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Journal of Bacteriology, January 2002, p . 323-326, Vol . 184, No . 1 WbjA Adds Glucose To Complete the O-Antigen Trisaccharide Repeating Unit of the Lipopolysaccharide of Pseudomonas aeruginosa Serogroup O11
Charles R . Dean,1, Department of Microbiology, University of Virginia Health Sciences Center, Charlottesville, Virginia 22908,1 Complex Carbohydrate Research Center, University of Georgia, Athens, Georgia 306022 Received 20 August 2001/ Accepted 20 September 2001
Synthesis of P . aeruginosa serogroup O11 (3), O5 (2), and O6 (1) O antigens proceeds by the Wzy (O-antigen polymerase)-dependent mechanism typical of heteropolymeric O antigens . According to a current model (5), individual O-antigen repeating units are synthesized on the cytoplasmic face of the inner membrane through successive addition of sugar residues to the C55-lipid carrier molecule undecaprenol phosphate (Und-PP) . The inner membrane protein Wzx acts as a translocase, moving Und-PP-linked repeating units to the periplasmic face of the inner membrane, where they are polymerized into full-length O antigen by Wzy . Mutants lacking the O-antigen polymerase are unable to combine individual O-antigen repeating units into full-length O antigen . This results in a distinctive LPS profile on silver-stained polyacrylamide gel electrophoresis (PAGE), consisting of an LPS core band and a single larger band representing LPS core containing a single complete O-antigen unit, a phenotype referred to as core + one . The overall distribution of O-antigen chain lengths is controlled by another membrane protein, Wzz . The O-antigen polymer is transferred to the lipid A-LPS core by the O-antigen ligase, WaaL, a protein encoded outside the cluster containing the genes for O-antigen synthesis . The O-antigen gene locus of the P . aeruginosa serogroup O11 strain PA103 has been characterized (3) and consists of 11 open reading frames (ORFs) (Fig . 1), including the wzz, wzx, and wzy genes required for Wzy-dependent O-antigen synthesis . The remaining genes encode predicted proteins, designated WbjA to WbjF, WbpL, and WbpM, which exhibit homology to polysaccharide biosynthetic proteins that presumably function in concert to synthesize individual O-antigen units (3) .
In many O-antigen biosynthesis loci, transferase genes are organized in reverse order with respect to the corresponding O-antigen unit, so that the most upstream gene encodes the glycosyltransferase that adds the last sugar to complete the O-antigen unit (14, 19) . This suggests that WbjA may transfer the final sugar to complete synthesis of the serogroup O11 O-antigen unit . To determine the role of wbjA in O-antigen synthesis, a nonpolar insertion in PA103 was constructed . Briefly, an approximately 650-bp ScaI fragment containing part of wbjA was cloned into SmaI-digested pEX100T (22) . A gentamicin resistance determinant (aacC1), recovered as a SmaI fragment from plasmid pUCGM (21), was then ligated into the unique SnaBI site within wbjA in the same orientation as wbjA . This plasmid was introduced into PA103 (11) as previously described (3) . Gene replacement was confirmed by PCR amplification of chromosomal DNA from PA103 and PA103 wbjA::aacC1 using primers flanking the aacC1 insertion site in wbjA . The PCR product from PA103 wbjA::aacC1 was larger than that generated from wild-type chromosomal DNA by approximately 850 bp, consistent with the size of the aacC1 gene as estimated by agarose gel electrophoresis . Compared to LPS from the wild-type strain PA103 (Fig . 2A and 2B, lane 1), PA103 wbjA::aacC1 is devoid of full-length O antigen (Fig . 2A and 2B, lane 3), establishing a role for WbjA in serogroup O11 O-antigen synthesis . When plasmid pCD201, containing the entire wbjA gene (Fig . 1), was transferred to PA103 wbjA::aacC1, complementation of the LPS defect was observed (Fig . 2A and 2B, lane 4) confirming that the mutation was nonpolar and that the mutant phenotype resulted solely from the loss of WbjA .
