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Published on: December 17, 2015
Gene expression profile and pathogenicity of biofilm-forming Prevotella intermedia strain 17
Takeshi Yamanaka1, Tomoyo Furukawa, Chiho Matsumoto-Mashimo
1Department of Bacteriology, Osaka Dental University, Osaka, Japan. yamanaka@cc.osaka-dent.ac.jp
Background:
Prevotella intermedia (P. intermedia), a gram-negative, black-pigmented anaerobic rod, has been implicated in the development of chronic oral infection. P. intermedia strain 17 was isolated from a chronic periodontitis lesion in our laboratory and described as a viscous material producing strain. The stock cultures of this strain still maintain the ability to produce large amounts of viscous materials in the spent culture media and form biofilm-like structures. Chemical analyses of this viscous material showed that they were mainly composed of neutral sugars with mannose constituting 83% of the polysaccharides. To examine the biological effect of the extracellular viscous materials, we identified and obtained a naturally-occurring variant strain that lacked the ability to produce viscous materials in vitro from our stock culture collections of strain 17, designated as 17-2. We compared these two strains (strains 17 versus 17-2) in terms of their capacities to form biofilms and to induce abscess formation in mice as an indication of their pathogenicity. Further, gene expression profiles between these two strains in planktonic condition and gene expression patterns of strain 17 in solid and liquid cultures were also compared using microarray assays.
Results:
Strain 17 induced greater abscess formation in mice as compared to that of the variant. Strain 17, but not 17-2 showed an ability to interfere with the phagocytic activity of human neutrophils. Expression of several genes which including those for heat shock proteins (DnaJ, DnaK, ClpB, GroEL and GroES) were up-regulated two to four-fold with statistical significance in biofilm-forming strain 17 as compared to the variant strain 17-2. Strain 17 in solid culture condition exhibited more than eight-fold up-regulated expression levels of several genes which including those for levanase, extracytoplasmic function-subfamily sigma factor (sigmaE; putative) and polysialic acid transport protein (KpsD), as compared to those of strain 17 in liquid culture media.
Conclusion:
These results demonstrate that the capacity to form biofilm in P. intermedia contribute to their resistance against host innate defence responses.
Insights
Prevotella intermedia
Area of Science:
- Oral microbiology and immunology
- Bacterial pathogenesis and host defense
Background:
- Prevotella intermedia, a key player in chronic oral infections, produces extracellular viscous material rich in mannose.
- A naturally occurring variant strain (17-2) lacking viscous material production was isolated from the wild-type strain 17.
- The study investigates the role of biofilm formation in P. intermedia pathogenicity.
Purpose of the Study:
- To compare the pathogenicity of P. intermedia strain 17 and its non-viscous variant strain 17-2.
- To analyze the impact of biofilm formation on bacterial resistance to host defenses.
- To explore differential gene expression between the two strains and under different culture conditions.
Main Methods:
- Comparative analysis of biofilm formation and abscess induction in mice between strain 17 and 17-2.
- Assessment of bacterial interference with human neutrophil phagocytic activity.
- Microarray analysis to compare gene expression profiles in planktonic, solid, and liquid cultures.
Main Results:
- Strain 17 exhibited greater abscess formation and interfered with neutrophil phagocytosis compared to strain 17-2.
- Up-regulation of heat shock protein genes (DnaJ, DnaK, ClpB, GroEL, GroES) in biofilm-forming strain 17.
- Significant up-regulation of levanase, sigmaE, and KpsD genes in strain 17 under solid culture conditions.
Conclusions:
- Biofilm formation in P. intermedia enhances resistance to host innate immune responses.
- Extracellular matrix production is a critical factor in P. intermedia pathogenicity.
- Differential gene expression under varying conditions influences bacterial virulence.
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