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PMID: 17338813 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Structural and evolutionary bioinformatics of the SPOUT superfamily of methyltransferases.

BMC bioinformatics ·Vol. 8 ·2007-03-05 ·Pages 73

Tkaczuk KL, Dunin-Horkawicz S, Purta E, Bujnicki JM

Abstract

SPOUT methyltransferases (MTases) are a large class of S-adenosyl-L-methionine-dependent enzymes that exhibit an unusual alpha/beta fold with a very deep topological knot. In 2001, when no crystal structures were available for any of these proteins, Anantharaman, Koonin, and Aravind identified homology between SpoU and TrmD MTases and defined the SPOUT superfamily. Since then, multiple crystal structures of knotted MTases have been solved and numerous new homologous sequences appeared in the databases. However, no comprehensive comparative analysis of these proteins has been carried out to classify them based on structural and evolutionary criteria and to guide functional predictions. We carried out extensive searches of databases of protein structures and sequences to collect all members of previously identified SPOUT MTases, and to identify previously unknown homologs. Based on sequence clustering, characterization of domain architecture, structure predictions and sequence/structure comparisons, we re-defined families within the SPOUT superfamily and predicted putative active sites and biochemical functions for the so far uncharacterized members. We have also delineated the common core of SPOUT MTases and inferred a multiple sequence alignment for the conserved knot region, from which we calculated the phylogenetic tree of the superfamily. We have also studied phylogenetic distribution of different families, and used this information to infer the evolutionary history of the SPOUT superfamily. We present the first phylogenetic tree of the SPOUT superfamily since it was defined, together with a new scheme for its classification, and discussion about conservation of sequence and structure in different families, and their functional implications. We identified four protein families as new members of the SPOUT superfamily. Three of these families are functionally uncharacterized (COG1772, COG1901, and COG4080), and one (COG1756 represented by Nep1p) has been already implicated in RNA metabolism, but its biochemical function has been unknown. Based on the inference of orthologous and paralogous relationships between all SPOUT families we propose that the Last Universal Common Ancestor (LUCA) of all extant organisms contained at least three SPOUT members, ancestors of contemporary RNA MTases that carry out m1G, m3U, and 2'O-ribose methylation, respectively. In this work we also speculate on the origin of the knot and propose possible 'unknotted' ancestors. The results of our analysis provide a comprehensive 'roadmap' for experimental characterization of SPOUT MTases and interpretation of functional studies in the light of sequence-structure relationships.

MeSH Terms
Amino Acid Sequence Animals Computational Biology Evolution, Molecular Humans Methyltransferases/chemistry,classification,genetics Molecular Sequence Data Multigene Family Phylogeny Sequence Homology, Amino Acid Structure-Activity Relationship
Chemicals
Methyltransferases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Tkaczuk Karolina L
Laboratory of Bioinformatics and Protein Engineering, International Institute of Molecular and Cell Biology in Warsaw, Warsaw, Poland. poison-ivy@genesilico.pl <poison-ivy@genesilico.pl>
Dunin-Horkawicz Stanislaw
Purta Elzbieta
Bujnicki Janusz M
References (109)
109 references, click to expand
  1. Spb1p-directed formation of Gm2922 in the ribosome catalytic center occurs at a late processing stage.
    Mol Cell. 2004 Nov 19;16(4):663-9 PMID: 15546625
  2. Functional analysis of amino acid residues at the dimerisation interface of KpnI DNA methyltransferase.
    Biol Chem. 2006 May;387(5):515-23 PMID: 16740122
  3. Structural evolution of the protein kinase-like superfamily.
    PLoS Comput Biol. 2005 Oct;1(5):e49 PMID: 16244704
  4. Probing nature's knots: the folding pathway of a knotted homodimeric protein.
    J Mol Biol. 2006 Jun 23;359(5):1420-36 PMID: 16787779
  5. Assessment of homology-based predictions in CASP5.
    Proteins. 2003;53 Suppl 6:352-68 PMID: 14579324
  6. A "FRankenstein's monster" approach to comparative modeling: merging the finest fragments of Fold-Recognition models and iterative model refinement aided by 3D structure evaluation.
