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A Murine Model of Group B Streptococcus Vaginal Colonization
Published on: November 16, 2016
Fucose utilization-associated genes fcsR and fcsK contribute to the colonization of Streptococcus pasteurianus in
Jinlu Zhu1, Miaohang Ma1, Chenxu Zheng1
1MOE Joint International Research Laboratory of Animal Health and Food Safety, College of Veterinary Medicine, Nanjing Agricultural University, Nanjing, 210014, China; Key Lab of Animal Bacteriology, Ministry of Agriculture and Rural Affairs, Nanjing, 210014, China; WOAH Reference Lab for Swine Streptococcosis, Nanjing, 210014, China.
Abstract:
Fucose, a sugar abundant in the host environment, is exploited by many bacteria through fucose utilization gene cluster (FUC) to enhance growth and virulence. Streptococcus pasteurianus is an emerging zoonotic pathogen increasingly recognized as a cause of meningitis and bacteremia in both animals and humans worldwide, yet its pathogenic mechanisms remain poorly understood. In this study, we characterized a putative FUC (E8M05_RS09690-E8M05_RS09645) in S. pasteurianus strain WUSP067, which was isolated from the brain of a piglet with meningitis. The predicted proteins encoded by this cluster share high similarity with FUC-associated proteins in S. pneumoniae. We demonstrated that genes E8M05_RS09685-E8M05_RS09645 are co-transcribed as a single operon whose expression is differentially modulated by carbohydrate availability. Specifically, galactose, glucose, and fructose markedly upregulated fcsR (E8M05_RS09690) expression but repressed operon genes, whereas fucose induced operon expression and suppressed fcsR. Although fcsR lies adjacent to the operon, unlike in S. pneumoniae, it does not directly regulate its transcription, suggesting additional regulatory factors are involved. Functional analyses revealed that both fcsR and fcsK (E8M05_RS09685) contribute to S. pasteurianus colonization in mice and are associated with pathological damage in the brain, spleen, and kidneys. Moreover, the FUC is widely distributed among isolates of both pig and human origin, underscoring its evolutionary and pathogenic significance. Collectively, these findings establish that the FUC enhances the virulence of S. pasteurianus and provide new insights into the regulatory mechanisms of FUC in bacteria.
Insights
The fucose utilization gene cluster (FUC) in Streptococcus pasteurianus enhances bacterial virulence and colonization. This study reveals FUC
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Streptococcus pasteurianus is an emerging zoonotic pathogen causing meningitis and bacteremia in humans and animals.
- Mechanisms of S. pasteurianus pathogenesis are not well understood.
- Fucose utilization gene clusters (FUC) are known virulence factors in other bacteria.
Purpose of the Study:
- To characterize a putative FUC in S. pasteurianus strain WUSP067.
- To investigate the regulation and role of the FUC in S. pasteurianus virulence.
Main Methods:
- Bioinformatic analysis of the FUC in S. pasteurianus WUSP067.
- Transcriptional analysis of FUC operon and fcsR expression under different carbohydrate conditions.
- In vivo colonization and pathogenesis studies in a mouse model.
- Distribution analysis of the FUC in clinical isolates.
Main Results:
- A putative FUC (E8M05_RS09690-E8M05_RS09645) was identified and shown to be co-transcribed as an operon.
- FUC expression is differentially regulated by carbohydrates; fucose induces operon expression, while galactose, glucose, and fructose upregulate fcsR but repress the operon.
- Both fcsR and fcsK contribute to S. pasteurianus colonization and cause pathological damage in host organs.
- The FUC is prevalent in both pig and human isolates of S. pasteurianus.
Conclusions:
- The FUC significantly enhances S. pasteurianus virulence and colonization.
- Carbohydrate availability differentially regulates FUC expression, suggesting complex regulatory mechanisms.
- The FUC is an important factor in the pathogenesis and evolution of S. pasteurianus.

