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1.
Front Microbiol ; 5: 381, 2014.
Article in English | MEDLINE | ID: mdl-25120536

ABSTRACT

Vaccines developing immune responses toward surface carbohydrates conjugated to proteins are effective in preventing infection and death by bacterial pathogens. Traditional production of these vaccines utilizes complex synthetic chemistry to acquire and conjugate the glycan to a protein. However, glycoproteins produced by bacterial protein glycosylation systems are significantly easier to produce, and could possible be used as vaccine candidates. In this work, we functionally expressed the Burkholderia pseudomallei O polysaccharide (OPS II), the Campylobacter jejuni oligosaccharyltransferase (OTase), and a suitable glycoprotein (AcrA) in a designer E. coli strain with a higher efficiency for production of glycoconjugates. We were able to produce and purify the OPS II-AcrA glycoconjugate, and MS analysis confirmed correct glycan was produced and attached. We observed the attachment of the O-acetylated deoxyhexose directly to the acceptor protein, which expands the range of substrates utilized by the OTase PglB. Injection of the glycoprotein into mice generated an IgG immune response against B. pseudomallei, and this response was partially protective against an intranasal challenge. Our experiments show that bacterial engineered glycoconjugates can be utilized as vaccine candidates against B. pseudomallei. Additionally, our new E. coli strain SDB1 is more efficient in glycoprotein production, and could have additional applications in the future.

2.
Vet Microbiol ; 172(3-4): 455-65, 2014 Aug 27.
Article in English | MEDLINE | ID: mdl-24984948

ABSTRACT

Brucellosis is a highly contagious zoonosis that affects livestock and human beings. Laboratory diagnosis of bovine brucellosis mainly relies on serological diagnosis using serum and/or milk samples. Although there are several serological tests with different diagnostic performance and capacity to differentiate vaccinated from infected animals, there is still no standardized reference antigen for the disease. Here we validate the first recombinant glycoprotein antigen, an N-formylperosamine O-polysaccharide-protein conjugate (OAg-AcrA), for diagnosis of bovine brucellosis. This antigen can be produced in homogeneous batches without the need of culturing pathogenic brucellae; all characteristics that make it appropriate for standardization. An indirect immunoassay based on the detection of anti O-polysaccharide IgG antibodies in bovine samples was developed coupling OAg-AcrA to magnetic beads or ELISA plates. As a proof of concept and to validate the antigen, we analyzed serum, whole blood and milk samples obtained from non-infected, experimentally infected and vaccinated animals included in a vaccination/infection trial performed in our laboratory as well as more than 1000 serum and milk samples obtained from naturally infected and S19-vaccinated animals from Argentina. Our results demonstrate that OAg-AcrA-based assays are highly accurate for diagnosis of bovine brucellosis, even in vaccinated herds, using different types of samples and in different platforms. We propose this novel recombinant glycoprotein as an antigen suitable for the development of new standard immunological tests for screening and confirmatory diagnosis of bovine brucellosis in regions or countries with brucellosis-control programs.


Subject(s)
Antigens, Bacterial/immunology , Brucella/immunology , Brucellosis, Bovine/diagnosis , Glycoproteins/immunology , Animals , Bacterial Vaccines/immunology , Brucellosis, Bovine/prevention & control , Cattle , Fluorescent Antibody Technique, Indirect/methods , Fluorescent Antibody Technique, Indirect/veterinary , Humans , Milk/immunology , Milk/virology , Protein Engineering , Recombinant Proteins , Reproducibility of Results , Serologic Tests/veterinary
3.
Mol Microbiol ; 92(1): 116-37, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24673753