    Proteins. 2003;53 Suppl 6:369-79 PMID: 14579325
  7. Combining local-structure, fold-recognition, and new fold methods for protein structure prediction.
    Proteins. 2003;53 Suppl 6:491-6 PMID: 14579338
  8. The COG database: an updated version includes eukaryotes.
    BMC Bioinformatics. 2003 Sep 11;4:41 PMID: 12969510
  9. Sequence permutations in the molecular evolution of DNA methyltransferases.
    BMC Evol Biol. 2002 Mar 12;2:3 PMID: 11914127
  10. Insights into catalysis by a knotted TrmD tRNA methyltransferase.
    J Mol Biol. 2003 Nov 7;333(5):931-49 PMID: 14583191
  11. The Pfam protein families database.
    Nucleic Acids Res. 2004 Jan 1;32(Database issue):D138-41 PMID: 14681378
  12. SCOP database in 2004: refinements integrate structure and sequence family data.
    Nucleic Acids Res. 2004 Jan 1;32(Database issue):D226-9 PMID: 14681400
  13. FORTE: a profile-profile comparison tool for protein fold recognition.
    Bioinformatics. 2004 Mar 1;20(4):594-5 PMID: 14764565
  14. MUSCLE: multiple sequence alignment with high accuracy and high throughput.
    Nucleic Acids Res. 2004;32(5):1792-7 PMID: 15034147
  15. Crystal structure of RlmAI: implications for understanding the 23S rRNA G745/G748-methylation at the macrolide antibiotic-binding site.
    Proc Natl Acad Sci U S A. 2004 Mar 23;101(12):4041-6 PMID: 14999102
  16. Deep knot structure for construction of active site and cofactor binding site of tRNA modification enzyme.
    Structure. 2004 Apr;12(4):593-602 PMID: 15062082
  17. Single-body residue-level knowledge-based energy score combined with sequence-profile and secondary structure information for fold recognition.
    Proteins. 2004 Jun 1;55(4):1005-13 PMID: 15146497
  18. Genetic evidence for 18S rRNA binding and an Rps19p assembly function of yeast nucleolar protein Nep1p.
    Mol Genet Genomics. 2006 Sep;276(3):273-84 PMID: 16721597
  19. Phylogenomic analysis of the GIY-YIG nuclease superfamily.
    BMC Genomics. 2006;7:98 PMID: 16646971
  20. The yfhQ gene of Escherichia coli encodes a tRNA:Cm32/Um32 methyltransferase.
    BMC Mol Biol. 2006;7:23 PMID: 16848900
  21. MUMMALS: multiple sequence alignment improved by using hidden Markov models with local structural information.
    Nucleic Acids Res. 2006;34(16):4364-74 PMID: 16936316
  22. Functional categorization of the conserved basic amino acid residues in TrmH (tRNA (Gm18) methyltransferase) enzymes.
    J Biol Chem. 2006 Nov 10;281(45):34630-9 PMID: 16963456
  23. Intricate knots in proteins: Function and evolution.
    PLoS Comput Biol. 2006 Sep 15;2(9):e122 PMID: 16978047
  24. An adenosine deaminase that generates inosine at the wobble position of tRNAs.
    Science. 1999 Nov 5;286(5442):1146-9 PMID: 10550050
  25. Crystal structure of human ornithine transcarbamylase complexed with carbamoyl phosphate and L-norvaline at 1.9 A resolution.
