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The tRNA-dependent activation of arginine by arginyl-tRNA synthetase requires inter-domain communication

机译:精氨酸-tRNA合成酶对精氨酸的tRNA依赖性激活需要域间通讯

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The tRNA-dependent amino acid activation catalyzed by mammalian arginyl-tRNA synthetase has been characterized. A conditional lethal mutant of Chinese hamster ovary cells that exhibits reduced arginyl-tRNA synthetase activity (Arg-1), and two of its derived revertants (Arg-1R4 and Arg-1R5) were analyzed at the structural and functional levels. A single nucleotide change, resulting in a Cys to Tyr substitution at position 599 of arginyl-tRNA synthetase, is responsible for the defective phenotype of the thermosensitive and arginine hyper-auxotroph Arg-1 cell line. The two revertants have a single additional mutation resulting in a Met222 to lie change for Arg-1R4 or a Tyr506 to Ser change for Arg-1R5. The corresponding mutant enzymes were expressed in yeast and purified. The Cys599 to Tyr mutation affects both the thermal stability of arginyl-tRNA synthetase and the kinetic parameters for arginine in the ATP-PPi exchange and tRNA aminoacylation reactions. This mutation is located underneath the floor of the Rossmann fold catalytic domain characteristic of class 1 aminoacyl-tRNA synthetases, near the end of a long helix belonging to the a-helix bundle C-terminal domain distinctive of class la synthetases. For the Met222 to Ile revertant, there is very little effect of the mutation on the interaction of arginyl-tRNA synthetase with either of its substrates. However, this mutation increases the thermal stability of arginyl-tRNA synthetase, thereby leading to reversion of the thermosensitive phenotype by increasing the steady-state level of the enzyme in vivo. In contrast, for the Arg-1R5 cell line, reversion of the phenotype is due to an increased catalytic efficiency of the C599Y/Y506S double mutant as compared to the initial C599Y enzyme. Ln light of the location of the mutations in the 3D structure of the enzyme modeled using the crystal structure of the closely related yeast arginyl-tRNA synthetase, the kinetic analysis of these mutants suggests that the obligatory tRNA-induced activation of the catalytic site of arginyl-tRNA synthetase involves interdomain signal transduction via the long helices that build the tRNA-binding domain of the enzyme and link the site of interaction of the anticodon domain of tRNA to the floor of the active site. (C) 2000 Academic Press. [References: 51]
机译:已经表征了由哺乳动物精氨酸-tRNA合成酶催化的tRNA依赖性氨基酸活化。在结构和功能水平上分析了中国仓鼠卵巢细胞的条件致死突变体,其精氨酸-tRNA合成酶活性降低(Arg-1),并且衍生了其中两个衍生突变体(Arg-1R4和Arg-1R5)。导致精氨酸-tRNA合成酶在599位的Cys变为Tyr取代的单个核苷酸变化,是热敏和精氨酸超营养缺陷型Arg-1细胞系的缺陷表型的原因。这两个回复子具有一个单独的额外突变,导致Arg-1R4的Met222发生变异,而Arg-1R5的Tyr506发生Ser变异。相应的突变酶在酵母中表达并纯化。从Cys599到Tyr的突变会影响精氨酸-tRNA合成酶的热稳定性以及ATP-PPi交换和tRNA氨酰化反应中精氨酸的动力学参数。该突变位于1类氨酰基-tRNA合成酶特征的Rossmann折叠催化结构域的底下,靠近属于1a类合成酶的α-螺旋束C-末端结构域的长螺旋的末端。对于Met222到Ile还原剂,该突变对精氨酰-tRNA合成酶与其任一底物相互作用的影响很小。然而,这种突变增加了精氨酰-tRNA合成酶的热稳定性,从而通过增加体内酶的稳态水平而导致热敏表型的逆转。相反,对于Arg-1R5细胞系,表型的回复归因于与初始C599Y酶相比,C599Y / Y506S双突变体的催化效率提高。根据使用紧密相关的酵母精氨酰-tRNA合成酶的晶体结构建模的酶的3D结构中突变的位置,对这些突变体的动力学分析表明,tRNA诱导了精氨酸催化位点的强制性激活-tRNA合成酶涉及通过长螺旋的域间信号转导,长螺旋构建了酶的tRNA结合结构域,并将tRNA的反密码子结构域的相互作用位点连接到活性位点的底部。 (C)2000学术出版社。 [参考:51]

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