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Capsular Polysaccharide Interferes with Biofilm Formation by Pasteurella multocida Serogroup A
Briana Petruzzi1, Robert E Briggs2, Fred M Tatum
1Department of Biomedical Sciences and Pathobiology, Virginia-Maryland College of Veterinary Medicine, Virginia Tech, Blacksburg, Virginia, USA.
Abstract:
Pasteurella multocida is an important multihost animal and zoonotic pathogen that is capable of causing respiratory and multisystemic diseases, bacteremia, and bite wound infections. The glycosaminoglycan capsule of P. multocida is an essential virulence factor that protects the bacterium from host defenses. However, chronic infections (such as swine atrophic rhinitis and the carrier state in birds and other animals) may be associated with biofilm formation, which has not been characterized in P. multocida Biofilm formation by clinical isolates was inversely related to capsule production and was confirmed with capsule-deficient mutants of highly encapsulated strains. Capsule-deficient mutants formed biofilms with a larger biomass that was thicker and smoother than the biofilm of encapsulated strains. Passage of a highly encapsulated, poor-biofilm-forming strain under conditions that favored biofilm formation resulted in the production of less capsular polysaccharide and a more robust biofilm, as did addition of hyaluronidase to the growth medium of all of the strains tested. The matrix material of the biofilm was composed predominately of a glycogen exopolysaccharide (EPS), as determined by gas chromatography-mass spectrometry, nuclear magnetic resonance, and enzymatic digestion. However, a putative glycogen synthesis locus was not differentially regulated when the bacteria were grown as a biofilm or planktonically, as determined by quantitative reverse transcriptase PCR. Therefore, the negatively charged capsule may interfere with biofilm formation by blocking adherence to a surface or by preventing the EPS matrix from encasing large numbers of bacterial cells. This is the first detailed description of biofilm formation and a glycogen EPS by P. multocidaIMPORTANCEPasteurella multocida is an important pathogen responsible for severe infections in food animals, domestic and wild birds, pet animals, and humans. P. multocida was first isolated by Louis Pasteur in 1880 and has been studied for over 130 years. However, aspects of its lifecycle have remained unknown. Although formation of a biofilm by P. multocida has been proposed, this report is the first to characterize biofilm formation by P. multocida Of particular interest is that the biofilm matrix material contained a newly reported amylose-like glycogen as the exopolysaccharide component and that production of capsular polysaccharide (CPS) was inversely related to biofilm formation. However, even highly mucoid, poor-biofilm-forming strains could form abundant biofilms by loss of CPS or following in vitro passage under biofilm growth conditions. Therefore, the carrier state or subclinical chronic infections with P. multocida may result from CPS downregulation with concomitant enhanced biofilm formation.
Insights
The glycosaminoglycan capsule of Pasteurella multocida (P. multocida) hinders biofilm formation. Capsule-deficient P. multocida strains produce robust biofilms, crucial for understanding chronic infections.
Area of Science:
- Microbiology
- Bacteriology
- Pathogenesis
Background:
- Pasteurella multocida (P. multocida) is a significant animal and zoonotic pathogen.
- Its glycosaminoglycan capsule is a key virulence factor, protecting against host defenses.
- Chronic P. multocida infections may involve biofilm formation, a process not previously characterized.
Purpose of the Study:
- To characterize biofilm formation in P. multocida.
- To investigate the relationship between capsular polysaccharide (CPS) production and biofilm formation.
- To identify the exopolysaccharide (EPS) component of P. multocida biofilms.
Main Methods:
- Culturing clinical P. multocida isolates and capsule-deficient mutants.
- Assessing biofilm biomass, thickness, and surface morphology.
- Analyzing biofilm matrix composition using gas chromatography-mass spectrometry, nuclear magnetic resonance, and enzymatic digestion.
- Quantifying gene expression related to glycogen synthesis via reverse transcriptase PCR.
Main Results:
- Biofilm formation was inversely correlated with CPS production.
- Capsule-deficient mutants formed thicker, smoother biofilms with greater biomass.
- The primary EPS component of the biofilm matrix was identified as an amylose-like glycogen.
- Passage under biofilm-promoting conditions or hyaluronidase treatment reduced CPS and enhanced biofilm formation.
Conclusions:
- The negatively charged CPS likely inhibits P. multocida biofilm formation by interfering with surface adherence or matrix encapsulation.
- This study provides the first detailed characterization of biofilm formation and a glycogen EPS in P. multocida.
- Downregulation of CPS may facilitate the P. multocida carrier state and chronic infections through enhanced biofilm production.
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