    Proteins. 2000 Jun 1;39(4):271-7 PMID: 10813810
  26. Enhanced genome annotation using structural profiles in the program 3D-PSSM.
    J Mol Biol. 2000 Jun 2;299(2):499-520 PMID: 10860755
  27. Application of multiple sequence alignment profiles to improve protein secondary structure prediction.
    Proteins. 2000 Aug 15;40(3):502-11 PMID: 10861942
  28. Cascaded multiple classifiers for secondary structure prediction.
    Protein Sci. 2000 Jun;9(6):1162-76 PMID: 10892809
  29. m5C RNA and m5C DNA methyl transferases use different cysteine residues as catalysts.
    Proc Natl Acad Sci U S A. 2000 Jul 18;97(15):8263-5 PMID: 10899996
  30. Hybrid fold recognition: combining sequence derived properties with evolutionary information.
    Pac Symp Biocomput. 2000;:119-30 PMID: 10902162
  31. Grouping together highly diverged PD-(D/E)XK nucleases and identification of novel superfamily members using structure-guided alignment of sequence profiles.
    J Mol Microbiol Biotechnol. 2001 Jan;3(1):69-72 PMID: 11200231
  32. A primordial tRNA modification required for the evolution of life?
    EMBO J. 2001 Jan 15;20(1-2):231-9 PMID: 11226173
  33. Prediction of a novel RNA 2'-O-ribose methyltransferase subfamily encoded by the Escherichia coli YgdE open reading frame and its orthologs.
    Acta Microbiol Pol. 2000;49(3-4):253-60 PMID: 11293658
  34. THUMP--a predicted RNA-binding domain shared by 4-thiouridine, pseudouridine synthases and RNA methylases.
    Trends Biochem Sci. 2001 Apr;26(4):215-7 PMID: 11295541
  35. FUGUE: sequence-structure homology recognition using environment-specific substitution tables and structure-dependent gap penalties.
    J Mol Biol. 2001 Jun 29;310(1):243-57 PMID: 11419950
  36. Prediction of a common fold for all four subunits of the yeast tRNA splicing endonuclease: implications for the evolution of the EndA/Sen family.
    FEBS Lett. 2000 Dec 15;486(3):328-9 PMID: 11455964
  37. Comparison of protein structures reveals monophyletic origin of the AdoMet-dependent methyltransferase family and mechanistic convergence rather than recent differentiation of N4-cytosine and N6-adenine DNA methylation.
    In Silico Biol. 1999-2000;1(4):175-82 PMID: 11479932
  38. Fold change in evolution of protein structures.
    J Struct Biol. 2001 May-Jun;134(2-3):167-85 PMID: 11551177
  39. Pcons: a neural-network-based consensus predictor that improves fold recognition.
    Protein Sci. 2001 Nov;10(11):2354-62 PMID: 11604541
  40. In silico analysis of the tRNA:m1A58 methyltransferase family: homology-based fold prediction and identification of new members from Eubacteria and Archaea.
    FEBS Lett. 2001 Oct 26;507(2):123-7 PMID: 11684083
  41. The rlmB gene is essential for formation of Gm2251 in 23S rRNA but not for ribosome maturation in Escherichia coli.
    J Bacteriol. 2001 Dec;183(23):6957-60 PMID: 11698387
  42. SPOUT: a class of methyltransferases that includes spoU and trmD RNA methylase superfamilies, and novel superfamilies of predicted prokaryotic RNA methylases.
    J Mol Microbiol Biotechnol. 2002 Jan;4(1):71-5 PMID: 11763972
  43. MEGA3: Integrated software for Molecular Evolutionary Genetics Analysis and sequence alignment.
    Brief Bioinform. 2004 Jun;5(2):150-63 PMID: 15260895
  44. MUSCLE: a multiple sequence alignment method with reduced time and space complexity.
    BMC Bioinformatics. 2004 Aug 19;5:113 PMID: 15318951
  45. Gene duplication and the origin of repetitive protein structures.
    Cold Spring Harb Symp Quant Biol. 1987;52:411-20 PMID: 3454271
  46. Secondary-structure matching (SSM), a new tool for fast protein structure alignment in three dimensions.
    Acta Crystallogr D Biol Crystallogr. 2004 Dec;60(Pt 12 Pt 1):2256-68 PMID: 15572779
  47. Structure and function of the antibiotic resistance-mediating methyltransferase AviRb from Streptomyces viridochromogenes.