ABSTRACT

Bacteria of the Burkholderia cepacia complex (Bcc) are pathogens of humans, plants, and animals. Burkholderia cenocepacia is one of the most common Bcc species infecting cystic fibrosis (CF) patients and its carriage is associated with poor prognosis. In this study, we characterized a general O-linked protein glycosylation system in B. cenocepacia K56-2. The PglLBc O-oligosaccharyltransferase (O-OTase), encoded by the cloned gene bcal0960, was shown to be capable of transferring a heptasaccharide from the Campylobacter jejuni N-glycosylation system to a Neisseria meningitides-derived acceptor protein in an Escherichia coli background, indicating that the enzyme has relaxed specificities for both the sugar donor and protein acceptor. In B cenocepacia K56-2, PglLBc is responsible for the glycosylation of 23 proteins involved in diverse cellular processes. Mass spectrometry analysis revealed that these proteins are modified with a trisaccharide HexNAc-HexNAc-Hex, which is unrelated to the O-antigen biosynthetic process. The glycosylation sites that were identified existed within regions of low complexity, rich in serine, alanine, and proline. Disruption of bcal0960 abolished glycosylation and resulted in reduced swimming motility and attenuated virulence towards both plant and insect model organisms. This study demonstrates the first example of post-translational modification in Bcc with implications for pathogenesis.


Subject(s)
Bacterial Proteins/metabolism , Burkholderia cenocepacia/physiology , Burkholderia cenocepacia/pathogenicity , Genes, Bacterial , Transferases/metabolism , Burkholderia cenocepacia/enzymology , Glycoproteins/metabolism , Glycosylation , Mass Spectrometry , O Antigens/metabolism , Phylogeny , Protein Processing, Post-Translational , Trisaccharides/metabolism
4.
Anal Chem ; 85(19): 9253-61, 2013 Oct 01.
Article in English | MEDLINE | ID: mdl-24006841

ABSTRACT

O-Glycopeptides are often acidic owing to the frequent occurrence of acidic saccharides in the glycan, rendering traditional proteomic workflows that rely on positive mode tandem mass spectrometry (MS/MS) less effective. In this report, we demonstrate the utility of negative mode ultraviolet photodissociation (UVPD) MS for the characterization of acidic O-linked glycopeptide anions. This method was evaluated for a series of singly and multiply deprotonated glycopeptides from the model glycoprotein kappa casein, resulting in production of both peptide and glycan product ions that afforded 100% sequence coverage of the peptide and glycan moieties from a single MS/MS event. The most abundant and frequent peptide sequence ions were a/x-type products which, importantly, were found to retain the labile glycan modifications. The glycan-specific ions mainly arose from glycosidic bond cleavages (B, Y, C, and Z ions) in addition to some less common cross-ring cleavages. On the basis of the UVPD fragmentation patterns, an automated database searching strategy (based on the MassMatrix algorithm) was designed that is specific for the analysis of glycopeptide anions by UVPD. This algorithm was used to identify glycopeptides from mixtures of glycosylated and nonglycosylated peptides, sequence both glycan and peptide moieties simultaneously, and pinpoint the correct site(s) of glycosylation. This methodology was applied to uncover novel site-specificity of the O-linked glycosylated OmpA/MotB from the "superbug" A. baumannii to help aid in the elucidation of the functional role that protein glycosylation plays in pathogenesis.


Subject(s)
Bacterial Outer Membrane Proteins/analysis , Bacterial Proteins/analysis , Glycopeptides/analysis , Polysaccharides/analysis , Ultraviolet Rays , Acinetobacter baumannii/chemistry , Anions/analysis , Automation , Chromatography, Liquid , Mass Spectrometry , Models, Molecular
5.
Mol Microbiol ; 89(5): 816-30, 2013 Sep.
Article in English | MEDLINE | ID: mdl-23782391

