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首页> 外文期刊>Journal of Molecular Biology >Catalytic defects in mutants of class II histidyl-tRNA synthetase from Salmonella typhimurium previously linked to decreased control of histidine biosynthesis regulation
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Catalytic defects in mutants of class II histidyl-tRNA synthetase from Salmonella typhimurium previously linked to decreased control of histidine biosynthesis regulation

机译:鼠伤寒沙门氏菌II类组氨酸-tRNA合成酶突变体中的催化缺陷,先前与组氨酸生物合成调节的控制降低有关

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The expression of histidine biosynthetic genes in enteric bacteria is regulated by an attenuation mechanism in which the level of histidyl-tRNA serves as a key sensor of the intracellular histidine pool. Among the early observations that led to the formation of this model for Salmonella typhimurium were the identification of mutants in the gene (hisS) encoding histidyl-tRNA synthetase. We report here the detailed biochemical characterization of five of these S. typhimurium bradytrophic mutants isolated by selection for resistance to histidine analogs, including identification of the deduced amino acid substitutions and determination of the resulting effects on the kinetics of adenylation and aminoacylation. Using the crystal structure of the closely related Escherichia coil histidyl-tRNA synthetase (HisRS) as a guide, two mutants were mapped to a highly conserved proline residue in motif 2 (P117S, P117Q), and were correlated with a fivefold decrease in the k(cat) for the pyrophosphate exchange reaction, as well as a tenfold increase in the K-m for tRNA in the aminoacylation reaction. Another mutant substitution (A302T) mapped to a residue adjacent to the histidine binding pocket, leading to a tenfold increase in K-m for histidine in the pyrophosphate exchange reaction. The remaining two mutants (S167F, N254T) substitute residues in or directly adjacent to the hinge region, which joins the insertion domain between motif 2 and motif 3 to the catalytic core, and cause the K-m for tRNA to increase four- to tenfold. The kinetic analysis of these mutants establishes a direct link between critical interactions within the active site of HisRS and regulation of histidine biosynthesis, and provides further evidence for the importance of local conformational changes during the catalytic cycle. (C) 1998 Academic Press. [References: 58]
机译:肠杆菌中组氨酸生物合成基因的表达受减毒机制的调节,在这种机制中,组氨酸-tRNA的水平是细胞内组氨酸池的关键传感器。导致鼠伤寒沙门氏菌建立该模型的早期观察结果包括鉴定编码组氨酸-tRNA合成酶的基因(hisS)中的突变体。我们在此报告了通过选择对组氨酸类似物的抗性而分离出的五个这些鼠伤寒沙门氏菌营养不良突变体的五个详细的生化特征,包括鉴定推导的氨基酸取代以及确定对腺苷酸化和氨基酰化动力学的影响。以密切相关的大肠埃希氏菌组氨酸-tRNA合成酶(HisRS)的晶体结构为指导,将两个突变体定位到基序2(P117S,P117Q)中高度保守的脯氨酸残基,并将其与k降低5倍相关(cat)用于焦磷酸盐交换反应,以及氨酰化反应中tRNA的Km增加十倍。另一个突变体置换(A302T)定位到与组氨酸结合袋相邻的残基,导致焦磷酸交换反应中组氨酸的K-m增加十倍。剩下的两个突变体(S167F,N254T)取代铰链区中或紧邻铰链区的残基,该残基将基序2和基序3之间的插入域连接到催化核心,并使tRNA的K-m增加四至十倍。这些突变体的动力学分析建立了HisRS活性位点内的关键相互作用与组氨酸生物合成调节之间的直接联系,并为催化循环过程中局部构象变化的重要性提供了进一步的证据。 (C)1998年学术出版社。 [参考:58]

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