Home LiteratureArticle Details
PMID: 15630480 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Cobalamin-independent methionine synthase (MetE): a face-to-face double barrel that evolved by gene duplication.

PLoS biology ·Vol. 3 ·No. 2 ·2005-02-00 ·Pages e31

Pejchal R, Ludwig ML

Abstract

Cobalamin-independent methionine synthase (MetE) catalyzes the transfer of a methyl group from methyltetrahydrofolate to L-homocysteine (Hcy) without using an intermediate methyl carrier. Although MetE displays no detectable sequence homology with cobalamin-dependent methionine synthase (MetH), both enzymes require zinc for activation and binding of Hcy. Crystallographic analyses of MetE from T. maritima reveal an unusual dual-barrel structure in which the active site lies between the tops of the two (betaalpha)(8) barrels. The fold of the N-terminal barrel confirms that it has evolved from the C-terminal polypeptide by gene duplication; comparisons of the barrels provide an intriguing example of homologous domain evolution in which binding sites are obliterated. The C-terminal barrel incorporates the zinc ion that binds and activates Hcy. The zinc-binding site in MetE is distinguished from the (Cys)(3)Zn site in the related enzymes, MetH and betaine-homocysteine methyltransferase, by its position in the barrel and by the metal ligands, which are histidine, cysteine, glutamate, and cysteine in the resting form of MetE. Hcy associates at the face of the metal opposite glutamate, which moves away from the zinc in the binary E.Hcy complex. The folate substrate is not intimately associated with the N-terminal barrel; instead, elements from both barrels contribute binding determinants in a binary complex in which the folate substrate is incorrectly oriented for methyl transfer. Atypical locations of the Hcy and folate sites in the C-terminal barrel presumably permit direct interaction of the substrates in a ternary complex. Structures of the binary substrate complexes imply that rearrangement of folate, perhaps accompanied by domain rearrangement, must occur before formation of a ternary complex that is competent for methyl transfer.

