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面包酵母氨酰 - tRNA合成酶的水解作用:“化学校对”可防止tRNA(I1e)被错误激活的缬氨酸酰化。

Hydrolytic action of aminoacyl-tRNA synthetases from baker's yeast: "chemical proofreading" preventing acylation of tRNA(I1e) with misactivated valine.

作者信息

von der Haar F, Cramer F

出版信息

Biochemistry. 1976 Sep 7;15(18):4131-8. doi: 10.1021/bi00663a034.

Abstract

Phe-tRNAPhe-C-C-A, Val-tRNAVal-C-C-A, and Ile-tRNAIle-C-C-A, which accept their amino acid on the 2'-OH of the 3'-terminal adenosine, are hydrolyzed readily by their aminoacyl-tRNA synthetase. If the 3'terminal adenosine in these tRNAs is replaced by either 3'-deoxyadenosine or formycin, little if any hydrolysis can be observed. Correspondingly Ser-tRNASer-C-C-A which accepts serine on the 3'-OH of the 3'-terminal adenosine is hydrolyzed by seryl-tRNA synthetase, whereas Ser-tRNASer-C-C-2'dA and Ser-tRNASer-C-C-F are not. Tyr-tRNATyr-C-C-A and all modified Tyr-tRNATyr-C-C-N, which can accept tyrosine on either the 2'OH or the 3'-OH of the 3'terminal adenosine, are not hydrolyzed by tyrosyl-tRNA synthetase. The data can be rationalized assuming that hydrolysis takes place only if the amino acid is bound to the nonaccepting OH and hence is not positioned at the amino acid binding site upon formation of the complex between aminoacyl-tRNA and aminoacyl-tRNA synthetase. In the formycin-carrying tRNA, the amino acid bound to the nonaccepting OH seems to be inaccessible to the enzymatic groups responsible for hydrolysis. Val-tRNAIle-C-C-3'dA and Ile-tRNAIle-C-C-3'DA cannot be hydrolyzed by isoleucyl-tRNA synthetase. Val-tRNAIle-C-C-A is hydrolyzed by the enzyme five times more rapidly than Ile-tRNAIle-C-C-A. Whereas Ile-tRNAIle-C-C-F is absolutely stable, Val-tRNAIle-C-C-F si hydrolyzed immediately. As shown by the earlier finding that valine misactivated by isoleucyl-tRNA synthetase cannot be permanently transferred to tRNAIle-C-C-A but to tRNAIle-C-C-3'dA, the 3'-OH is essential for preventing transfer of misactivated valine. It thus appears that valine is hydrolyzed off Val-tRNAIle-C-C-N if it is bound to the accepting 2'-OH in the binding site for isoleucine. A hypothesis is offered attempting to explain the experimental observations in mechanistic terms. We consider the hydrolytic action of the aminoacyl-tRNA synthetases as a general mechanism of "chemical proofreading" in the protein biosynthesis.

摘要

苯丙氨酰 - tRNA⁽苯丙⁾ - C - C - A、缬氨酰 - tRNA⁽缬⁾ - C - C - A和异亮氨酰 - tRNA⁽异亮⁾ - C - C - A,它们在3'-末端腺苷的2'-OH上接受其氨基酸,很容易被它们的氨酰 - tRNA合成酶水解。如果这些tRNA中的3'末端腺苷被3'-脱氧腺苷或间型霉素取代,则几乎观察不到水解现象。相应地,在3'-末端腺苷的3'-OH上接受丝氨酸的丝氨酰 - tRNA⁽丝⁾ - C - C - A被丝氨酰 - tRNA合成酶水解,而丝氨酰 - tRNA⁽丝⁾ - C - C - 2'dA和丝氨酰 - tRNA⁽丝⁾ - C - C - F则不被水解。酪氨酰 - tRNA⁽酪⁾ - C - C - A以及所有修饰的酪氨酰 - tRNA⁽酪⁾ - C - C - N,它们可以在3'末端腺苷的2'-OH或3'-OH上接受酪氨酸,不被酪氨酰 - tRNA合成酶水解。假设只有当氨基酸与非接受性OH结合时才会发生水解,因此在氨酰 - tRNA与氨酰 - tRNA合成酶形成复合物时,氨基酸不会位于氨基酸结合位点,这样就可以使这些数据合理化。在携带间型霉素的tRNA中,与非接受性OH结合的氨基酸似乎无法被负责水解的酶基团所接触。缬氨酰 - tRNA⁽异亮⁾ - C - C - 3'dA和异亮氨酰 - tRNA⁽异亮⁾ - C - C - 3'dA不能被异亮氨酰 - tRNA合成酶水解。缬氨酰 - tRNA⁽异亮⁾ - C - C - A被该酶水解的速度比异亮氨酰 - tRNA⁽异亮⁾ - C - C - A快五倍。而异亮氨酰 - tRNA⁽异亮⁾ - C - C - F是绝对稳定的,缬氨酰 - tRNA⁽异亮⁾ - C - C - F则会立即被水解。正如早期的发现所示,被异亮氨酰 - tRNA合成酶错误激活的缬氨酸不能永久转移到tRNA⁽异亮⁾ - C - C - A上,而是转移到tRNA⁽异亮⁾ - C - C - 3'dA上,3'-OH对于防止错误激活的缬氨酸转移至关重要。因此,如果缬氨酸在异亮氨酸结合位点与接受性2'-OH结合,它似乎会从缬氨酰 - tRNA⁽异亮⁾ - C - C - N上被水解下来。本文提出了一个假设,试图从机制角度解释这些实验观察结果。我们认为氨酰 - tRNA合成酶的水解作用是蛋白质生物合成中“化学校对”的一种普遍机制。

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