Literature DB >> 12554668

ATP binding by glutamyl-tRNA synthetase is switched to the productive mode by tRNA binding.

Shun-Ichi Sekine1, Osamu Nureki, Daniel Y Dubois, Stéphane Bernier, Robert Chênevert, Jacques Lapointe, Dmitry G Vassylyev, Shigeyuki Yokoyama.   

Abstract

Aminoacyl-tRNA synthetases catalyze the formation of an aminoacyl-AMP from an amino acid and ATP, prior to the aminoacyl transfer to tRNA. A subset of aminoacyl-tRNA synthetases, including glutamyl-tRNA synthetase (GluRS), have a regulation mechanism to avoid aminoacyl-AMP formation in the absence of tRNA. In this study, we determined the crystal structure of the 'non-productive' complex of Thermus thermophilus GluRS, ATP and L-glutamate, together with those of the GluRS.ATP, GluRS.tRNA.ATP and GluRS.tRNA.GoA (a glutamyl-AMP analog) complexes. In the absence of tRNA(Glu), ATP is accommodated in a 'non-productive' subsite within the ATP-binding site, so that the ATP alpha-phosphate and the glutamate alpha-carboxyl groups in GluRS. ATP.Glu are too far from each other (6.2 A) to react. In contrast, the ATP-binding mode in GluRS.tRNA. ATP is dramatically different from those in GluRS.ATP.Glu and GluRS.ATP, but corresponds to the AMP moiety binding mode in GluRS.tRNA.GoA (the 'productive' subsite). Therefore, tRNA binding to GluRS switches the ATP-binding mode. The interactions of the three tRNA(Glu) regions with GluRS cause conformational changes around the ATP-binding site, and allow ATP to bind to the 'productive' subsite.

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Year:  2003        PMID: 12554668      PMCID: PMC140737          DOI: 10.1093/emboj/cdg053

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  41 in total

1.  Charging two for the price of one.

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2.  Functional convergence of two lysyl-tRNA synthetases with unrelated topologies.

Authors:  Takaho Terada; Osamu Nureki; Ryuichiro Ishitani; Alexandre Ambrogelly; Michael Ibba; Dieter Söll; Shigeyuki Yokoyama
Journal:  Nat Struct Biol       Date:  2002-04

3.  The arginyl transfer ribonucleic acid synthetase of Escherichia coli.

Authors:  S K Mitra; A H Mehler
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4.  The identity determinants required for the discrimination between tRNAGlu and tRNAAsp by glutamyl-tRNA synthetase from Escherichia coli.

Authors:  S Sekine; O Nureki; M Tateno; S Yokoyama
Journal:  Eur J Biochem       Date:  1999-04

5.  Effect of modified nucleotides on Escherichia coli tRNAGlu structure and on its aminoacylation by glutamyl-tRNA synthetase. Predominant and distinct roles of the mnm5 and s2 modifications of U34.

Authors:  E Madore; C Florentz; R Giegé; S Sekine; S Yokoyama; J Lapointe
Journal:  Eur J Biochem       Date:  1999-12

6.  Structural and mutational studies of the recognition of the arginine tRNA-specific major identity element, A20, by arginyl-tRNA synthetase.

Authors:  A Shimada; O Nureki; M Goto; S Takahashi; S Yokoyama
Journal:  Proc Natl Acad Sci U S A       Date:  2001-11-06       Impact factor: 11.205

7.  Structural basis for anticodon recognition by discriminating glutamyl-tRNA synthetase.

Authors:  S Sekine ; O Nureki; A Shimada; D G Vassylyev; S Yokoyama
Journal:  Nat Struct Biol       Date:  2001-03

Review 8.  Glutamate uptake.

Authors:  N C Danbolt
Journal:  Prog Neurobiol       Date:  2001-09       Impact factor: 11.685

9.  The 2.0 A crystal structure of Thermus thermophilus methionyl-tRNA synthetase reveals two RNA-binding modules.

Authors:  I Sugiura; O Nureki; Y Ugaji-Yoshikawa; S Kuwabara; A Shimada; M Tateno; B Lorber; R Giegé; D Moras; S Yokoyama; M Konno
Journal:  Structure       Date:  2000-02-15       Impact factor: 5.006

10.  tRNA aminoacylation by arginyl-tRNA synthetase: induced conformations during substrates binding.

Authors:  B Delagoutte; D Moras; J Cavarelli
Journal:  EMBO J       Date:  2000-11-01       Impact factor: 11.598

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  39 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2004-05-11       Impact factor: 11.205

2.  A truncated aminoacyl-tRNA synthetase modifies RNA.

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Journal:  Proc Natl Acad Sci U S A       Date:  2004-04-19       Impact factor: 11.205

3.  Adaptation to tRNA acceptor stem structure by flexible adjustment in the catalytic domain of class I tRNA synthetases.

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4.  Divergent anticodon recognition in contrasting glutamyl-tRNA synthetases.

Authors:  Joohee Lee; Tamara L Hendrickson
Journal:  J Mol Biol       Date:  2004-12-10       Impact factor: 5.469

5.  Crystal structure of an asymmetric complex of pyruvate dehydrogenase kinase 3 with lipoyl domain 2 and its biological implications.

Authors:  Yancho Devedjiev; C Nicklaus Steussy; Dmitry G Vassylyev
Journal:  J Mol Biol       Date:  2007-05-10       Impact factor: 5.469

6.  Predicting helical coaxial stacking in RNA multibranch loops.

Authors:  Rahul Tyagi; David H Mathews
Journal:  RNA       Date:  2007-05-16       Impact factor: 4.942

7.  Capture and quality control mechanisms for adenosine-5'-triphosphate binding.

Authors:  Li Li; Susan A Martinis; Zaida Luthey-Schulten
Journal:  J Am Chem Soc       Date:  2013-02-13       Impact factor: 15.419

Review 8.  DNA polymerases and aminoacyl-tRNA synthetases: shared mechanisms for ensuring the fidelity of gene expression.

Authors:  Christopher S Francklyn
Journal:  Biochemistry       Date:  2008-10-14       Impact factor: 3.162

9.  Discrimination of cognate and noncognate substrates at the active site of class I lysyl-tRNA synthetase.

Authors:  Shiming Wang; Mette Praetorius-Ibba; Sandro F Ataide; Hervé Roy; Michael Ibba
Journal:  Biochemistry       Date:  2006-03-21       Impact factor: 3.162

10.  MolProbity: all-atom structure validation for macromolecular crystallography.

Authors:  Vincent B Chen; W Bryan Arendall; Jeffrey J Headd; Daniel A Keedy; Robert M Immormino; Gary J Kapral; Laura W Murray; Jane S Richardson; David C Richardson
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