Home LiteratureArticle Details
PMID: 18158303 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Structural insights into RNA-dependent eukaryal and archaeal selenocysteine formation.

Nucleic acids research ·Vol. 36 ·No. 4 ·2008-03-00 ·Pages 1187-99

Araiso Y, Palioura S, Ishitani R, Sherrer RL, O'Donoghue P, Yuan J, Oshikane H, Domae N, Defranco J, Söll D, Nureki O

Abstract

The micronutrient selenium is present in proteins as selenocysteine (Sec). In eukaryotes and archaea, Sec is formed in a tRNA-dependent conversion of O-phosphoserine (Sep) by O-phosphoseryl-tRNA:selenocysteinyl-tRNA synthase (SepSecS). Here, we present the crystal structure of Methanococcus maripaludis SepSecS complexed with PLP at 2.5 A resolution. SepSecS, a member of the Fold Type I PLP enzyme family, forms an (alpha2)2 homotetramer through its N-terminal extension. The active site lies on the dimer interface with each monomer contributing essential residues. In contrast to other Fold Type I PLP enzymes, Asn247 in SepSecS replaces the conserved Asp in binding the pyridinium nitrogen of PLP. A structural comparison with Escherichia coli selenocysteine lyase allowed construction of a model of Sep binding to the SepSecS catalytic site. Mutations of three conserved active site arginines (Arg72, Arg94, Arg307), protruding from the neighboring subunit, led to loss of in vivo and in vitro activity. The lack of active site cysteines demonstrates that a perselenide is not involved in SepSecS-catalyzed Sec formation; instead, the conserved arginines may facilitate the selenation reaction. Structural phylogeny shows that SepSecS evolved early in the history of PLP enzymes, and indicates that tRNA-dependent Sec formation is a primordial process.