Further supporting the incomplete nature of the core + 2/3 LPS, a serogroup O11-specific monoclonal antibody which preferentially recognizes forms of LPS containing from one to five O repeating units (3) reacted with the core + one band produced by PA103 wzy::aacC1 (Fig . 2C, lane 2), but failed to react with the core + 2/3 band from PA103 wbjA::aacC1 (Fig . 2C, lane 3) . This suggests that the missing sugar residue of the O-antigen is important for recognition by the monoclonal antibody . Many P . aeruginosa strains produce common antigen or A-band LPS (8) . Since most serogroup-specific O-antigen genes, including wbjA, are not distributed among the various serogroup strains, it is unlikely that they would participate in synthesis of the conserved common antigen . As expected, and similar to what was previously observed in PA103 wzy::aacC1 (3), PA103 wbjA::aacC1 produced normal levels of common antigen (data not shown) . The isolation of core + 2/3 LPS from the PA103 wbjA::aacC1 mutant is intriguing in that it indicates that the incomplete O-antigen repeating unit can be recognized and translocated to the periplasm by Wzx . Naide et al . first reported the transfer of unpolymerized O-antigen units to the LPS core in Salmonella (12) . Later, it was proposed that O-antigen units must be completed prior to transport (23) . However, the isolation of the LPS core substituted with a truncated O-antigen subunit has been reported in Escherichia coli (7) and in Yersinia enterocolitica mutated in the O-antigen glycosyltransferase gene wbcG (25) . Feldman et al . (5) also showed stepwise reconstruction of O repeating unit synthesis by addition of subsets of O-antigen genes in a model E . coli strain . This allowed the isolation of an LPS core substituted with as little as a single sugar residue . The LPS from PA103 wbjA::aacC1 and PA103 wzy::aacC1 was isolated from the water layer after hot phenol-water extraction (16) . The purified LPS was hydrolyzed in aqueous 1% acetic acid for 2 h at 100°C . The hydrolysate was centrifuged at 10,000 x g for 20 min, and the supernatant was collected . The pellet was washed once with water and centrifuged again . The water wash was added to the supernatant, and the total aqueous phase, containing the oligosaccharides (OSs), was lyophilized . The lyophilized OSs were dissolved in water, applied to a Bio-Gel P-2 column (70 by 1.6 cm), and eluted with water containing 1% 1-butanol . Fractions were assayed for carbohydrate by phenol-sulfuric acid assay . Fractions representing the OS peaks were pooled and lyophilized . For both mutants, Bio-Gel P2 gel filtration chromatography of the carbohydrates released from the LPS by mild acid hydrolysis resulted in four fractions, I to IV . Fraction IV from both samples did not contain sufficient levels of material for analysis . Each OS fraction was then treated with cold aqueous 48% hydrogen fluoride (HF) and kept for 48 h at 4°C . The HF was removed by flushing under a stream of air, followed by the addition of diethyl ether (600 ml) and drying with a stream of air . This step was repeated three times, and the resulting residue was dissolved in deionized water at 4°C and lyophilized . The resulting OSs were analyzed for their glycosyl components and by mass spectrometry (MS) . The glycosyl composition of each sample was determined by the preparation and combined gas-liquid chromatography-MS analysis of partially methylated alditol acetates and of trimethylsilyl methyl glycosides, as previously described (24) . The fraction I samples from both mutants contained only rhamnose (Rha) and glucose (Glc) . The various OS fractions from both mutants were analyzed by matrix-assisted laser desorption ionization-time of flight (MALDI-TOF) MS using a Hewlett Packard LD-TOF system . The samples were dissolved in distilled water at a final concentration of 2 µg/µl, and 1 µl was mixed with the dihydroxy benzoic acid in methanol matrix for analysis . Analysis of fraction I by MALDI-TOF MS showed that it consisted primarily of a size-heterogeneous polysaccharide up to m/z = 2,700 . Numerous molecular ions were present between m/z 1,000 and 2,700, all of which differed from the others by 146 mass units, the size of a single Rha residue . Thus, fraction I is largely a rhamnan polysaccharide . These data confirm that both mutants make the common antigen (A-band LPS) and, therefore, that neither WbjA or Wzy is affected in the synthesis of this polysaccharide . The glucose in this fraction may be due to some other type of glucan, since the MALDI-TOF MS spectrum clearly shows that it is not part of the rhamnan (data not shown) . The spectra for both fraction II samples are shown in Fig . 3, and the molecular ions observed for fractions II and III and proposed compositions are given in Table 1 . Fractions II and III from both mutants contained Rha, N-acetylfucosamine (FucNAc), Glc, heptose (Hep), and galactosamine (GalN), consistent with the components of the LPS core and the O antigen . Fraction III samples from both samples contained Rha, Glc, Hep, and GalN, corresponding to the LPS core sugars, and only trace levels of FucNAc, which presumably came from slight contamination with fraction II .
The exact LPS core structure of P . aeruginosa PA103 has not been determined . However, both composition and MS analyses of PA103 wbjA::aacC1 and PA103 wzy::aacC1 are consistent with the recently reported P . aeruginosa serogroup O5 LPS core structure (17) . Based on that structure, the proposed structures for the oligosaccharides present on the LPSs from both PA103 wbjA::aacC1 and PA103 wzy::aacC1 are shown in Fig . 4 . The structural data for these two mutants supports the conclusion that PA103 wbjA::aacC1 has only a FucNAc-FucNAc disaccharide attached to the lipid A-LPS core region rather than the complete Glc-FucNAc-FucNAc O-antigen unit .
We express our gratitude to Jimi Ajijola, Mary Brinig, Jenn Lee, Yan Ren, Betty Shiberu, and Amy Staab for excellent technical assistance .
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