MeSH Terms
Amino Acid Sequence Escherichia coli/enzymology,genetics Evolution, Molecular Gene Duplication Methyltransferases/genetics,metabolism Molecular Sequence Data Peptide Fragments/metabolism Substrate Specificity Thermotoga maritima/enzymology,genetics
Chemicals
Peptide Fragments Methyltransferases 5-methyltetrahydropteroyltriglutamate-homocysteine S-methyltransferase
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Pejchal Robert
Department of Biological Chemistry, University of Michigan, Ann Arbor, USA.
Ludwig Martha L
References (38)
38 references, click to expand
  1. Crystal structure of a methyltetrahydrofolate- and corrinoid-dependent methyltransferase.
    Structure. 2000 Aug 15;8(8):817-30 PMID: 10997901
  2. Lessons and conclusions from dissecting the mechanism of a bisubstrate enzyme: thymidylate synthase mutagenesis, function, and structure.
    Biochemistry. 2003 Jan 21;42(2):248-56 PMID: 12525151
  3. Methylation of Tethered Thiolates in [(bme-daco)Zn](2) and [(bme-daco)Cd](2) as a Model of Zinc Sulfur-Methylation Proteins.
    Inorg Chem. 1998 Aug 10;37(16):4052-4058 PMID: 11670523
  4. Automated MAD and MIR structure solution.
    Acta Crystallogr D Biol Crystallogr. 1999 Apr;55(Pt 4):849-61 PMID: 10089316
  5. Structures of the N-terminal modules imply large domain motions during catalysis by methionine synthase.
    Proc Natl Acad Sci U S A. 2004 Mar 16;101(11):3729-36 PMID: 14752199
  6. Bond Valence Sum Analysis of Metalloenzymes. 3. Predicting Bond Lengths in Adjacent Redox States Using Inner-Sphere Reorganizational Energies.
    Inorg Chem. 1998 Oct 19;37(21):5690-5692 PMID: 11670722
  7. Characterization of the zinc sites in cobalamin-independent and cobalamin-dependent methionine synthase using zinc and selenium X-ray absorption spectroscopy.
    Biochemistry. 2001 Jan 30;40(4):987-93 PMID: 11170420
  8. Structural characterization of the zinc site in protein farnesyltransferase.
    J Am Chem Soc. 2003 Aug 20;125(33):9962-9 PMID: 12914459
  9. Zinc-catalyzed sulfur alkyation:insights from protein farnesyltransferase.
    Curr Opin Chem Biol. 1999 Apr;3(2):176-81 PMID: 10226042
  10. Crystal structure of human uroporphyrinogen decarboxylase.
    EMBO J. 1998 May 1;17(9):2463-71 PMID: 9564029
  11. Zinc-thiolate intermediate in catalysis of methyl group transfer in Methanosarcina barkeri.
    Biochemistry. 2001 Oct 30;40(43):13068-78 PMID: 11669645
  12. Crystal structure of Rab geranylgeranyltransferase at 2.0 A resolution.
    Structure. 2000 Mar 15;8(3):241-51 PMID: 10745007
  13. Crystal structures of cobalamin-independent methionine synthase complexed with zinc, homocysteine, and methyltetrahydrofolate.
    J Biol Chem. 2004 Oct 22;279(43):44235-8 PMID: 15326182
  14. Cobalamin-independent methionine synthase from Escherichia coli: a zinc metalloenzyme.
    Biochemistry. 1996 Sep 24;35(38):12228-34 PMID: 8823155
  15. Identification of the zinc ligands in cobalamin-independent methionine synthase (MetE) from Escherichia coli.
    Biochemistry. 1999 Nov 30;38(48):15915-26 PMID: 10625458
  16. Zinc coordination sphere in biochemical zinc sites.
    Biometals. 2001 Sep-Dec;14(3-4):271-313 PMID: 11831461
  17. Crystallography & NMR system: A new software suite for macromolecular structure determination.
    Acta Crystallogr D Biol Crystallogr. 1998 Sep 1;54(Pt 5):905-21 PMID: 9757107
  18. Protonation state of methyltetrahydrofolate in a binary complex with cobalamin-dependent methionine synthase.
    Biochemistry. 2000 Nov 14;39(45):13880-90 PMID: 11076529
  19. Metal-coordination sphere in the methylated Ada protein-DNA co-complex.
    Chem Biol. 1994 Oct;1(2):91-7 PMID: 9383376
  20. Migration of methyl groups between aliphatic amines in water.
    J Am Chem Soc. 2003 Jan 15;125(2):310-1 PMID: 12517124
  21. Structural origins of amino acid selection without editing by cysteinyl-tRNA synthetase.
    EMBO J. 2002 Jun 3;21(11):2778-87 PMID: 12032090
  22. Location of the pteroylpolyglutamate-binding site on rabbit cytosolic serine hydroxymethyltransferase.
    J Biol Chem. 2003 Jan 24;278(4):2645-53 PMID: 12438316
  23. Structure-based perspectives on B12-dependent enzymes.
    Annu Rev Biochem. 1997;66:269-313 PMID: 9242908
  24. Processing of X-ray diffraction data collected in oscillation mode.
    Methods Enzymol. 1997;276:307-26 PMID: 27754618
  25. Protein structure comparison by alignment of distance matrices.
    J Mol Biol. 1993 Sep 5;233(1):123-38 PMID: 8377180
  26. Zinc-mediated amino acid discrimination in cysteinyl-tRNA synthetase.
    J Mol Biol. 2003 Apr 11;327(5):911-7 PMID: 12662918
  27. Betaine-homocysteine methyltransferase: zinc in a distorted barrel.
    Structure. 2002 Sep;10(9):1159-71 PMID: 12220488
  28. Cytidine deaminase complexed to 3-deazacytidine: a "valence buffer" in zinc enzyme catalysis.
    Biochemistry. 1996 Feb 6;35(5):1335-41 PMID: 8634261
  29. Synthetic models for the zinc sites in the methionine synthases.
    Inorg Chem. 2000 Sep 18;39(19):4347-53 PMID: 11196931
  30. Methylation of (2-methylethanethiol-bis-3,5-dimethylpyrazolyl)methane zinc complexes and coordination of the resulting thioether: relevance to zinc-containing alkyl transfer enzymes.
    Inorg Chem. 2001 Feb 26;40(5):919-27 PMID: 11258999
  31. Role of the active-site carboxylate in dihydrofolate reductase: kinetic and spectroscopic studies of the aspartate 26-->asparagine mutant of the Lactobacillus casei enzyme.
    Biochemistry. 1995 Mar 7;34(9):2872-82 PMID: 7893701
  32. Maximum-likelihood density modification.
    Acta Crystallogr D Biol Crystallogr. 2000 Aug;56(Pt 8):965-72 PMID: 10944333
  33. Rapid automated molecular replacement by evolutionary search.
    Acta Crystallogr D Biol Crystallogr. 1999 Feb;55(Pt 2):484-91 PMID: 10089360
  34. Structural principles of alpha/beta barrel proteins: the packing of the interior of the sheet.
    Proteins. 1989;5(2):139-48 PMID: 2664768
  35. Chemical communication across the zinc tetrathiolate cluster in Escherichia coli Ada, a metalloactivated DNA repair protein.
    Biochemistry. 2001 Sep 25;40(38):11596-603 PMID: 11560510
  36. Conversion of homocysteine to methionine by methionine synthase: a density functional study.
    J Am Chem Soc. 2003 Nov 19;125(46):13970-1 PMID: 14611228
  37. Comparison of cobalamin-independent and cobalamin-dependent methionine synthases from Escherichia coli: two solutions to the same chemical problem.
    Biochemistry. 1992 Jul 7;31(26):6045-56 PMID: 1339288
  38. Ribbons.
    Methods Enzymol. 1997;277:493-505 PMID: 18488321
Article Info
Journal
PLoS biology
Abbr.
PLoS Biol
ISSN
1545-7885
Published
2005-02-00
Epub
2004-00-28
Pages
e31
Language
English
Region
United States
NLM ID
101183755
PMCID
PMC539065
Subset
IM
Grants
NIGMS NIH HHS · R01 GM016429 · United States
NIGMS NIH HHS · T32 GM008270 · United States
NIGMS NIH HHS · GM08270 · United States
NIGMS NIH HHS · GM16429 · United States
Databases
PDB
SWISSPROT
P05694, P13009, P25665, Q9X112
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com