The mechanism of discriminative aminoacylation by isoleucyl-tRNA synthetase based on wobble nucleotide recognition.

Chen, Bingyi; Yi, Fang; Luo, Zhiteng; Lu, Feihu; Liu, Hongwei; Luo, Siting; Gu, Qiong; Zhou, Huihao · Nat Commun · 2024

basic_science · Level V

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Abstract

The faithful charging of amino acids to cognate tRNAs by aminoacyl-tRNA synthetases (AARSs) determines the fidelity of protein translation. Isoleucyl-tRNA synthetase (IleRS) distinguishes tRNA<sup>Ile</sup> from tRNA<sup>Met</sup> solely based on the nucleotide at wobble position (N34), and a single substitution at N34 could exchange the aminoacylation specificity between two tRNAs. Here, we report the structural and biochemical mechanism of N34 recognition-based tRNA discrimination by Saccharomyces cerevisiae IleRS (ScIleRS). ScIleRS utilizes a eukaryotic/archaeal-specific arginine as the H-bond donor to recognize the common carbonyl group (H-bond acceptor) of various N34s of tRNA<sup>Ile</sup>, which induces mutual structural adaptations between ScIleRS and tRNA<sup>Ile</sup> to achieve a preferable editing state. C34 of unmodified tRNA<sup>Ile</sup>(CAU) (behaves like tRNA<sup>Met</sup>) lacks a relevant H-bond acceptor, which disrupts key H-bonding interactions and structural adaptations and suspends the ScIleRS·tRNA<sup>Ile</sup>(CAU) complex in an initial non-reactive state. This wobble nucleotide recognition-based structural adaptation provides mechanistic insights into selective tRNA aminoacylation by AARSs.

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