MeSH Terms
Amino Acid Sequence Archaeal Proteins/chemistry,classification,genetics Archaeoglobus fulgidus/enzymology Binding Sites Escherichia coli/enzymology Humans Methanococcus/enzymology Models, Molecular Molecular Sequence Data Mutation Phosphoserine/chemistry Phylogeny Selenocysteine/metabolism Sequence Alignment Transferases/chemistry,classification,genetics
Chemicals
Archaeal Proteins Selenocysteine Phosphoserine Transferases selenium transferase
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Araiso Yuhei
Department of Biological Information, Graduate School of Bioscience and Biotechnology, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama-shi, Kanagawa 226-8501, Japan.
Palioura Sotiria
Ishitani Ryuichiro
Sherrer R Lynn
O'Donoghue Patrick
Yuan Jing
Oshikane Hiroyuki
Domae Naoshi
Defranco Julian
Söll Dieter
Nureki Osamu
References (44)
44 references, click to expand
  1. A nifS-like gene, csdB, encodes an Escherichia coli counterpart of mammalian selenocysteine lyase. Gene cloning, purification, characterization and preliminary x-ray crystallographic studies.
    J Biol Chem. 1999 May 21;274(21):14768-72 PMID: 10329673
  2. Recognizing very distant sequence relationships among proteins by family profile analysis.
    Proteins. 1999 Jun 1;35(4):387-400 PMID: 10382666
  3. The Protein Data Bank.
    Nucleic Acids Res. 2000 Jan 1;28(1):235-42 PMID: 10592235
  4. The manifold of vitamin B6 dependent enzymes.
    Structure. 2000 Jan 15;8(1):R1-6 PMID: 10673430
  5. Identification of target antigen for SLA/LP autoantibodies in autoimmune hepatitis.
    Lancet. 2000 Apr 29;355(9214):1510-5 PMID: 10801173
  6. Isolation and characterization of cDNA encoding the antigenic protein of the human tRNP(Ser)Sec complex recognized by autoantibodies from patients withtype-1 autoimmune hepatitis.
    Clin Exp Immunol. 2000 Aug;121(2):364-74 PMID: 10931155
  7. Fine specificity of autoantibodies to soluble liver antigen and liver/pancreas.
    Hepatology. 2002 Feb;35(2):403-8 PMID: 11826415
  8. Analysis of the E. coli NifS CsdB protein at 2.0 A reveals the structural basis for perselenide and persulfide intermediate formation.
    J Mol Biol. 2002 Feb 1;315(5):1199-208 PMID: 11827487
  9. From cofactor to enzymes. The molecular evolution of pyridoxal-5'-phosphate-dependent enzymes.
    Chem Rec. 2001;1(6):436-47 PMID: 11933250
  10. How selenium has altered our understanding of the genetic code.
    Mol Cell Biol. 2002 Jun;22(11):3565-76 PMID: 11997494
  11. Direct detection of potential selenium delivery proteins by using an Escherichia coli strain unable to incorporate selenium from selenite into proteins.
    Proc Natl Acad Sci U S A. 2002 Jul 9;99(14):9150-3 PMID: 12084818
  12. Amino acid discrimination by a class I aminoacyl-tRNA synthetase specified by negative determinants.
    J Mol Biol. 2003 Apr 25;328(2):395-408 PMID: 12691748
  13. Multiple sequence alignment with the Clustal series of programs.
    Nucleic Acids Res. 2003 Jul 1;31(13):3497-500 PMID: 12824352
  14. Crystal structure of IscS, a cysteine desulfurase from Escherichia coli.
    J Mol Biol. 2003 Jul 25;330(5):1049-59 PMID: 12860127
  15. A genomic overview of pyridoxal-phosphate-dependent enzymes.
    EMBO Rep. 2003 Sep;4(9):850-4 PMID: 12949584
  16. Multiple protein sequence alignment from tertiary structure comparison: assignment of global and residue confidence levels.
    Proteins. 1992 Oct;14(2):309-23 PMID: 1409577
  17. Autoantibodies against a serine tRNA-protein complex implicated in cotranslational selenocysteine insertion.
    Proc Natl Acad Sci U S A. 1992 Oct 15;89(20):9739-43 PMID: 1409691
  18. On the evolution of structure in aminoacyl-tRNA synthetases.
    Microbiol Mol Biol Rev. 2003 Dec;67(4):550-73 PMID: 14665676
  19. SCOP database in 2004: refinements integrate structure and sequence family data.
    Nucleic Acids Res. 2004 Jan 1;32(Database issue):D226-9 PMID: 14681400
  20. The unusual methanogenic seryl-tRNA synthetase recognizes tRNASer species from all three kingdoms of life.
    Eur J Biochem. 2004 Feb;271(4):694-702 PMID: 14764085
  21. 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
  22. Aminoacyl-tRNAs: setting the limits of the genetic code.
    Genes Dev. 2004 Apr 1;18(7):731-8 PMID: 15082526
  23. Pyridoxal phosphate enzymes: mechanistic, structural, and evolutionary considerations.
    Annu Rev Biochem. 2004;73:383-415 PMID: 15189147
  24. Identification and characterization of phosphoseryl-tRNA[Ser]Sec kinase.
    Proc Natl Acad Sci U S A. 2004 Aug 31;101(35):12848-53 PMID: 15317934
  25. Evolutionary profiles derived from the QR factorization of multiple structural alignments gives an economy of information.
    J Mol Biol. 2005 Feb 25;346(3):875-94 PMID: 15713469
  26. RNA-dependent cysteine biosynthesis in archaea.
    Science. 2005 Mar 25;307(5717):1969-72 PMID: 15790858
  27. Structural and functional investigation of a putative archaeal selenocysteine synthase.
    Biochemistry. 2005 Oct 11;44(40):13315-27 PMID: 16201757
  28. Structural basis of RNA-dependent recruitment of glutamine to the genetic code.
    Science. 2006 Jun 30;312(5782):1950-4 PMID: 16809540
  29. MultiSeq: unifying sequence and structure data for evolutionary analysis.
    BMC Bioinformatics. 2006 Aug 16;7:382 PMID: 16914055
  30. RNA-dependent conversion of phosphoserine forms selenocysteine in eukaryotes and archaea.
    Proc Natl Acad Sci U S A. 2006 Dec 12;103(50):18923-7 PMID: 17142313
  31. Biosynthesis of selenocysteine on its tRNA in eukaryotes.
    PLoS Biol. 2007 Jan;5(1):e4 PMID: 17194211
  32. Structural insights into the second step of RNA-dependent cysteine biosynthesis in archaea: crystal structure of Sep-tRNA:Cys-tRNA synthase from Archaeoglobus fulgidus.
    J Mol Biol. 2007 Jun 29;370(1):128-41 PMID: 17512006
  33. Selenocysteine, soluble liver antigen/liver-pancreas, and autoimmune hepatitis.
    Hepatology. 2007 Jul;46(1):275-7 PMID: 17596869
  34. The role of His143 in the catalytic mechanism of Escherichia coli aspartate aminotransferase.
    J Biol Chem. 1991 Apr 5;266(10):6079-85 PMID: 2007566
  35. Improved methods for building protein models in electron density maps and the location of errors in these models.
    Acta Crystallogr A. 1991 Mar 1;47 ( Pt 2):110-9 PMID: 2025413
  36. The characterization of phosphoseryl tRNA from lactating bovine mammary gland.
    Nucleic Acids Res. 1977 Jul;4(7):2123-36 PMID: 242796
  37. [27] Maximum-likelihood heavy-atom parameter refinement for multiple isomorphous replacement and multiwavelength anomalous diffraction methods.
    Methods Enzymol. 1997;276:472-494 PMID: 27799110
  38. Gene for a novel tRNA species that accepts L-serine and cotranslationally inserts selenocysteine.
    Nature. 1988 Feb 25;331(6158):723-5 PMID: 2963963
  39. Oligoribonucleotide synthesis using T7 RNA polymerase and synthetic DNA templates.
    Nucleic Acids Res. 1987 Nov 11;15(21):8783-98 PMID: 3684574
  40. A specific hepatic transfer RNA for phosphoserine.
    Proc Natl Acad Sci U S A. 1970 Oct;67(2):688-95 PMID: 4943179
  41. Selenocysteine tRNA and serine tRNA are aminoacylated by the same synthetase, but may manifest different identities with respect to the long extra arm.
    Arch Biochem Biophys. 1994 Dec;315(2):293-301 PMID: 7986071
  42. 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
  43. Protein structure alignment by incremental combinatorial extension (CE) of the optimal path.
    Protein Eng. 1998 Sep;11(9):739-47 PMID: 9796821
  44. Structure, evolution and action of vitamin B6-dependent enzymes.
    Curr Opin Struct Biol. 1998 Dec;8(6):759-69 PMID: 9914259
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
1362-4962
Published
2008-03-00
Epub
2007-00-23
Pages
1187-99
Language
English
Region
England
NLM ID
0411011
PMCID
PMC2275076
Subset
IM
Grants
NIGMS NIH HHS · R01 GM022854 · United States
NIGMS NIH HHS · R37 GM022854 · United States
NIGMS NIH HHS · GM22854 · United States
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: [email protected]