Identification, structure, and characterization of an exopolysaccharide produced by Histophilus somni during biofilm

Indra Sandal1, Thomas J Inzana, Antonio Molinaro

  • 1Center for Molecular Medicine and Infectious Diseases, Virginia-Maryland Regional College of Veterinary Medicine, Virginia Tech, Blacksburg, Virginia, USA.

BMC Microbiology
|August 23, 2011
PubMed
Abstract

Insights

Histophilus somni produces an exopolysaccharide (EPS) that is a key component of its biofilm matrix. This mannose-galactose EPS enhances biofilm formation, particularly when sialylated, suggesting a role in bacterial persistence and virulence in cattle.

Area of Science:

  • Microbiology
  • Bacterial Pathogenesis
  • Bovine/Ovine Health

Background:

  • Histophilus somni is an opportunistic pathogen causing disease in cattle and sheep.
  • While lacking a capsule, H. somni forms biofilms, crucial for bacterial survival.
  • Biofilm matrices typically contain polysaccharides, but H. somni's role was uncharacterized.

Purpose of the Study:

  • To identify and characterize the polysaccharide component of H. somni biofilms.
  • To investigate the role of this polysaccharide in biofilm formation and H. somni virulence.
  • To understand the regulation of polysaccharide production under biofilm-inducing conditions.

Main Methods:

  • H. somni cultured under stress conditions favoring biofilm formation.
  • Isolation and purification of extracellular polysaccharides.
  • Structural analysis (composition, molecular size) of the polysaccharide.
  • Immuno-transmission electron microscopy and lectin binding assays to localize the polysaccharide.
  • Sialylation experiments with N-acetylneuraminic acid.
  • Gene expression analysis (RT-qPCR) of polysaccharide synthesis genes.

Main Results:

  • A branched mannose-galactose exopolysaccharide (EPS) was isolated from H. somni biofilms.
  • The EPS was found in the biofilm matrix, not cell-associated, and was heterogeneous in size.
  • Sialylation of the EPS significantly increased biofilm formation.
  • Genes in a putative polysaccharide locus were upregulated under biofilm-promoting conditions.

Conclusions:

  • H. somni produces a mannose-galactose EPS that is a structural component of its biofilm.
  • EPS sialylation enhances biofilm density, suggesting a role in host persistence.
  • The EPS and biofilm formation are likely critical for H. somni virulence and survival in systemic sites.

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