5/TsaC family of enzymes. While TsaC is a single domain protein, Sua5 enzymes are composed of the TsaC-like domain, a linker and an extra domain called SUA5 of unknown function. In the present study, we report structure- function analysis of Pyrococcus abyssi Sua5 (Pa-Sua5). Crystallographic data revealed binding sites for bicarbonate substrate and pyrophosphate product. The linker of Pa-Sua5 forms a loop structure that folds into the active site gorge and closes it. Using structure-guided mutational analysis, we established that the conserved sequence motifs in the linker and the domain- domain interface are essential for the function of Pa-Sua5. We propose that the linker participates actively in the biosynthesis of TC-AMP by binding to ATP/PPi and by stabilizing the N-carboxy-L-threonine intermediate. Hence, TsaC orthologs which lack such a linker and SUA5 domain use a different mechanism for TC-AMP synthesis.
机译:N-6-苏氨基 - 氨基甲酰腺苷(T(6)a)是在邻近抗逆信的位置37处发现的通用TRNA修饰,几乎所有TRNA解码子密码子(其中n = a,u,g或c) 。 T(6)稳定密码子 - 反致相互作用,从而促进翻译保真度。 T(6)A的生物合成的第一步,苏氨基 - 氨基甲酰化物(TC-AMP)的生产,由SUA5 / TSAC系列酶催化。虽然TSAC是单个结构域蛋白质,但SUA5酶由TSAC样结构域,连接器和称为SUA5的额外域组成。在本研究中,我们报告了发酵酵母SUA5(PA-SUA5)的结构 - 函数分析。结晶数据揭示了碳酸氢盐底物和焦磷酸产物的结合位点。 PA-SUA5的连接器形成环形结构,该结构折叠到有源位置峡谷中并关闭它。使用结构引导的突变分析,我们建立了连接器中的保守序列图案和域域界面对于PA-SUA5的功能至关重要。我们提出通过与ATP / PPI结合并通过稳定N-羧基-L-苏氨酸中间体,主动参与TC-AMP的生物合成中的生物合成参与。因此,缺乏这种接头和SUA5结构域的TSAC矫形器使用不同的TC-AMP合成机制。

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