Taxonomic group: bacteria / Proteobacteria
(Phylum: Proteobacteria)
Associated disease: infection due to Klebsiella pneumoniae [ICD11:
XN741 
];
infection due to Escherichia coli [ICD11:
XN6P4 
]
The structure was elucidated in this paperNCBI PubMed ID: 26330553Publication DOI: 10.1074/jbc.M115.660803Journal NLM ID: 2985121RPublisher: Baltimore, MD: American Society for Biochemistry and Molecular Biology
Correspondence: cwhitfie

uoguelph.ca
Institutions: From the Department of Molecular and Cellular Biology, University of Guelph, Guelph, Ontario N1G 2W1, Canada
Lysogenic bacteriophages may encode enzymes that modify the structures of lipopolysaccharide O-antigen glycans, altering the structure of the bacteriophage receptor and resulting in serotype conversion. This can enhance virulence and has implications for antigenic diversity and vaccine development. Side chain glucosylation is a common modification strategy found in a number of bacterial species. To date, glucosylation has only been observed in O-antigens synthesized by Wzy-dependent pathways, one of the two most prevalent O-antigen synthesis systems. Here we exploited a heterologous system to study the glucosylation potential of a model O-antigen produced in an ATP-binding cassette (ABC) transporter-dependent system. Although O-antigen production is cryptic in Escherichia coli K-12, because of a mutation in the synthesis genes, it possesses a prophage glucosylation cluster, which modifies the GlcNAc residue in an α-L-Rha-(1→3)-d-GlcNAc motif found in the original O16 antigen. Raoultella terrigena ATCC 33257 produces an O-antigen possessing the same disaccharide motif, but its assembly uses an ABC transporter-dependent system. E. coli harboring the R. terrigena O-antigen biosynthesis genes produced an O-antigen displaying reduced reactivity toward antisera raised against the native R. terrigena repeat structure, indicative of an altered chemical structure. Structural determination using NMR revealed the addition of glucose side chains to the repeat units. O-antigen modification was dependent on a functional ABC transporter, consistent with modification in the periplasm, and was eliminated by deletion of the glucosylation genes from the E. coli chromosome, restoring native level antisera sensitivity and structure. There are therefore no intrinsic mechanistic barriers for bacteriophage-mediated O-antigen glucosylation in ABC transporter-dependent pathways.
biosynthesis, polysaccharide, O-antigen, glycosylation, ABC transporter, bacteriophage, lipopolysaccharide (LPS), nuclear magnetic resonance (NMR)
Structure type: polymer chemical repeating unit
Location inside paper: p.25564, fig.1, E. coli CWG1218 (∆wzx-wbbK ∆gtrA), R. terrigena ATCC 33257 and K. pneumoniae O12
Trivial name: repeating unit
Compound class: O-polysaccharide, O-antigen
Contained glycoepitopes: IEDB_135813,IEDB_135849,IEDB_136105,IEDB_137340,IEDB_141807,IEDB_151531,IEDB_225177,IEDB_885823
Methods: 13C NMR, 1H NMR, NMR-2D, SDS-PAGE, DNA techniques, Western blotting, genetic methods
Related record ID(s): 30968, 30969, 30970
NCBI Taxonomy refs (TaxIDs): 1354274,
573,
562Reference(s) to other database(s): GTC:G35373OX, GlycomeDB:
25158
Show glycosyltransferases
NMR conditions: in D2O at 308 K
[as TSV]
13C NMR data:
Linkage Residue C1 C2 C3 C4 C5 C6
3 aLRhap 102.3 72.1 71.6 81.4 68.4 18.1
2 Ac 175.7 23.5
bDGlcpN 102.2 57.0 82.9 69.6 77.0 61.9
1H NMR data:
Linkage Residue H1 H2 H3 H4 H5 H6
3 aLRhap 4.85 3.74 3.81 3.60 3.99 1.27
2 Ac - 2.05
bDGlcpN 4.80 3.78 3.60 3.50 3.42 3.75-3.91
1H/13C HSQC data:
Linkage Residue C1/H1 C2/H2 C3/H3 C4/H4 C5/H5 C6/H6
3 aLRhap 102.3/4.85 72.1/3.74 71.6/3.81 81.4/3.60 68.4/3.99 18.1/1.27
2 Ac 23.5/2.05
bDGlcpN 102.2/4.80 57.0/3.78 82.9/3.60 69.6/3.50 77.0/3.42 61.9/3.75-3.91
1H NMR data:
| Linkage | Residue | H1 | H2 | H3 | H4 | H5 | H6 |
| 3 | aLRhap | 4.85 | 3.74 | 3.81 | 3.60 | 3.99 | 1.27 |
| 2 | Ac |
| 2.05 | |
| | bDGlcpN | 4.80 | 3.78 | 3.60 | 3.50 | 3.42 | 3.75 3.91 |
|
13C NMR data:
| Linkage | Residue | C1 | C2 | C3 | C4 | C5 | C6 |
| 3 | aLRhap | 102.3 | 72.1 | 71.6 | 81.4 | 68.4 | 18.1 |
| 2 | Ac | 175.7 | 23.5 | |
| | bDGlcpN | 102.2 | 57.0 | 82.9 | 69.6 | 77.0 | 61.9 |
|
There is only one chemically distinct structure: