Literature DB >> 17949745

Glutamate versus glutamine exchange swaps substrate selectivity in tRNA-guanine transglycosylase: insight into the regulation of substrate selectivity by kinetic and crystallographic studies.

Naomi Tidten1, Bernhard Stengl, Andreas Heine, George A Garcia, Gerhard Klebe, Klaus Reuter.   

Abstract

Bacterial tRNA-guanine transglycosylase (Tgt) catalyses the exchange of guanine in the wobble position of particular tRNAs by the modified base preQ(1). In vitro, however, the enzyme is also able to insert the immediate biosynthetic precursor, preQ(0), into those tRNAs. This substrate promiscuity is based on a peptide switch in the active site, gated by the general acid/base Glu235. The switch alters the properties of the binding pocket to allow either the accommodation of guanine or preQ(1). The peptide conformer recognising guanine, however, is also able to bind preQ(0). To investigate selectivity regulation, kinetic data for Zymomonas mobilis Tgt were recorded. They show that selectivity in favour of the actual substrate preQ(1) over preQ(0) is not achieved by a difference in affinity but via a higher turnover rate. Moreover, a Tgt(Glu235Gln) variant was constructed. The mutation was intended to stabilise the peptide switch in the conformation favouring guanine and preQ(0) binding. Kinetic characterisation of the mutated enzyme revealed that the Glu235Gln exchange has, with respect to all substrate bases, no significant influence on k(cat). In contrast, K(M)(preQ(1)) is drastically increased, while K(M)(preQ(0)) seems to be decreased. Hence, regarding k(cat)/K(M) as an indicator for catalytic efficiency, selectivity of Tgt in favour of preQ(1) is abolished or even inverted in favour of preQ(0) for Tgt(Glu235Gln). Crystal structures of the mutated enzyme confirm that the mutation strongly favours the binding pocket conformation required for the accommodation of guanine and preQ(0). The way this is achieved, however, significantly differs from that predicted based on crystal structures of wild-type Tgt.

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Year:  2007        PMID: 17949745      PMCID: PMC2100405          DOI: 10.1016/j.jmb.2007.09.062

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


  30 in total

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Authors:  Irimpan Mathews; Robert Schwarzenbacher; Daniel McMullan; Polat Abdubek; Eileen Ambing; Herbert Axelrod; Tanya Biorac; Jaume M Canaves; Hsiu-Ju Chiu; Ashley M Deacon; Michael DiDonato; Marc-André Elsliger; Adam Godzik; Carina Grittini; Slawomir K Grzechnik; Joanna Hale; Eric Hampton; Gye Won Han; Justin Haugen; Michael Hornsby; Lukasz Jaroszewski; Heath E Klock; Eric Koesema; Andreas Kreusch; Peter Kuhn; Scott A Lesley; Inna Levin; Mitchell D Miller; Kin Moy; Edward Nigoghossian; Jie Ouyang; Jessica Paulsen; Kevin Quijano; Ron Reyes; Glen Spraggon; Raymond C Stevens; Henry van den Bedem; Jeff Velasquez; Juli Vincent; Aprilfawn White; Guenter Wolf; Qingping Xu; Keith O Hodgson; John Wooley; Ian A Wilson
Journal:  Proteins       Date:  2005-06-01

2.  Role of aspartate 143 in Escherichia coli tRNA-guanine transglycosylase: alteration of heterocyclic substrate specificity.

Authors:  Katherine Abold Todorov; George A Garcia
Journal:  Biochemistry       Date:  2006-01-17       Impact factor: 3.162

3.  SHELXL: high-resolution refinement.

Authors:  G M Sheldrick; T R Schneider
Journal:  Methods Enzymol       Date:  1997       Impact factor: 1.600

4.  Biosynthesis of the modified nucleoside Q in transfer RNA.

Authors:  Y Kuchino; H Kasai; K Nihei; S Nishimura
Journal:  Nucleic Acids Res       Date:  1976-02       Impact factor: 16.971

5.  Crystal structure of Bacillus subtilis S-adenosylmethionine:tRNA ribosyltransferase-isomerase.

Authors:  Clemens Grimm; Ralf Ficner; Tanja Sgraja; Peter Haebel; Gerhard Klebe; Klaus Reuter
Journal:  Biochem Biophys Res Commun       Date:  2006-10-30       Impact factor: 3.575

6.  Identification of four genes necessary for biosynthesis of the modified nucleoside queuosine.

Authors:  John S Reader; David Metzgar; Paul Schimmel; Valérie de Crécy-Lagard
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7.  Purification, crystallization, and preliminary x-ray diffraction studies of tRNA-guanine transglycosylase from Zymomonas mobilis.

Authors:  C Romier; R Ficner; K Reuter; D Suck
Journal:  Proteins       Date:  1996-04

8.  Chemical trapping and crystal structure of a catalytic tRNA guanine transglycosylase covalent intermediate.

Authors:  Wei Xie; Xianjun Liu; Raven H Huang
Journal:  Nat Struct Biol       Date:  2003-08-31

9.  tRNA-guanine transglycosylase from Escherichia coli: structure-activity studies investigating the role of the aminomethyl substituent of the heterocyclic substrate PreQ1.

Authors:  G C Hoops; L B Townsend; G A Garcia
Journal:  Biochemistry       Date:  1995-11-21       Impact factor: 3.162

10.  Flexible adaptations in the structure of the tRNA-modifying enzyme tRNA-guanine transglycosylase and their implications for substrate selectivity, reaction mechanism and structure-based drug design.

Authors:  Ruth Brenk; Milton T Stubbs; Andreas Heine; Klaus Reuter; Gerhard Klebe
Journal:  Chembiochem       Date:  2003-10-06       Impact factor: 3.164

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Authors:  Joseph A Liberman; Joseph E Wedekind
Journal:  Curr Opin Struct Biol       Date:  2011-04-27       Impact factor: 6.809

2.  Fragments as Novel Starting Points for tRNA-Guanine Transglycosylase Inhibitors Found by Alternative Screening Strategies.

Authors:  Engi Hassaan; Per-Olof Eriksson; Stefan Geschwindner; Andreas Heine; Gerhard Klebe
Journal:  ChemMedChem       Date:  2020-01-29       Impact factor: 3.466

3.  Investigation of specificity determinants in bacterial tRNA-guanine transglycosylase reveals queuine, the substrate of its eucaryotic counterpart, as inhibitor.

Authors:  Inna Biela; Naomi Tidten-Luksch; Florian Immekus; Serghei Glinca; Tran Xuan Phong Nguyen; Hans-Dieter Gerber; Andreas Heine; Gerhard Klebe; Klaus Reuter
Journal:  PLoS One       Date:  2013-05-21       Impact factor: 3.240

  3 in total

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