Literature DB >> 30718305

Substrate-assisted mechanism of catalytic hydrolysis of misaminoacylated tRNA required for protein synthesis fidelity.

Mykola M Ilchenko1, Mariia Yu Rybak2, Alex V Rayevsky3, Oksana P Kovalenko3, Igor Ya Dubey1, Michael A Tukalo2.   

Abstract

d-aminoacyl-tRNA-deacylase (DTD) prevents the incorporation of d-amino acids into proteins during translation by hydrolyzing the ester bond between mistakenly attached amino acids and tRNAs. Despite extensive study of this proofreading enzyme, the precise catalytic mechanism remains unknown. Here, a combination of biochemical and computational investigations has enabled the discovery of a new substrate-assisted mechanism of d-Tyr-tRNATyr hydrolysis by Thermus thermophilus DTD. Several functional elements of the substrate, misacylated tRNA, participate in the catalysis. During the hydrolytic reaction, the 2'-OH group of the А76 residue of d-Tyr-tRNATyr forms a hydrogen bond with a carbonyl group of the tyrosine residue, stabilizing the transition-state intermediate. Two water molecules participate in this reaction, attacking and assisting ones, resulting in a significant decrease in the activation energy of the rate-limiting step. The amino group of the d-Tyr aminoacyl moiety is unprotonated and serves as a general base, abstracting the proton from the assisting water molecule and forming a more nucleophilic ester-attacking species. Quantum chemical methodology was used to investigate the mechanism of hydrolysis. The DFT-calculated deacylation reaction is in full agreement with the experimental data. The Gibbs activation energies for the first and second steps were 10.52 and 1.05 kcal/mol, respectively, highlighting that the first step of the hydrolysis process is the rate-limiting step. Several amino acid residues of the enzyme participate in the coordination of the substrate and water molecules. Thus, the present work provides new insights into the proofreading details of misacylated tRNAs and can be extended to other systems important for translation fidelity.
© 2019 The Author(s). Published by Portland Press Limited on behalf of the Biochemical Society.

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Keywords:  density functional theory; enzyme kinetics; enzyme–substrate interactions; molecular dynamics; thermodynamics; translation factors

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Year:  2019        PMID: 30718305     DOI: 10.1042/BCJ20180910

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  2 in total

1.  Effect of Charge Distribution in a Modified tRNA Substrate on Pre-Reaction Protein-tRNA Complex Geometry.

Authors:  Alexey Rayevsky; Mohsen Sharifi; Eugeniy Demianenko; Dmitriy Volochnyuk; Michael Tukalo
Journal:  ACS Omega       Date:  2021-02-03

2.  Stereospecificity control in aminoacyl-tRNA-synthetases: new evidence of d-amino acids activation and editing.

Authors:  Mariia Yu Rybak; Alexey V Rayevsky; Olga I Gudzera; Michael A Tukalo
Journal:  Nucleic Acids Res       Date:  2019-10-10       Impact factor: 16.971

  2 in total

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