Characterization of N-Linked Protein Glycosylation in Helicobacter pullorum

被引:57
作者
Jervis, Adrian J. [1 ]
Langdon, Rebecca [2 ]
Hitchen, Paul [3 ,4 ,5 ]
Lawson, Andrew J. [6 ]
Wood, Alison [1 ]
Fothergill, Joanne L. [1 ]
Morris, Howard R. [3 ,7 ]
Dell, Anne [3 ]
Wren, Brendan [2 ]
Linton, Dennis [1 ]
机构
[1] Univ Manchester, Fac Life Sci, Manchester M13 9PT, Lancs, England
[2] Univ London London Sch Hyg & Trop Med, Pathogen Mol Biol Unit, London WC1E 7HT, England
[3] Univ London Imperial Coll Sci Technol & Med, Div Mol Biosci, London SW7 2AY, England
[4] Univ London Imperial Coll Sci Technol & Med, Ctr Integrat Syst Biol, London SW7 2AY, England
[5] Univ London Imperial Coll Sci Technol & Med, Fac Nat Sci, London SW7 2AY, England
[6] Hlth Protect Agcy, Ctr Infect, Lab Gastrointestinal Pathogens, London NW9 5HT, England
[7] M SCAN Ltd, Wokingham RG41 2TZ, Berks, England
基金
英国生物技术与生命科学研究理事会; 英国惠康基金;
关键词
COMPLETE GENOME SEQUENCE; CAMPYLOBACTER-JEJUNI; SUBSTRATE-SPECIFICITY; BACTERIAL; TRANSFERASE; GLYCAN; STT3; BACILLOSAMINE; GLYCOPROTEINS; BIOSYNTHESIS;
D O I
10.1128/JB.00211-10
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The first bacterial N-linked glycosylation system was discovered in Campylobacter jejuni, and the key enzyme involved in the coupling of glycan to asparagine residues within the acceptor sequon of the glycoprotein is the oligosaccharyltransferase PglB. Emerging genome sequence data have revealed that pglB orthologues are present in a subset of species from the Deltaproteobacteria and Epsilonproteobacteria, including three Helicobacter species: H. pullorum, H. canadensis, and H. winghamensis. In contrast to C. jejuni, in which a single pglB gene is located within a larger gene cluster encoding the enzymes required for the biosynthesis of the N-linked glycan, these Helicobacter species contain two unrelated pglB genes (pglB1 and pglB2), neither of which is located within a larger locus involved in protein glycosylation. In complementation experiments, the H. pullorum PglB1 protein, but not PglB2, was able to transfer C. jejuni N-linked glycan onto an acceptor protein in Escherichia coli. Analysis of the characterized C. jejuni N-glycosylation system with an in vitro oligosaccharyltransferase assay followed by matrix-assisted laser desorption ionization (MALDI) mass spectrometry demonstrated the utility of this approach, and when applied to H. pullorum, PglB1-dependent N glycosylation with a linear pentasaccharide was observed. This reaction required an acidic residue at the -2 position of the N-glycosylation sequon, as for C. jejuni. Attempted insertional knockout mutagenesis of the H. pullorum pglB2 gene was unsuccessful, suggesting that it is essential. These first data on N-linked glycosylation in a second bacterial species demonstrate the similarities to, and fundamental differences from, the well-studied C. jejuni system.
引用
收藏
页码:5228 / 5236
页数:9
相关论文
共 49 条
[1]   Two distinct but interchangeable mechanisms for flipping of lipid-linked oligosaccharides [J].
Alaimo, C ;
Catrein, I ;
Morf, L ;
Marolda, CL ;
Callewaert, N ;
Valvano, MA ;
Feldman, MF ;
Aebi, M .
EMBO JOURNAL, 2006, 25 (05) :967-976
[2]   Complete genome sequence and analysis of Wolinella succinogenes [J].
Baar, C ;
Eppinger, M ;
Raddatz, G ;
Simon, J ;
Lanz, C ;
Klimmek, O ;
Nandakumar, R ;
Gross, R ;
Rosinus, A ;
Keller, H ;
Jagtap, P ;
Linke, B ;
Meyer, F ;
Lederer, H ;
Schuster, SC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (20) :11690-11695
[3]   The versatile ε-proteobacteria:: key players in sulphidic habitats [J].
Campbell, Barbara J. ;
Engel, Annette Summers ;
Porter, Megan L. ;
Takai, Ken .
NATURE REVIEWS MICROBIOLOGY, 2006, 4 (06) :458-468
[4]   Adaptations to Submarine Hydrothermal Environments Exemplified by the Genome of Nautilia profundicola [J].
Campbell, Barbara J. ;
Smith, Julie L. ;
Hanson, Thomas E. ;
Klotz, Martin G. ;
Stein, Lisa Y. ;
Lee, Charles K. ;
Wu, Dongying ;
Robinson, Jeffrey M. ;
Khouri, Hoda M. ;
Eisen, Jonathan A. ;
Cary, S. Craig .
PLOS GENETICS, 2009, 5 (02)
[5]   The molecular basis of coupling of translocation and N-glycosylation [J].
Chavan, M ;
Lennarz, W .
TRENDS IN BIOCHEMICAL SCIENCES, 2006, 31 (01) :17-20
[6]   From peptide to protein:: Comparative analysis of the substrate specificity of N-linked glycosylation in C-jejuni [J].
Chen, Mark M. ;
Glover, Kerney Jebrell ;
Imperiali, Barbara .
BIOCHEMISTRY, 2007, 46 (18) :5579-5585
[7]   Engineering N-linked protein glycosylation with diverse O antigen lipopolysaccharide structures in Escherichia coli [J].
Feldman, MF ;
Wacker, M ;
Hernandez, M ;
Hitchen, PG ;
Marolda, CL ;
Kowarik, M ;
Morris, HR ;
Dell, A ;
Valvano, MA ;
Aebi, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (08) :3016-3021
[8]   A General O-Glycosylation System Important to the Physiology of a Major Human Intestinal Symbiont [J].
Fletcher, C. Mark ;
Coyne, Michael J. ;
Villa, Otto F. ;
Chatzidaki-Livanis, Maria ;
Comstock, Laurie E. .
CELL, 2009, 137 (02) :321-331
[9]   Coupling of MALDI-TOF mass analysis to the separation of biotinylated peptides by magnetic streptavidin beads [J].
Girault, S ;
Chassaing, G ;
Blais, JC ;
Brunot, A ;
Bolbach, G .
ANALYTICAL CHEMISTRY, 1996, 68 (13) :2122-2126
[10]   Direct biochemical evidence for the utilization of UDP-bacillosamine by PglC, an essential glycosyl-1-phosphate transferase in the Campylobacter jejuni N-linked glycosylation pathway [J].
Glover, KJ ;
Weerapana, E ;
Chen, MM ;
Imperiali, B .
BIOCHEMISTRY, 2006, 45 (16) :5343-5350