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PMID: 7680483 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Acceptor end binding domain interactions ensure correct aminoacylation of transfer RNA.

Weygand-Durasević I, Schwob E, Söll D

Abstract

The recognition of the acceptor stem of tRNA(Gln) is an important element ensuring the accuracy of aminoacylation by Escherichia coli glutaminyl-tRNA synthetase (GlnRS; EC 6.1.1.18). On the basis of known mutations and the crystal structure of the tRNA(Gln).GlnRS complex, we mutagenized at saturation two motifs in the acceptor end binding domain of GlnRS. Mutants with lowered tRNA specificity were then selected in vivo by suppression of a glutamine-specific amber mutation (lacZ1000) with an amber suppressor tRNA derived from tRNA(1Ser). The mischarging GlnRS mutants obtained in this way retain the ability to charge tRNA(Gln), but in addition, they misacylate a number of noncognate amber suppressor tRNAs. The critical residues responsible for specificity are Arg-130 and Glu-131, located in a part of GlnRS that binds the acceptor stem of tRNA(Gln). On the basis of the spectrum of tRNAs capable of being misacylated by such mutants we propose that, in addition to taking part in productive interactions, the acceptor end binding domain contributes to recognition specificity by rejecting noncognate tRNAs through negative interactions. Analysis of the catalytic properties of one of the mischarging enzymes, GlnRS100 (Arg-130-->Pro, Glu-131-->Asp), indicates that, while the kinetic parameters of the mutant enzyme are not dramatically changed, it binds noncognate tRNA(Glu) more stably than the wild-type enzyme does (Kd is 1/8 that of the wild type). Thus, the stability of the noncognate complex may be the basis for mischarging in vivo.