    J Mol Biol. 2005 Jan 21;345(3):535-45 PMID: 15581897
  48. CLANS: a Java application for visualizing protein families based on pairwise similarity.
    Bioinformatics. 2004 Dec 12;20(18):3702-4 PMID: 15284097
  49. The Small Subunit rRNA Modification Database.
    Nucleic Acids Res. 2005 Jan 1;33(Database issue):D135-8 PMID: 15608163
  50. Folding studies on a knotted protein.
    J Mol Biol. 2005 Mar 11;346(5):1409-21 PMID: 15713490
  51. Roles of conserved amino acid sequence motifs in the SpoU (TrmH) RNA methyltransferase family.
    J Biol Chem. 2005 Mar 18;280(11):10368-77 PMID: 15637073
  52. Protein homology detection by HMM-HMM comparison.
    Bioinformatics. 2005 Apr 1;21(7):951-60 PMID: 15531603
  53. Porter: a new, accurate server for protein secondary structure prediction.
    Bioinformatics. 2005 Apr 15;21(8):1719-20 PMID: 15585524
  54. Crystal structure of N-acetylornithine transcarbamylase from Xanthomonas campestris: a novel enzyme in a new arginine biosynthetic pathway found in several eubacteria.
    J Biol Chem. 2005 Apr 15;280(15):14366-9 PMID: 15731101
  55. Combining prediction of secondary structure and solvent accessibility in proteins.
    Proteins. 2005 May 15;59(3):467-75 PMID: 15768403
  56. FFAS03: a server for profile--profile sequence alignments.
    Nucleic Acids Res. 2005 Jul 1;33(Web Server issue):W284-8 PMID: 15980471
  57. SCRATCH: a protein structure and structural feature prediction server.
    Nucleic Acids Res. 2005 Jul 1;33(Web Server issue):W72-6 PMID: 15980571
  58. The Cm56 tRNA modification in archaea is catalyzed either by a specific 2'-O-methylase, or a C/D sRNP.
    RNA. 2005 Jul;11(7):1051-63 PMID: 15987815
  59. The PD-(D/E)XK superfamily revisited: identification of new members among proteins involved in DNA metabolism and functional predictions for domains of (hitherto) unknown function.
    BMC Bioinformatics. 2005;6:172 PMID: 16011798
  60. Structural analysis of a set of proteins resulting from a bacterial genomics project.
    Proteins. 2005 Sep 1;60(4):787-96 PMID: 16021622
  61. Natural history of S-adenosylmethionine-binding proteins.
    BMC Struct Biol. 2005;5:19 PMID: 16225687
  62. MODOMICS: a database of RNA modification pathways.
    Nucleic Acids Res. 2006 Jan 1;34(Database issue):D145-9 PMID: 16381833
  63. Assessment of fold recognition predictions in CASP6.
    Proteins. 2005;61 Suppl 7:46-66 PMID: 16187346
  64. FRankenstein becomes a cyborg: the automatic recombination and realignment of fold recognition models in CASP6.
    Proteins. 2005;61 Suppl 7:106-13 PMID: 16187351
  65. A minimal estimate for the gene content of the last universal common ancestor--exobiology from a terrestrial perspective.
    Res Microbiol. 2006 Jan-Feb;157(1):57-68 PMID: 16431085
  66. Identification and characterization of RsmE, the founding member of a new RNA base methyltransferase family.
    RNA. 2006 Mar;12(3):426-34 PMID: 16431987
  67. Molecular phylogenetics and comparative modeling of HEN1, a methyltransferase involved in plant microRNA biogenesis.
    BMC Evol Biol. 2006;6:6 PMID: 16433904
  68. Identification of correct regions in protein models using structural, alignment, and consensus information.
    Protein Sci. 2006 Apr;15(4):900-13 PMID: 16522791
  69. Sequence analysis and structure prediction of 23S rRNA:m1G methyltransferases reveals a conserved core augmented with a putative Zn-binding domain in the N-terminus and family-specific elaborations in the C-terminus.
