The Arabinose 5-Phosphate Isomerase KdsD Is Required for Virulence in Burkholderia pseudomallei

Christopher H Jenkins1, Andrew E Scott1, Paul A O'Neill2

  • 1Chemical, Biological and Radiological Division, Defence Science and Technology Laboratory, Salisbury, Wiltshire, United Kingdom.

PubMed

Insights

The KdsD enzyme is essential for Burkholderia pseudomallei virulence, impacting growth, motility, and survival in macrophages. Disabling KdsD significantly reduces disease severity in a mouse model, offering a potential drug target.

Area of Science:

  • Microbiology
  • Pathogenesis
  • Bacterial Virulence Factors

Background:

  • Burkholderia pseudomallei causes melioidosis, a severe disease with high mortality, particularly in tropical regions.
  • Virulence is mediated by factors like lipopolysaccharide (LPS) and capsular polysaccharides (CPS).
  • The KdsD enzyme is predicted to be involved in LPS core biosynthesis, specifically in producing 3-deoxy-d-manno-octulosonic acid (Kdo).

Purpose of the Study:

  • To investigate the role of the predicted arabinose-5-phosphate isomerase (API) KdsD in B. pseudomallei virulence.
  • To characterize the phenotypic consequences of kdsD deletion.
  • To assess the therapeutic potential of targeting KdsD.

Main Methods:

  • Recombinant KdsD expression, purification, and activity assays.
  • Construction and analysis of a kdsD deletion mutant in B. pseudomallei.
  • Phenotypic characterization including growth, motility, macrophage survival, and a murine model of melioidosis.
  • Identification of suppressor mutations in the CPS type IV cluster.

Main Results:

  • Deletion of kdsD resulted in significant growth defects, loss of motility, and reduced survival in macrophages.
  • The kdsD mutant showed marked attenuation in a BALB/c mouse model of melioidosis.
  • Suppressor mutations in the CPS type IV cluster did not restore virulence in vivo.
  • KdsD is crucial for B. pseudomallei virulence, independent of CPS type IV variations.

Conclusions:

  • KdsD is a critical virulence factor for B. pseudomallei.
  • Disruption of KdsD offers a promising avenue for therapeutic development against melioidosis.
  • Further research into B. pseudomallei polysaccharide complexity is warranted.