Literature DB >> 11023793

Correlating amino acid conservation with function in tyrosyl-tRNA synthetase.

Y Xin1, W Li, D S Dwyer, E A First.   

Abstract

Sequence comparisons have been combined with mutational and kinetic analyses to elucidate how the catalytic mechanism of Bacillus stearothermophilus tyrosyl-tRNA synthetase evolved. Catalysis of tRNA(Tyr) aminoacylation by tyrosyl-tRNA synthetase involves two steps: activation of the tyrosine substrate by ATP to form an enzyme-bound tyrosyl-adenylate intermediate, and transfer of tyrosine from the tyrosyl-adenylate intermediate to tRNA(Tyr). Previous investigations indicate that the class I conserved KMSKS motif is involved in only the first step of the reaction (i.e. tyrosine activation). Here, we demonstrate that the class I conserved HIGH motif also is involved only in the tyrosine activation step. In contrast, one amino acid that is conserved in a subset of the class I aminoacyl-tRNA synthetases, Thr40, and two amino acids that are present only in tyrosyl-tRNA synthetases, Lys82 and Arg86, stabilize the transition states for both steps of the tRNA aminoacylation reaction. These results imply that stabilization of the transition state for the first step of the reaction by the class I aminoacyl-tRNA synthetases preceded stabilization of the transition state for the second step of the reaction. This is consistent with the hypothesis that the ability of aminoacyl-tRNA synthetases to catalyze the activation of amino acids with ATP preceded their ability to catalyze attachment of the amino acid to the 3' end of tRNA. We propose that the primordial aminoacyl-tRNA synthetases replaced a ribozyme whose function was to promote the reaction of amino acids and other small molecules with ATP. Copyright 2000 Academic Press.

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Year:  2000        PMID: 11023793     DOI: 10.1006/jmbi.2000.4125

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  6 in total

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Authors:  Nathalie Connil; Yoann Le Breton; Xavier Dousset; Yanick Auffray; Alain Rincé; Hervé Prévost
Journal:  Appl Environ Microbiol       Date:  2002-07       Impact factor: 4.792

2.  The α-amino group of the threonine substrate as the general base during tRNA aminoacylation: a new version of substrate-assisted catalysis predicted by hybrid DFT.

Authors:  Wenjuan Huang; Eric A C Bushnell; Christopher S Francklyn; James W Gauld
Journal:  J Phys Chem A       Date:  2011-09-26       Impact factor: 2.781

3.  Conformational landscapes for KMSKS loop in tyrosyl-tRNA synthetases.

Authors:  Manish Datt; Amit Sharma
Journal:  J Struct Funct Genomics       Date:  2014-04-11

4.  Long-range intramolecular signaling in a tRNA synthetase complex revealed by pre-steady-state kinetics.

Authors:  Nathan T Uter; John J Perona
Journal:  Proc Natl Acad Sci U S A       Date:  2004-09-27       Impact factor: 11.205

5.  Structural Divergence of the Group I Intron Binding Surface in Fungal Mitochondrial Tyrosyl-tRNA Synthetases That Function in RNA Splicing.

Authors:  Lilian T Lamech; Maithili Saoji; Paul J Paukstelis; Alan M Lambowitz
Journal:  J Biol Chem       Date:  2016-04-01       Impact factor: 5.157

6.  Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases.

Authors:  Florian Kaiser; Sebastian Bittrich; Sebastian Salentin; Christoph Leberecht; V Joachim Haupt; Sarah Krautwurst; Michael Schroeder; Dirk Labudde
Journal:  PLoS Comput Biol       Date:  2018-04-16       Impact factor: 4.475

  6 in total

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