    J Mol Microbiol Biotechnol. 2002 Jan;4(1):93-9 PMID: 11763974
  70. Comparative genomics and evolution of proteins involved in RNA metabolism.
    Nucleic Acids Res. 2002 Apr 1;30(7):1427-64 PMID: 11917006
  71. Nep1p (Emg1p), a novel protein conserved in eukaryotes and archaea, is involved in ribosome biogenesis.
    Curr Genet. 2002 Feb;40(5):326-38 PMID: 11935223
  72. Understanding the evolution of restriction-modification systems: clues from sequence and structure comparisons.
    Acta Biochim Pol. 2001;48(4):935-67 PMID: 11996004
  73. An enzyme with a deep trefoil knot for the active-site architecture.
    Acta Crystallogr D Biol Crystallogr. 2002 Jul;58(Pt 7):1129-37 PMID: 12077432
  74. Structure prediction and phylogenetic analysis of a functionally diverse family of proteins homologous to the MT-A70 subunit of the human mRNA:m(6)A methyltransferase.
    J Mol Evol. 2002 Oct;55(4):431-44 PMID: 12355263
  75. The structure of the RlmB 23S rRNA methyltransferase reveals a new methyltransferase fold with a unique knot.
    Structure. 2002 Oct;10(10):1303-15 PMID: 12377117
  76. Deep trefoil knot implicated in RNA binding found in an archaebacterial protein.
    Proteins. 2003 Feb 1;50(2):177-83 PMID: 12486711
  77. Structure of the YibK methyltransferase from Haemophilus influenzae (HI0766): a cofactor bound at a site formed by a knot.
    Proteins. 2003 Apr 1;51(1):56-67 PMID: 12596263
  78. Identification of the yeast gene encoding the tRNA m1G methyltransferase responsible for modification at position 9.
    RNA. 2003 May;9(5):574-85 PMID: 12702816
  79. Can correct protein models be identified?
    Protein Sci. 2003 May;12(5):1073-86 PMID: 12717029
  80. Crystal structure of tRNA(m1G37)methyltransferase: insights into tRNA recognition.
    EMBO J. 2003 Jun 2;22(11):2593-603 PMID: 12773376
  81. GeneSilico protein structure prediction meta-server.
    Nucleic Acids Res. 2003 Jul 1;31(13):3305-7 PMID: 12824313
  82. Many paths to methyltransfer: a chronicle of convergence.
    Trends Biochem Sci. 2003 Jun;28(6):329-35 PMID: 12826405
  83. STRUCLA: a WWW meta-server for protein structure comparison and evolutionary classification.
    Bioinformatics. 2003;19 Suppl 1:i252-4 PMID: 12855467
  84. MrBayes 3: Bayesian phylogenetic inference under mixed models.
    Bioinformatics. 2003 Aug 12;19(12):1572-4 PMID: 12912839
  85. More than the sum of their parts: on the evolution of proteins from peptides.
    Bioessays. 2003 Sep;25(9):837-46 PMID: 12938173
  86. Crystal structure of tRNA (m1G37) methyltransferase from Aquifex aeolicus at 2.6 A resolution: a novel methyltransferase fold.
    Proteins. 2003 Nov 1;53(2):326-8 PMID: 14517984
  87. Functional assignment based on structural analysis: crystal structure of the yggJ protein (HI0303) of Haemophilus influenzae reveals an RNA methyltransferase with a deep trefoil knot.
    Proteins. 2003 Nov 1;53(2):329-32 PMID: 14517985
  88. Coupled prediction of protein secondary and tertiary structure.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12105-10 PMID: 14528006
  89. RNA structure and function in C/D and H/ACA s(no)RNPs.
    Curr Opin Struct Biol. 2004 Jun;14(3):335-43 PMID: 15193314
  90. The PredictProtein server.
    Nucleic Acids Res. 2004 Jul 1;32(Web Server issue):W321-6 PMID: 15215403
  91. Detecting distant homology with Meta-BASIC.
    Nucleic Acids Res. 2004 Jul 1;32(Web Server issue):W576-81 PMID: 15215454
  92. Phylogenetic relationships from three-dimensional protein structures.
    Methods Enzymol. 1990;183:670-90 PMID: 2156133
  93. Amino acid substitution matrices from protein blocks.
    Proc Natl Acad Sci U S A. 1992 Nov 15;89(22):10915-9 PMID: 1438297
  94. OB(oligonucleotide/oligosaccharide binding)-fold: common structural and functional solution for non-homologous sequences.
    EMBO J. 1993 Mar;12(3):861-7 PMID: 8458342
  95. Protein structure comparison by alignment of distance matrices.
    J Mol Biol. 1993 Sep 5;233(1):123-38 PMID: 8377180
  96. Detecting subtle sequence signals: a Gibbs sampling strategy for multiple alignment.
    Science. 1993 Oct 8;262(5131):208-14 PMID: 8211139
  97. Functional requirement of a site-specific ribose methylation in ribosomal RNA.
    Science. 1993 Dec 17;262(5141):1886-9 PMID: 8266080
  98. Interior-branch and bootstrap tests of phylogenetic trees.
    Mol Biol Evol. 1995 Mar;12(2):319-33 PMID: 7700156
  99. Genetic dissection of synthesis and function of modified nucleosides in bacterial transfer RNA.
    Prog Nucleic Acid Res Mol Biol. 1995;50:263-338 PMID: 7538683
  100. Site-specific ribose methylation of preribosomal RNA: a novel function for small nucleolar RNAs.
    Cell. 1996 Jun 28;85(7):1077-88 PMID: 8674114
  101. Identification of new RNA modifying enzymes by iterative genome search using known modifying enzymes as probes.
    Nucleic Acids Res. 1996 Oct 1;24(19):3756-62 PMID: 8871555
  102. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs.
    Nucleic Acids Res. 1997 Sep 1;25(17):3389-402 PMID: 9254694
  103. SWISS-MODEL and the Swiss-PdbViewer: an environment for comparative protein modeling.
    Electrophoresis. 1997 Dec;18(15):2714-23 PMID: 9504803
  104. The HD domain defines a new superfamily of metal-dependent phosphohydrolases.
    Trends Biochem Sci. 1998 Dec;23(12):469-72 PMID: 9868367
  105. The yeast Saccharomyces cerevisiae YDL112w ORF encodes the putative 2'-O-ribose methyltransferase catalyzing the formation of Gm18 in tRNAs.
    RNA. 1999 Jan;5(1):66-81 PMID: 9917067
  106. Novel predicted RNA-binding domains associated with the translation machinery.
    J Mol Evol. 1999 Mar;48(3):291-302 PMID: 10093218
  107. GenTHREADER: an efficient and reliable protein fold recognition method for genomic sequences.
    J Mol Biol. 1999 Apr 9;287(4):797-815 PMID: 10191147
  108. Circular permutations in the molecular evolution of DNA methyltransferases.
    J Mol Evol. 1999 Jul;49(1):161-4 PMID: 10368444
  109. Protein secondary structure prediction based on position-specific scoring matrices.
    J Mol Biol. 1999 Sep 17;292(2):195-202 PMID: 10493868
Article Info
Journal
BMC bioinformatics
Abbr.
BMC Bioinformatics
ISSN
1471-2105
Published
2007-03-05
Epub
2007-00-05
Pages
73
Language
English
Region
England
NLM ID
100965194
PMCID
PMC1829167
Subset
IM
Grants
NIAID NIH HHS · R01 AI056034 · United States
NIAID NIH HHS · AI056034 · United States
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