ABSTRACT

Multi-drug resistant strains of Acinetobacter baumannii are increasingly being isolated in hospitals worldwide. Among the virulence factors identified in this bacterium there is a general O-glycosylation system that appears to be important for biofilm formation and virulence, and the capsular polysaccharide, which is essential for resistance to complement killing. In this work, we identified a locus that is responsible for the synthesis of the O-pentasaccharide found on the glycoproteins. Besides the enzymes required for the assembly of the glycan, additional proteins typically involved in polymerization and transport of capsule were identified within or adjacently to the locus. Mutagenesis of PglC, the initiating glycosyltransferase prevented the synthesis of both glycoproteins and capsule, resulting in abnormal biofilm structures and attenuated virulence in mice. These results, together with the structural analysis of A. baumannii 17978 capsular polysaccharide via NMR, demonstrated that the pentasaccharides that decorate the glycoproteins are also the building blocks for capsule biosynthesis. Two linked subunits, but not longer glycan chains, were detected on proteins via MS. The discovery of a bifurcated pathway for O-glycosylation and capsule synthesis not only provides insight into the biology of A. baumannii but also identifies potential novel candidates for intervention against this emerging pathogen.


Subject(s)
Acinetobacter baumannii/metabolism , Bacterial Capsules/metabolism , Metabolic Networks and Pathways/genetics , Protein Processing, Post-Translational , Acinetobacter Infections/microbiology , Acinetobacter Infections/pathology , Acinetobacter baumannii/genetics , Acinetobacter baumannii/pathogenicity , Acinetobacter baumannii/physiology , Animals , Bacterial Capsules/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Biofilms/growth & development , Gene Knockout Techniques , Glycosylation , Magnetic Resonance Spectroscopy , Mass Spectrometry , Mice , Virulence
6.
Mol Microbiol ; 89(1): 14-28, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23679002

ABSTRACT

Protein glycosylation was once considered as an eccentricity of a few bacteria. However in the recent years multiple O-glycosylation mechanisms have been identified in bacterial species from the most diverse genera, including various important human pathogens. This review focuses on summarizing the structural diversity, the various pathways and the physiological roles of this post-translational protein modification. We propose a classification of O-glycosylation based on the requirement of an oligosaccharyltransferase (OTase). OTase-dependent glycosylation utilizes an oligosaccharide synthesized on a lipid carrier that is transferred to proteins en bloc by an OTase. Multiple proteins, including the pilins, are glycosylated using this mechanism. OTase-independent glycosylation refers to the pathway in which glycosyltransferases sequentially add monosaccharides onto the target proteins. This pathway is employed for glycosylation of flagella and autotransporters. Both systems play key roles in pathogenesis. Exploiting glycosylation machineries it is now possible to generate glycoconjugates made of different proteins attached to polysaccharides derived from LPS or capsule biosynthesis. These recombinant glycoproteins can be exploited for vaccines and diagnostics of bacterial infections. Furthermore, O-glycosylation systems are promising targets for antibiotic development. Technological advances in MS and NMR will facilitate the discovery of novel glycosylation systems. Likely, the O-glycosylation pathways we currently know constitute just the tip of the iceberg of a still largely uncharacterized bacterial glycosylation world.


Subject(s)
Bacteria/metabolism , Bacterial Proteins/metabolism , Glycosylation , Bacteria/chemistry , Hexosyltransferases/metabolism , Magnetic Resonance Spectroscopy , Mass Spectrometry , Membrane Proteins/metabolism
7.
PLoS Negl Trop Dis ; 7(2): e2048, 2013.
Article in English | MEDLINE | ID: mdl-23459192

