Predicted class-I aminoacyl tRNA synthetase-like proteins in non-ribosomal peptide synthesis

被引:39
作者
Aravind, L. [1 ]
de Souza, Robson F. [1 ]
Iyer, Lakshminarayan M. [1 ]
机构
[1] NIH, Natl Ctr Biotechnol Informat, Natl Lib Med, Bethesda, MD 20894 USA
基金
美国国家卫生研究院;
关键词
BIOSYNTHESIS; EVOLUTION; REVEALS; DOMAINS; LIGASE; ENZYME; ACID;
D O I
10.1186/1745-6150-5-48
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Recent studies point to a great diversity of non-ribosomal peptide synthesis systems with major roles in amino acid and co factor biosynthesis, secondary metabolism, and post-translational modifications of proteins by peptide tags. The least studied of these systems are those utilizing tRNAs or aminoacyl-tRNA synthetases (AAtRS) in non-ribosomal peptide ligation. Results: Here we describe novel examples of AAtRS related proteins that are likely to be involved in the synthesis of widely distributed peptide-derived metabolites. Using sensitive sequence profile methods we show that the cyclodipeptide synthases (CDPSs) are members of the HUP class of Rossmannoid domains and are likely to be highly derived versions of the class I AAtRS catalytic domains. We also identify the first eukaryotic CDPSs in fungi and in animals; they might be involved in immune response in the latter organisms. We also identify a paralogous version of the methionyl-tRNA synthetase, which is widespread in bacteria, and present evidence using contextual information that it might function independently of protein synthesis as a peptide ligase in the formation of a peptide- derived secondary metabolite. This metabolite is likely to be heavily modified through multiple reactions catalyzed by a metal-binding cupin domain and a lysine N6 monooxygenase that are strictly associated with this paralogous methionyl-tRNA synthetase (MtRS). We further identify an analogous system wherein the MtRS has been replaced by more typical peptide ligases with the ATP-grasp or modular condensation-domains. Conclusions: The prevalence of these predicted biosynthetic pathways in phylogenetically distant, pathogenic or symbiotic bacteria suggests that metabolites synthesized by them might participate in interactions with the host. More generally, these findings point to a complete spectrum of recruitment of AAtRS to various non-ribosomal biosynthetic pathways, ranging from the conventional AAtRS, through closely related paralogous AAtRS dedicated to certain pathways, to highly derived versions of the class-I AAtRS catalytic domain like the CDPSs. Both the conventional AAtRS and their closely related paralogs often provide aminoacylated tRNAs for peptide ligations by MprF/Fem/MurM-type acetyltransferase fold ligases in the synthesis of peptidoglycan, N-end rule modifications of proteins, lipid aminoacylation or biosynthesis of antibiotics, such as valinamycin. Alternatively they might supply aminoacylated tRNAs for other biosynthetic pathways like that for tetrapyrrole or directly function as peptide ligases as in the case of mycothiol and those identified here. Reviewers: This article was reviewed by Andrei Osterman and Igor Zhulin.
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页数:11
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共 28 条
  • [1] Analysis of the immune-related transcriptome of a lophotrochozoan model, the marine annelid Platynereis dumerilii
    Altincicek, Boran
    Vilcinskas, Andreas
    [J]. FRONTIERS IN ZOOLOGY, 2007, 4 (1)
  • [2] Gapped BLAST and PSI-BLAST: a new generation of protein database search programs
    Altschul, SF
    Madden, TL
    Schaffer, AA
    Zhang, JH
    Zhang, Z
    Miller, W
    Lipman, DJ
    [J]. NUCLEIC ACIDS RESEARCH, 1997, 25 (17) : 3389 - 3402
  • [3] Monophyly of class I aminoacyl tRNA synthetase, USPA, ETFP, photolyase, and PP-ATPase nucleotide-binding domains: Implications for protein evolution in the RNA world
    Aravind, L
    Anantharaman, V
    Koonin, EV
    [J]. PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2002, 48 (01) : 1 - 14
  • [4] Identification and structural basis of the reaction catalyzed by CYP121, an essential cytochrome P450 in Mycobacterium tuberculosis
    Belin, Pascal
    Le Du, Marie Helene
    Fielding, Alistair
    Lequin, Olivier
    Jacquet, Mickael
    Charbonnier, Jean-Baptiste
    Lecoq, Alain
    Thai, Robert
    Courcon, Marie
    Masson, Cedric
    Dugave, Christophe
    Genet, Roger
    Pernodet, Jean-Luc
    Gondry, Muriel
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (18) : 7426 - 7431
  • [5] Aslfm, the D-aspartate ligase responsible for the addition of D-aspartic acid onto the peptidoglycan precursor of Enterococcus faecium
    Bellais, S
    Arthur, M
    Dubost, L
    Hugonnet, JE
    Gutmann, L
    van Heijenoort, J
    Legrand, R
    Brouard, JP
    Rice, L
    Mainardi, JL
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (17) : 11586 - 11594
  • [6] Crystal structure of firefly luciferase throws light on a superfamily of adenylate-forming enzymes
    Conti, E
    Franks, NP
    Brick, P
    [J]. STRUCTURE, 1996, 4 (03) : 287 - 298
  • [7] JPred: a consensus secondary structure prediction server
    Cuff, JA
    Clamp, ME
    Siddiqui, AS
    Finlay, M
    Barton, GJ
    [J]. BIOINFORMATICS, 1998, 14 (10) : 892 - 893
  • [8] de Souza RF, 2009, BIOCHIM BIOPHYS ACTA, V1799, P302
  • [9] Cupins: the most functionally diverse protein superfamily?
    Dunwell, JM
    Purvis, A
    Khuri, S
    [J]. PHYTOCHEMISTRY, 2004, 65 (01) : 7 - 17
  • [10] Aminoacyl-tRNA recognition by the FemXWv transferase for bacterial cell wall synthesis
    Fonvielle, Matthieu
    Chemama, Maryline
    Villet, Regis
    Lecerf, Maxime
    Bouhss, Ahmed
    Valery, Jean-Marc
    Etheve-Quelquejeu, Melanie
    Arthur, Michel
    [J]. NUCLEIC ACIDS RESEARCH, 2009, 37 (05) : 1589 - 1601