8 research outputs found
Serological characterization of the enterobacterial common antigen substitution of the lipopolysaccharide of "Yersinia enterocolitica" O:3
Enterobacterial common antigen (ECA) is a polysaccharide present in all members of
Enterobacteriaceae anchored either via phosphatidylglycerol (PG) or LPS to the outer leaflet of
the outer membrane (ECAPG and ECALPS, respectively). Only the latter form is ECAimmunogenic.
We previously demonstrated that Yersinia enterocolitica O: 3 and its rough (Ospecific
polysaccharide-negative) mutants were ECA-immunogenic, suggesting that they
contained ECALPS; however, it was not known which part of the LPS core region was involved in
ECA binding. To address this, we used a set of three deep-rough LPS mutants for rabbit
immunization. The polyvalent antisera obtained were: (i) analysed for the presence of anti-LPS and
anti-ECA antibodies; (ii) treated with caprylic acid (CA) to precipitate IgM antibodies and protein
aggregates; and (iii) adsorbed with live ECA-negative bacteria to obtain specific anti-ECA
antisera. We demonstrated the presence of antibodies specific for both ECAPG and ECALPS in all
antisera obtained. Both CA treatment and adsorption with ECA-negative bacteria efficiently
removed anti-LPS antibodies, resulting in specific anti-ECA sera. The LPS of the ECALPS-positive
deepest-rough mutant contained only lipid A and 3-deoxy-D-manno-oct-2-ulosonic acid (Kdo)
residues of the inner core, suggesting that ECALPS was linked to the Kdo region of LPS in Y.
enterocolitica O:3
Serological characterization of the enterobacterial common antigen substitution of the lipopolysaccharide of Yersinia enterocolitica O : 3
Enterobacterial common antigen (ECA) is a polysaccharide present in all members of
Enterobacteriaceae anchored either via phosphatidylglycerol (PG) or LPS to the outer leaflet of
the outer membrane (ECAPG and ECALPS, respectively). Only the latter form is ECAimmunogenic.
We previously demonstrated that Yersinia enterocolitica O: 3 and its rough (Ospecific
polysaccharide-negative) mutants were ECA-immunogenic, suggesting that they
contained ECALPS; however, it was not known which part of the LPS core region was involved in
ECA binding. To address this, we used a set of three deep-rough LPS mutants for rabbit
immunization. The polyvalent antisera obtained were: (i) analysed for the presence of anti-LPS and
anti-ECA antibodies; (ii) treated with caprylic acid (CA) to precipitate IgM antibodies and protein
aggregates; and (iii) adsorbed with live ECA-negative bacteria to obtain specific anti-ECA
antisera. We demonstrated the presence of antibodies specific for both ECAPG and ECALPS in all
antisera obtained. Both CA treatment and adsorption with ECA-negative bacteria efficiently
removed anti-LPS antibodies, resulting in specific anti-ECA sera. The LPS of the ECALPS-positive
deepest-rough mutant contained only lipid A and 3-deoxy-D-manno-oct-2-ulosonic acid (Kdo)
residues of the inner core, suggesting that ECALPS was linked to the Kdo region of LPS in Y.
enterocolitica O:3
Immunochemical studies on R mutants of Yersinia enterocolitica O:3
Three mutants of Yersinia enterocolitica O:3, namely: YeO3-R1, YeO3-RfbR7 and YeO3-c-trs8-R were classified on the basis of sodium dodecyl sulphate/polyacrylamide gel electrophoresis (SDS/PAGE) profile of isolated lipopolysaccharides (LPS) as belonging to the Ra- (the first) and the Rc-type (the other two mutants). Methylation analysis, in addition to 13C and 1H NMR studies of purified core oligosaccharides revealed structures similar to those established previously for the full core of Y. enterocolitica O:3 in the case of the Ra mutant, and identical to that reported for the Rc mutant Ye75R, in the case of the two other mutants.
The O-specific sugar, 6d-l-altrose, which forms a homopolymeric O-chain, was present in small amounts in all three LPS preparations, as well as in the core oligosaccharide preparations along with the Ra and the Rc sugars, characteristic of the Y. enterocolitica O:3 core. This result is in line with genetic data, indicating that it is the inner core region which is the receptor for the O-specific chain in Y. enterocolitica O:3.
This region seems likewise to be the anchoring region for the enterobacterial common antigen (ECA), as shown by SDS/PAGE/Western blot analysis with monoclonal antibodies against ECA. In addition, we also demonstrated that the Ye75R mutant Rc and its parental strain Ye75S, both were ECA-immunogenic strains. So far, ECA-immunogenic strains, i.e. those with LPS-linked ECA, were only identified in E. coli mutants of the R1, R4 and K-12 serotype
Functional characterization of Gne (UDP-N-acetylglucosamine-4-epimerase), Wzz (chain length determinant), and Wzy (O-antigen polymerase) of Yersinia enterocolitica serotype O:8
The lipopolysaccharide (LPS) O-antigen of Yersinia enterocolitica serotype O:8 is formed by branched pentasaccharide repeat units that contain N-acetylgalactosamine (GalNAc), l-fucose (Fuc), d-galactose (Gal), d-mannose (Man), and 6-deoxy-d-gulose (6d-Gul). Its biosynthesis requires at least enzymes for the synthesis of each nucleoside diphosphate-activated sugar precursor; five glycosyltransferases, one for each sugar residue; a flippase (Wzx); and an O-antigen polymerase (Wzy). As this LPS shows a characteristic preferred O-antigen chain length, the presence of a chain length determinant protein (Wzz) is also expected. By targeted mutagenesis, we identify within the O-antigen gene cluster the genes encoding Wzy and Wzz. We also present genetic and biochemical evidence showing that the gene previously called galE encodes a UDP-N-acetylglucosamine-4-epimerase (EC 5.1.3.7) required for the biosynthesis of the first sugar of the O-unit. Accordingly, the gene was renamed gne. Gne also has some UDP-glucose-4-epimerase (EC 5.1.3.2) activity, as it restores the core production of an Escherichia coli K-12 galE mutant. The three-dimensional structure of Gne was modeled based on the crystal structure of E. coli GalE. Detailed structural comparison of the active sites of Gne and GalE revealed that additional space is required to accommodate the N-acetyl group in Gne and that this space is occupied by two Tyr residues in GalE whereas the corresponding residues present in Gne are Leu136 and Cys297. The Gne Leu136Tyr and Cys297Tyr variants completely lost the UDP-N-acetylglucosamine-4-epimerase activity while retaining the ability to complement the LPS phenotype of the E. coli galE mutant. Finally, we report that Yersinia Wzx has relaxed specificity for the translocated oligosaccharide, contrary to Wzy, which is strictly specific for the O-unit to be polymerized