Literature DB >> 25902496

Major reorientation of tRNA substrates defines specificity of dihydrouridine synthases.

Robert T Byrne1, Huw T Jenkins1, Daniel T Peters1, Fiona Whelan1, James Stowell2, Naveed Aziz3, Pavel Kasatsky4, Marina V Rodnina5, Eugene V Koonin6, Andrey L Konevega7, Alfred A Antson8.   

Abstract

The reduction of specific uridines to dihydrouridine is one of the most common modifications in tRNA. Increased levels of the dihydrouridine modification are associated with cancer. Dihydrouridine synthases (Dus) from different subfamilies selectively reduce distinct uridines, located at spatially unique positions of folded tRNA, into dihydrouridine. Because the catalytic center of all Dus enzymes is conserved, it is unclear how the same protein fold can be reprogrammed to ensure that nucleotides exposed at spatially distinct faces of tRNA can be accommodated in the same active site. We show that the Escherichia coli DusC is specific toward U16 of tRNA. Unexpectedly, crystal structures of DusC complexes with tRNA(Phe) and tRNA(Trp) show that Dus subfamilies that selectively modify U16 or U20 in tRNA adopt identical folds but bind their respective tRNA substrates in an almost reverse orientation that differs by a 160° rotation. The tRNA docking orientation appears to be guided by subfamily-specific clusters of amino acids ("binding signatures") together with differences in the shape of the positively charged tRNA-binding surfaces. tRNA orientations are further constrained by positional differences between the C-terminal "recognition" domains. The exquisite substrate specificity of Dus enzymes is therefore controlled by a relatively simple mechanism involving major reorientation of the whole tRNA molecule. Such reprogramming of the enzymatic specificity appears to be a unique evolutionary solution for altering tRNA recognition by the same protein fold.

Entities:  

Keywords:  X-ray crystallography; dihydrouridine synthase; protein–RNA interaction; substrate specificity; tRNA modification

Mesh:

Substances:

Year:  2015        PMID: 25902496      PMCID: PMC4434734          DOI: 10.1073/pnas.1500161112

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  36 in total

1.  Crystal structure of human Pus10, a novel pseudouridine synthase.

Authors:  Clare J McCleverty; Michael Hornsby; Glen Spraggon; Andreas Kreusch
Journal:  J Mol Biol       Date:  2007-08-29       Impact factor: 5.469

2.  A conserved family of Saccharomyces cerevisiae synthases effects dihydrouridine modification of tRNA.

Authors:  Feng Xing; Mark R Martzen; Eric M Phizicky
Journal:  RNA       Date:  2002-03       Impact factor: 4.942

3.  Molecular determinants of dihydrouridine synthase activity.

Authors:  Dan F Savage; Valérie de Crécy-Lagard; Anthony C Bishop
Journal:  FEBS Lett       Date:  2006-09-05       Impact factor: 4.124

4.  Structure of a TrmA-RNA complex: A consensus RNA fold contributes to substrate selectivity and catalysis in m5U methyltransferases.

Authors:  Akram Alian; Tom T Lee; Sarah L Griner; Robert M Stroud; Janet Finer-Moore
Journal:  Proc Natl Acad Sci U S A       Date:  2008-05-01       Impact factor: 11.205

5.  Crystal structure of archaeal tRNA(m(1)G37)methyltransferase aTrm5.

Authors:  Sakurako Goto-Ito; Takuhiro Ito; Ryohei Ishii; Yutaka Muto; Yoshitaka Bessho; Shigeyuki Yokoyama
Journal:  Proteins       Date:  2008-09

6.  The specificities of four yeast dihydrouridine synthases for cytoplasmic tRNAs.

Authors:  Feng Xing; Shawna L Hiley; Timothy R Hughes; Eric M Phizicky
Journal:  J Biol Chem       Date:  2004-02-16       Impact factor: 5.157

7.  Features and development of Coot.

Authors:  P Emsley; B Lohkamp; W G Scott; K Cowtan
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2010-03-24

8.  The crystal structure of Pyrococcus abyssi tRNA (uracil-54, C5)-methyltransferase provides insights into its tRNA specificity.

