Identification of a second glycoform of the clinically prevalent O1 antigen from Klebsiella pneumoniae

Author:

Kelly Steven D.1,Ovchinnikova Olga G.1,Müller Fabian2,Steffen Michael2,Braun Martin2,Sweeney Ryan P.3ORCID,Kowarik Michael2,Follador Rainer2ORCID,Lowary Todd L.345ORCID,Serventi Fabio2ORCID,Whitfield Chris1ORCID

Affiliation:

1. Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON N1G 2W1, Canada

2. LimmaTech Biologics AG, Schlieren 8952, Switzerland

3. Department of Chemistry, University of Alberta, Edmonton, AB T6G 2G2, Canada

4. Institute of Biological Chemistry, Academia Sinica, Taipei, Nangang 11529, Taiwan

5. Institute of Biochemical Sciences, National Taiwan University, Taipei 10617, Taiwan

Abstract

Carbapenemase and extended β-lactamase-producing Klebsiella pneumoniae isolates represent a major health threat, stimulating increasing interest in immunotherapeutic approaches for combating Klebsiella infections. Lipopolysaccharide O antigen polysaccharides offer viable targets for immunotherapeutic development, and several studies have described protection with O-specific antibodies in animal models of infection. O1 antigen is produced by almost half of clinical Klebsiella isolates. The O1 polysaccharide backbone structure is known, but monoclonal antibodies raised against the O1 antigen showed varying reactivity against different isolates that could not be explained by the known structure. Reinvestigation of the structure by NMR spectroscopy revealed the presence of the reported polysaccharide backbone (glycoform O1a), as well as a previously unknown O1b glycoform composed of the O1a backbone modified with a terminal pyruvate group. The activity of the responsible pyruvyltransferase (WbbZ) was confirmed by western immunoblotting and in vitro chemoenzymatic synthesis of the O1b terminus. Bioinformatic data indicate that almost all O1 isolates possess genes required to produce both glycoforms. We describe the presence of O1ab-biosynthesis genes in other bacterial species and report a functional O1 locus on a bacteriophage genome. Homologs of wbbZ are widespread in genetic loci for the assembly of unrelated glycostructures in bacteria and yeast. In K. pneumoniae , simultaneous production of both O1 glycoforms is enabled by the lack of specificity of the ABC transporter that exports the nascent glycan, and the data reported here provide mechanistic understanding of the capacity for evolution of antigenic diversity within an important class of biomolecules produced by many bacteria.

Funder

Gouvernement du Canada | Natural Sciences and Engineering Research Council of Canada

UofA | Canadian Glycomics Network

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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