» Articles » PMID: 15090547

Biosynthesis of a Novel 3-deoxy-D-manno-oct-2-ulosonic Acid-containing Outer Core Oligosaccharide in the Lipopolysaccharide of Klebsiella Pneumoniae

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2004 Apr 20
PMID 15090547
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

The core oligosaccharide region of Klebsiella pneumoniae lipopolysaccharide contains some novel features that distinguish it from the corresponding lipopolysaccharide region in other members of the Enterobacteriaceae family, such as Escherichia coli and Salmonella. The conserved Klebsiella outer core contains the unusual trisaccharide 3-deoxy-d-manno-oct-2-ulosonic acid (Kdo)-(2,6)-GlcN-(1,4)-GalUA. In general, Kdo residues are normally found in the inner core, but in K. pneumoniae, this Kdo residue provides the ligation site for O polysaccharide. The outer core Kdo residue can also be non-stoichiometrically substituted with an l-glycero-d-manno-heptopyranose (Hep) residue, another component more frequently found in the inner core. To understand the genetics and biosynthesis of core oligosaccharide synthesis in Klebsiella, the gene products involved in the addition of the outer core GlcN (WabH), Kdo (WabI), and Hep (WabJ) residues as well as the inner core HepIII residue (WaaQ) were identified. Non-polar mutations were created in each of the genes, and the resulting mutant lipopolysaccharide was analyzed by mass spectrometry. The in vitro glycosyltransferase activity of WabI and WabH was verified. WabI transferred a Kdo residue from CMP-Kdo onto the acceptor lipopolysaccharide. The activated precursor required for GlcN addition has not been identified. However, lysates overexpressing WabH were able to transfer a GlcNAc residue from UDP-GlcNAc onto the acceptor GalUA residue in the outer core.

Citing Articles

A Bioactive Synthetic Outer-Core Oligosaccharide Derived from a Klebsiella pneumonia Lipopolysaccharide for Bacteria Recognition.

Chen D, Srivastava A, Dubrochowska J, Liu L, Li T, Hoffmann J Chemistry. 2023; 29(25):e202203408.

PMID: 36662447 PMC: 10159924. DOI: 10.1002/chem.202203408.


Mechanistic Insights into the Capsule-Targeting Depolymerase from a Klebsiella pneumoniae Bacteriophage.

Dunstan R, Bamert R, Belousoff M, Short F, Barlow C, Pickard D Microbiol Spectr. 2021; 9(1):e0102321.

PMID: 34431721 PMC: 8552709. DOI: 10.1128/Spectrum.01023-21.


Phage Resistance in Multidrug-Resistant Klebsiella pneumoniae ST258 Evolves via Diverse Mutations That Culminate in Impaired Adsorption.

Hesse S, Rajaure M, Wall E, Johnson J, Bliskovsky V, Gottesman S mBio. 2020; 11(1).

PMID: 31992617 PMC: 6989104. DOI: 10.1128/mBio.02530-19.


Identification and Characterization of Two Klebsiella pneumoniae Lipid A Late Acyltransferases and Their Role in Virulence.

Mills G, Dumigan A, Kidd T, Hobley L, Bengoechea J Infect Immun. 2017; 85(9).

PMID: 28652313 PMC: 5563558. DOI: 10.1128/IAI.00068-17.


Biochemical Characterization of Bifunctional 3-Deoxy-β-d-manno-oct-2-ulosonic Acid (β-Kdo) Transferase KpsC from Escherichia coli Involved in Capsule Biosynthesis.

Ovchinnikova O, Doyle L, Huang B, Kimber M, Lowary T, Whitfield C J Biol Chem. 2016; 291(41):21519-21530.

PMID: 27535220 PMC: 5076823. DOI: 10.1074/jbc.M116.751115.