Literature DB >> 20382657

Biosynthesis of wyosine derivatives in tRNA: an ancient and highly diverse pathway in Archaea.

Valérie de Crécy-Lagard1, Céline Brochier-Armanet, Jaunius Urbonavicius, Bernard Fernandez, Gabriela Phillips, Benjamin Lyons, Akiko Noma, Sophie Alvarez, Louis Droogmans, Jean Armengaud, Henri Grosjean.   

Abstract

Wyosine (imG) and its derivatives such as wybutosine (yW) are found at position 37 of phenylalanine-specific transfer RNA (tRNA(Phe)), 3' adjacent to the anticodon in Eucarya and Archaea. In Saccharomyces cerevisiae, formation of yW requires five enzymes acting in a strictly sequential order: Trm5, Tyw1, Tyw2, Tyw3, and Tyw4. Archaea contain wyosine derivatives, but their diversity is greater than in eukaryotes and the corresponding biosynthesis pathways still unknown. To identify these pathways, we analyzed the phylogenetic distribution of homologues of the yeast wybutosine biosynthesis proteins in 62 archaeal genomes and proposed a scenario for the origin and evolution of wyosine derivatives biosynthesis in Archaea that was partly experimentally validated. The key observations were 1) that four of the five wybutosine biosynthetic enzymes are ancient and may have been present in the last common ancestor of Archaea and Eucarya, 2) that the variations in the distribution pattern of biosynthesis enzymes reflect the diversity of the wyosine derivatives found in different Archaea. We also identified 7-aminocarboxypropyl-demethylwyosine (yW-86) and its N4-methyl derivative (yW-72) as final products in tRNAs of several Archaea when these were previously thought to be only intermediates of the eukaryotic pathway. We confirmed that isowyosine (imG2) and 7-methylwyosine (mimG) are two archaeal-specific guanosine-37 derivatives found in tRNA of both Euryarchaeota and Crenarchaeota. Finally, we proposed that the duplication of the trm5 gene in some Archaea led to a change in function from N1 methylation of guanosine to C7 methylation of 4-demethylwyosine (imG-14).

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Year:  2010        PMID: 20382657      PMCID: PMC4481705          DOI: 10.1093/molbev/msq096

Source DB:  PubMed          Journal:  Mol Biol Evol        ISSN: 0737-4038            Impact factor:   16.240


  53 in total

1.  Selection of conserved blocks from multiple alignments for their use in phylogenetic analysis.

Authors:  J Castresana
Journal:  Mol Biol Evol       Date:  2000-04       Impact factor: 16.240

2.  Analysis of RNA hydrolyzates by liquid chromatography-mass spectrometry.

Authors:  S C Pomerantz; J A McCloskey
Journal:  Methods Enzymol       Date:  1990       Impact factor: 1.600

3.  The archaebacterial origin of eukaryotes.

Authors:  Cymon J Cox; Peter G Foster; Robert P Hirt; Simon R Harris; T Martin Embley
Journal:  Proc Natl Acad Sci U S A       Date:  2008-12-10       Impact factor: 11.205

4.  Structure of wye (Yt base) and wyosine (Yt) from Torulopsis utilis phenylalanine transfer ribonucleic acid.

Authors:  H Kasai; M Goto; K Ikeda; M Zama; Y Mizuno; S Takemura; S Matsuura; T Sugimoto; T Goto
Journal:  Biochemistry       Date:  1976-02-24       Impact factor: 3.162

5.  Study on the properties and structure of the modified base Y+ of yeast tRNA Phe .

Authors:  R Thiebe; H G Zachau; L Baczynskyj; K Biemann; J Sonnenbichler
Journal:  Biochim Biophys Acta       Date:  1971-06-30

6.  Nucleotide sequence of the anticodon region of Torulopsis phenylalanine transfer RNA.

Authors:  S Takemura; H Kasai; M Goto
Journal:  J Biochem       Date:  1974-05       Impact factor: 3.387

7.  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

8.  Tandem mass spectrometry for structure assignments of wye nucleosides from transfer RNA.

Authors:  Shaolian Zhou; Devarasetty Sitaramaiah; Steven C Pomerantz; Pamela F Crain; James A McCloskey
Journal:  Nucleosides Nucleotides Nucleic Acids       Date:  2004       Impact factor: 1.381

9.  Posttranscriptional modification of transfer RNA in the submarine hyperthermophile Pyrolobus fumarii.

Authors:  J A McCloskey; X H Liu; P F Crain; E Bruenger; R Guymon; T Hashizume; K O Stetter
Journal:  Nucleic Acids Symp Ser       Date:  2000

10.  Enzymatic conversion of guanosine 3' adjacent to the anticodon of yeast tRNAPhe to N1-methylguanosine and the wye nucleoside: dependence on the anticodon sequence.