ABSTRACT

Brucellosis is a highly contagious zoonosis and still a major human health problem in endemic areas of the world. Although several diagnostic tools are available, most of them are difficult to implement especially in developing countries where complex health facilities are limited. Taking advantage of the identical structure and composition of the Brucella spp. and Yersinia enterocolitica O:9 O-polysaccharide, we explored the application of a recombinant Y. enterocolitica O:9-polysaccharide-protein conjugate (OAg-AcrA) as a novel antigen for diagnosis of human brucellosis. We have developed and validated an indirect immunoassay using OAg-AcrA coupled to magnetic beads. OAg-AcrA was produced and purified with high yields in Y. enterocolitica O:9 cells co-expressing the oligosaccharyltransferase PglB and the protein acceptor AcrA of Campylobacter jejuni without the need for culturing Brucella. Expression of PglB and AcrA in Y. enterocolitica resulted in the transfer of the host O-polysaccharide from its lipid carrier to AcrA. To validate the assay and determine the cutoff values, a receiver-operating characteristic analysis was performed using a panel of characterized serum samples obtained from healthy individuals and patients of different clinical groups. Our results indicate that, using this assay, it is possible to detect infection caused by the three main human brucellosis agents (B. abortus, B. melitensis and B. suis) and select different cutoff points to adjust sensitivity and specificity levels as needed. A cutoff value of 13.20% gave a sensitivity of 100% and a specificity of 98.57%, and a cutoff value of 16.15% resulted in a test sensitivity and specificity of 93.48% and 100%, respectively. The high diagnostic accuracy, low cost, reduced assay time and simplicity of this new glycoconjugate-magnetic beads assay makes it an attractive diagnostic tool for using not only in clinics and brucellosis reference laboratories but also in locations with limited laboratory infrastructure and/or minimally trained community health workers.


Subject(s)
Antibodies, Bacterial/blood , Antigens, Bacterial , Brucellosis/diagnosis , Diagnostic Tests, Routine/methods , Magnetics , Microspheres , Humans , Immunoassay/methods , Sensitivity and Specificity
8.
PLoS One ; 8(1): e55142, 2013.
Article in English | MEDLINE | ID: mdl-23365692

ABSTRACT

The genus Acinetobacter is comprised of a diverse group of species, several of which have raised interest due to potential applications in bioremediation and agricultural purposes. In this work, we show that many species within the genus Acinetobacter possess the genetic requirements to assemble a functional type VI secretion system (T6SS). This secretion system is widespread among Gram negative bacteria, and can be used for toxicity against other bacteria and eukaryotic cells. The most studied species within this genus is A. baumannii, an emerging nosocomial pathogen that has become a significant threat to healthcare systems worldwide. The ability of A. baumannii to develop multidrug resistance has severely reduced treatment options, and strains resistant to most clinically useful antibiotics are frequently being isolated. Despite the widespread dissemination of A. baumannii, little is known about the virulence factors this bacterium utilizes to cause infection. We determined that the T6SS is conserved and syntenic among A. baumannii strains, although expression and secretion of the hallmark protein Hcp varies between strains, and is dependent on TssM, a known structural protein required for T6SS function. Unlike other bacteria, A. baumannii ATCC 17978 does not appear to use its T6SS to kill Escherichia coli or other Acinetobacter species. Deletion of tssM does not affect virulence in several infection models, including mice, and did not alter biofilm formation. These results suggest that the T6SS fulfils an important but as-yet-unidentified role in the various lifestyles of the Acinetobacter spp.


Subject(s)
Acinetobacter baumannii/pathogenicity , Acinetobacter/pathogenicity , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Genes, Bacterial , Genome, Bacterial , Secretory Pathway/genetics , Acinetobacter/genetics , Acinetobacter/metabolism , Acinetobacter Infections/microbiology , Acinetobacter Infections/mortality , Acinetobacter baumannii/genetics , Acinetobacter baumannii/metabolism , Animals , Biofilms/growth & development , Female , Gene Deletion , Genetic Loci , Mice , Mice, Inbred C57BL , Moths/microbiology , Survival Analysis , Virulence
9.
PLoS Pathog ; 8(6): e1002758, 2012.
Article in English | MEDLINE | ID: mdl-22685409