Related Genes
MeSH Terms
Amino Acid Sequence Amino Acyl-tRNA Synthetases/genetics,metabolism Bacterial Proteins/chemistry,metabolism Kinetics Molecular Sequence Data Mutagenesis, Site-Directed Protein Structure, Tertiary RNA, Bacterial/metabolism RNA, Transfer, Gln/metabolism Recombinant Proteins/metabolism Structure-Activity Relationship Transfer RNA Aminoacylation
Chemicals
Bacterial Proteins RNA, Bacterial RNA, Transfer, Gln Recombinant Proteins Amino Acyl-tRNA Synthetases glutaminyl-tRNA synthetase
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Weygand-Durasević I
Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06511.
Schwob E
Söll D
References (28)
28 references, click to expand
  1. Recognition of bases in Escherichia coli tRNA(Gln) by glutaminyl-tRNA synthetase: a complete identity set.
    EMBO J. 1992 Nov;11(11):4159-65 PMID: 1396597
  2. Discrimination between glutaminyl-tRNA synthetase and seryl-tRNA synthetase involves nucleotides in the acceptor helix of tRNA.
    Proc Natl Acad Sci U S A. 1988 Sep;85(18):6627-31 PMID: 3045821
  3. Structural basis for misaminoacylation by mutant E. coli glutaminyl-tRNA synthetase enzymes.
    Science. 1989 Dec 1;246(4934):1152-4 PMID: 2686030
  4. Structural basis of anticodon loop recognition by glutaminyl-tRNA synthetase.
    Nature. 1991 Jul 18;352(6332):213-8 PMID: 1857417
  5. Synthetase competition and tRNA context determine the in vivo identify of tRNA discriminator mutants.
    J Mol Biol. 1992 Dec 20;228(4):1055-62 PMID: 1474577
  6. Changing the identity of a tRNA by introducing a G-U wobble pair near the 3' acceptor end.
    Science. 1988 May 6;240(4853):793-6 PMID: 2452483
  7. tRNA identity.
    Annu Rev Biochem. 1989;58:1029-49 PMID: 2673006
  8. Role of residue Glu152 in the discrimination between transfer RNAs by tyrosyl-tRNA synthetase from Bacillus stearothermophilus.
    J Mol Biol. 1992 Feb 5;223(3):801-10 PMID: 1542120
  9. Recognition of tRNA by isoleucyl-tRNA synthetase. Effect of substrates on the dynamics of tRNA-enzyme interaction.
    J Mol Biol. 1969 Jun 14;42(2):171-89 PMID: 5803296
  10. Crystallographic study at 2.5 A resolution of the interaction of methionyl-tRNA synthetase from Escherichia coli with ATP.
    J Mol Biol. 1990 Nov 20;216(2):411-24 PMID: 2254937
  11. Rapid and efficient site-specific mutagenesis without phenotypic selection.
    Proc Natl Acad Sci U S A. 1985 Jan;82(2):488-92 PMID: 3881765
  12. Structure of E. coli glutaminyl-tRNA synthetase complexed with tRNA(Gln) and ATP at 2.8 A resolution.
    Science. 1989 Dec 1;246(4934):1135-42 PMID: 2479982
  13. Construction of Escherichia coli amber suppressor tRNA genes. III. Determination of tRNA specificity.
    J Mol Biol. 1990 Jun 20;213(4):719-26 PMID: 2141650
  14. Overproduction and purification of Escherichia coli tRNA(2Gln) and its use in crystallization of the glutaminyl-tRNA synthetase-tRNA(Gln) complex.
    J Mol Biol. 1988 Jul 5;202(1):121-6 PMID: 2459391
  15. Escherichia coli glutaminyl-tRNA synthetase. I. Isolation and DNA sequence of the glnS gene.
    J Biol Chem. 1982 Oct 10;257(19):11639-43 PMID: 6288695
  16. Class II aminoacyl transfer RNA synthetases: crystal structure of yeast aspartyl-tRNA synthetase complexed with tRNA(Asp).
    Science. 1991 Jun 21;252(5013):1682-9 PMID: 2047877
  17. Switching tRNA(Gln) identity from glutamine to tryptophan.
    Proc Natl Acad Sci U S A. 1992 Apr 15;89(8):3463-7 PMID: 1565639
  18. Use of T7 RNA polymerase to direct expression of cloned genes.
    Methods Enzymol. 1990;185:60-89 PMID: 2199796
  19. Competition of aminoacyl-tRNA synthetases for tRNA ensures the accuracy of aminoacylation.
    Nucleic Acids Res. 1992 Apr 11;20(7):1547-52 PMID: 16617497
  20. Intrinsic precision of aminoacyl-tRNA synthesis enhanced through parallel systems of ligands.
    Nat New Biol. 1972 Sep 27;239(91):106-8 PMID: 4564911
  21. Factors determining the specificity of the tRNA aminoacylation reaction. Non-absolute specificity of tRNA-aminoacyl-tRNA synthetase recognition and particular importance of the maximal velocity.
    Biochimie. 1973 May;55(5):547-57 PMID: 4585176
  22. Mutant enzymes and tRNAs as probes of the glutaminyl-tRNA synthetase: tRNA(Gln) interaction.
    Biochimie. 1991 Dec;73(12):1501-8 PMID: 1725262
  23. Glutamyl transfer ribonucleic acid synthetase of Escherichia coli. II. Interaction with intact glutamyl transfer ribonucleic acid.
    J Biol Chem. 1972 Aug 25;247(16):4975-81 PMID: 4341532
  24. Accuracy of in vivo aminoacylation requires proper balance of tRNA and aminoacyl-tRNA synthetase.
    Science. 1988 Dec 16;242(4885):1548-51 PMID: 3144042
  25. Anticodon and acceptor stem nucleotides in tRNA(Gln) are major recognition elements for E. coli glutaminyl-tRNA synthetase.
    Nature. 1991 Jul 18;352(6332):258-60 PMID: 1857423
  26. Overproduction of tyrosyl-tRNA synthetase is toxic to Escherichia coli: a genetic analysis.
    J Bacteriol. 1990 Jul;172(7):3940-5 PMID: 2113914
  27. Inaccuracy and the recognition of tRNA.
    Prog Nucleic Acid Res Mol Biol. 1990;39:185-208 PMID: 2247608
  28. Transfer RNA mischarging mediated by a mutant Escherichia coli glutaminyl-tRNA synthetase.
    Proc Natl Acad Sci U S A. 1984 Aug;81(16):5076-80 PMID: 6382258
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
1993-03-01
Pages
2010-4
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC46010
Subset
IM
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