Authors:  L Droogmans; H Grosjean
Journal:  EMBO J       Date:  1987-02       Impact factor: 11.598

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  51 in total

Review 1.  tRNA biology charges to the front.

Authors:  Eric M Phizicky; Anita K Hopper
Journal:  Genes Dev       Date:  2010-09-01       Impact factor: 11.361

Review 2.  The origin of eukaryotes and their relationship with the Archaea: are we at a phylogenomic impasse?

Authors:  Simonetta Gribaldo; Anthony M Poole; Vincent Daubin; Patrick Forterre; Céline Brochier-Armanet
Journal:  Nat Rev Microbiol       Date:  2010-10       Impact factor: 60.633

3.  The archaeal COG1901/DUF358 SPOUT-methyltransferase members, together with pseudouridine synthase Pus10, catalyze the formation of 1-methylpseudouridine at position 54 of tRNA.

Authors:  Kunal Chatterjee; Ian K Blaby; Patrick C Thiaville; Mrinmoyee Majumder; Henri Grosjean; Y Adam Yuan; Ramesh Gupta; Valérie de Crécy-Lagard
Journal:  RNA       Date:  2012-01-24       Impact factor: 4.942

4.  AtTrm5a catalyses 1-methylguanosine and 1-methylinosine formation on tRNAs and is important for vegetative and reproductive growth in Arabidopsis thaliana.

Authors:  Xiaohuan Jin; Zhengyi Lv; Junbao Gao; Rui Zhang; Ting Zheng; Ping Yin; Dongqin Li; Liangcai Peng; Xintao Cao; Yan Qin; Staffan Persson; Bo Zheng; Peng Chen
Journal:  Nucleic Acids Res       Date:  2019-01-25       Impact factor: 16.971

Review 5.  Diversity in mechanism and function of tRNA methyltransferases.

Authors:  William E Swinehart; Jane E Jackman
Journal:  RNA Biol       Date:  2015       Impact factor: 4.652

6.  Distinct Modified Nucleosides in tRNATrp from the Hyperthermophilic Archaeon Thermococcus kodakarensis and Requirement of tRNA m2G10/m2 2G10 Methyltransferase (Archaeal Trm11) for Survival at High Temperatures.

Authors:  Akira Hirata; Takeo Suzuki; Tomoko Nagano; Daishiro Fujii; Mizuki Okamoto; Manaka Sora; Todd M Lowe; Tamotsu Kanai; Haruyuki Atomi; Tsutomu Suzuki; Hiroyuki Hori
Journal:  J Bacteriol       Date:  2019-10-04       Impact factor: 3.490

7.  TYW1: A Radical SAM Enzyme Involved in the Biosynthesis of Wybutosine Bases.

Authors:  Anthony P Young; Vahe Bandarian
Journal:  Methods Enzymol       Date:  2018-06-06       Impact factor: 1.600

8.  4-Demethylwyosine synthase from Pyrococcus abyssi is a radical-S-adenosyl-L-methionine enzyme with an additional [4Fe-4S](+2) cluster that interacts with the pyruvate co-substrate.

Authors:  Phanélie Perche-Letuvée; Velavan Kathirvelu; Gustav Berggren; Martin Clemancey; Jean-Marc Latour; Vincent Maurel; Thierry Douki; Jean Armengaud; Etienne Mulliez; Marc Fontecave; Ricardo Garcia-Serres; Serge Gambarelli; Mohamed Atta
Journal:  J Biol Chem       Date:  2012-10-05       Impact factor: 5.157

Review 9.  Radical SAM enzymes involved in the biosynthesis of purine-based natural products.

Authors:  Vahe Bandarian
Journal:  Biochim Biophys Acta       Date:  2012-08-03

Review 10.  How the intracellular partitioning of tRNA and tRNA modification enzymes affects mitochondrial function.

Authors:  Zdeněk Paris; Juan D Alfonzo
Journal:  IUBMB Life       Date:  2018-10-25       Impact factor: 3.885

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