Authors:  Hélène Walbott; Nicolas Leulliot; Henri Grosjean; Béatrice Golinelli-Pimpaneau
Journal:  Nucleic Acids Res       Date:  2008-07-24       Impact factor: 16.971

9.  Loss of a conserved tRNA anticodon modification perturbs cellular signaling.

Authors:  Boris Zinshteyn; Wendy V Gilbert
Journal:  PLoS Genet       Date:  2013-08-01       Impact factor: 5.917

10.  Phaser crystallographic software.

Authors:  Airlie J McCoy; Ralf W Grosse-Kunstleve; Paul D Adams; Martyn D Winn; Laurent C Storoni; Randy J Read
Journal:  J Appl Crystallogr       Date:  2007-07-13       Impact factor: 3.304

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  18 in total

1.  Prospective serum metabolomic profiling of lethal prostate cancer.

Authors:  Jiaqi Huang; Alison M Mondul; Stephanie J Weinstein; Andriy Derkach; Steven C Moore; Joshua N Sampson; Demetrius Albanes
Journal:  Int J Cancer       Date:  2019-03-24       Impact factor: 7.396

2.  Structural and functional characterization of TrmM in m6 A modification of bacterial tRNA.

Authors:  Hyeonju Jeong; Yeji Lee; Jungwook Kim
Journal:  Protein Sci       Date:  2022-05       Impact factor: 6.993

3.  Structural effects of modified ribonucleotides and magnesium in transfer RNAs.

Authors:  You Xu; Alexander D MacKerell; Lennart Nilsson
Journal:  Bioorg Med Chem       Date:  2016-06-18       Impact factor: 3.641

4.  Unique anticodon loop conformation with the flipped-out wobble nucleotide in the crystal structure of unbound tRNAVal.

Authors:  Hyeonju Jeong; Jungwook Kim
Journal:  RNA       Date:  2021-07-27       Impact factor: 4.942

5.  From bacterial to human dihydrouridine synthase: automated structure determination.

Authors:  Fiona Whelan; Huw T Jenkins; Samuel C Griffiths; Robert T Byrne; Eleanor J Dodson; Alfred A Antson
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2015-06-30

6.  An extended dsRBD is required for post-transcriptional modification in human tRNAs.

Authors:  Charles Bou-Nader; Ludovic Pecqueur; Damien Bregeon; Amina Kamah; Vincent Guérineau; Béatrice Golinelli-Pimpaneau; Beatriz G Guimarães; Marc Fontecave; Djemel Hamdane
Journal:  Nucleic Acids Res       Date:  2015-10-01       Impact factor: 16.971

Review 7.  From Prebiotics to Probiotics: The Evolution and Functions of tRNA Modifications.

Authors:  Katherine M McKenney; Juan D Alfonzo
Journal:  Life (Basel)       Date:  2016-03-14

Review 8.  tRNA Modifications: Impact on Structure and Thermal Adaptation.

Authors:  Christian Lorenz; Christina E Lünse; Mario Mörl
Journal:  Biomolecules       Date:  2017-04-04

9.  Dihydrouridine synthesis in tRNAs is under reductive evolution in Mollicutes.

Authors:  Bruno Faivre; Murielle Lombard; Soufyan Fakroun; Chau-Duy-Tam Vo; Catherine Goyenvalle; Vincent Guérineau; Ludovic Pecqueur; Marc Fontecave; Valérie De Crécy-Lagard; Damien Brégeon; Djemel Hamdane
Journal:  RNA Biol       Date:  2021-03-22       Impact factor: 4.652

Review 10.  The tRNA Elbow in Structure, Recognition and Evolution.

Authors:  Jinwei Zhang; Adrian R Ferré-D'Amaré
Journal:  Life (Basel)       Date:  2016-01-12
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