ABSTRACT

Acinetobacter baumannii is an emerging cause of nosocomial infections. The isolation of strains resistant to multiple antibiotics is increasing at alarming rates. Although A. baumannii is considered as one of the more threatening "superbugs" for our healthcare system, little is known about the factors contributing to its pathogenesis. In this work we show that A. baumannii ATCC 17978 possesses an O-glycosylation system responsible for the glycosylation of multiple proteins. 2D-DIGE and mass spectrometry methods identified seven A. baumannii glycoproteins, of yet unknown function. The glycan structure was determined using a combination of MS and NMR techniques and consists of a branched pentasaccharide containing N-acetylgalactosamine, glucose, galactose, N-acetylglucosamine, and a derivative of glucuronic acid. A glycosylation deficient strain was generated by homologous recombination. This strain did not show any growth defects, but exhibited a severely diminished capacity to generate biofilms. Disruption of the glycosylation machinery also resulted in reduced virulence in two infection models, the amoebae Dictyostelium discoideum and the larvae of the insect Galleria mellonella, and reduced in vivo fitness in a mouse model of peritoneal sepsis. Despite A. baumannii genome plasticity, the O-glycosylation machinery appears to be present in all clinical isolates tested as well as in all of the genomes sequenced. This suggests the existence of a strong evolutionary pressure to retain this system. These results together indicate that O-glycosylation in A. baumannii is required for full virulence and therefore represents a novel target for the development of new antibiotics.


Subject(s)
Acinetobacter baumannii/metabolism , Acinetobacter baumannii/pathogenicity , Bacterial Proteins/metabolism , Biofilms , Glycoproteins/metabolism , Acinetobacter Infections/metabolism , Animals , Blotting, Western , Gene Knockout Techniques , Glycosylation , Magnetic Resonance Spectroscopy , Mass Spectrometry , Membrane Proteins/metabolism , Mice , Mice, Inbred BALB C , Microscopy, Confocal , Polysaccharides , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization , Virulence
10.
Microb Cell Fact ; 11: 13, 2012 Jan 25.
Article in English | MEDLINE | ID: mdl-22276812

ABSTRACT

BACKGROUND: Immune responses directed towards surface polysaccharides conjugated to proteins are effective in preventing colonization and infection of bacterial pathogens. Presently, the production of these conjugate vaccines requires intricate synthetic chemistry for obtaining, activating, and attaching the polysaccharides to protein carriers. Glycoproteins generated by engineering bacterial glycosylation machineries have been proposed to be a viable alternative to traditional conjugation methods. RESULTS: In this work we expressed the C. jejuni oligosaccharyltansferase (OTase) PglB, responsible for N-linked protein glycosylation together with a suitable acceptor protein (AcrA) in Yersinia enterocolitica O9 cells. MS analysis of the acceptor protein demonstrated the transfer of a polymer of N-formylperosamine to AcrA in vivo. Because Y. enterocolitica O9 and Brucella abortus share an identical O polysaccharide structure, we explored the application of the resulting glycoprotein in vaccinology and diagnostics of brucellosis, one of the most common zoonotic diseases with over half a million new cases annually. Injection of the glycoprotein into mice generated an IgG response that recognized the O antigen of Brucella, although this response was not protective against a challenge with a virulent B. abortus strain. The recombinant glycoprotein coated onto magnetic beads was efficient in differentiating between naïve and infected bovine sera. CONCLUSION: Bacterial engineered glycoproteins show promising applications for the development on an array of diagnostics and immunoprotective opportunities in the future.


Subject(s)
Bacterial Vaccines/immunology , Brucellosis, Bovine/diagnosis , Campylobacter jejuni/enzymology , Glycoproteins/biosynthesis , Protein Engineering , Animals , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Vaccines/biosynthesis , Bacterial Vaccines/genetics , Brucellosis, Bovine/prevention & control , Cattle , Glycoproteins/chemistry , Glycoproteins/genetics , Glycosylation , Hexosamines/metabolism , Hexosyltransferases/biosynthesis , Hexosyltransferases/genetics , Immunoglobulin G/immunology , Membrane Proteins/biosynthesis , Membrane Proteins/genetics , Mice , Mice, Inbred BALB C , O Antigens/immunology , Recombinant Proteins/biosynthesis , Recombinant Proteins/genetics , Recombinant Proteins/immunology , Yersinia enterocolitica/metabolism
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