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Published on: February 23, 2014
Function of BriC peptide in the pneumococcal competence and virulence portfolio
Surya D Aggarwal1, Rory Eutsey1, Jacob West-Roberts1
1Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA, United States of America.
Abstract:
Streptococcus pneumoniae (pneumococcus) is an opportunistic pathogen that causes otitis media, sinusitis, pneumonia, meningitis and sepsis. The progression to this pathogenic lifestyle is preceded by asymptomatic colonization of the nasopharynx. This colonization is associated with biofilm formation; the competence pathway influences the structure and stability of biofilms. However, the molecules that link the competence pathway to biofilm formation are unknown. Here, we describe a new competence-induced gene, called briC, and demonstrate that its product promotes biofilm development and stimulates colonization in a murine model. We show that expression of briC is induced by the master regulator of competence, ComE. Whereas briC does not substantially influence early biofilm development on abiotic surfaces, it significantly impacts later stages of biofilm development. Specifically, briC expression leads to increases in biofilm biomass and thickness at 72h. Consistent with the role of biofilms in colonization, briC promotes nasopharyngeal colonization in the murine model. The function of BriC appears to be conserved across pneumococci, as comparative genomics reveal that briC is widespread across isolates. Surprisingly, many isolates, including strains from clinically important PMEN1 and PMEN14 lineages, which are widely associated with colonization, encode a long briC promoter. This long form captures an instance of genomic plasticity and functions as a competence-independent expression enhancer that may serve as a precocious point of entry into this otherwise competence-regulated pathway. Moreover, overexpression of briC by the long promoter fully rescues the comE-deletion induced biofilm defect in vitro, and partially in vivo. These findings indicate that BriC may bypass the influence of competence in biofilm development and that such a pathway may be active in a subset of pneumococcal lineages. In conclusion, BriC is a part of the complex molecular network that connects signaling of the competence pathway to biofilm development and colonization.
Insights
A newly discovered gene, briC, promotes Streptococcus pneumoniae biofilm development and nasopharyngeal colonization. This gene
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- Streptococcus pneumoniae (pneumococcus) causes various infections, progressing from asymptomatic nasopharyngeal colonization.
- Biofilm formation is linked to pneumococcal colonization, with the competence pathway influencing biofilm structure and stability.
- The molecular link between the competence pathway and biofilm formation in pneumococcus remains largely unknown.
Purpose of the Study:
- To identify and characterize novel molecules involved in linking the pneumococcal competence pathway to biofilm development.
- To investigate the role of a newly identified competence-induced gene, briC, in pneumococcal biofilm formation and colonization.
Main Methods:
- Gene expression analysis to identify competence-induced genes.
- In vitro biofilm assays to assess the impact of briC on biofilm development.
- Murine models to evaluate the role of briC in nasopharyngeal colonization.
- Comparative genomics to determine the prevalence and variations of briC.
Main Results:
- A novel competence-induced gene, briC, was identified, and its product was shown to promote biofilm development and nasopharyngeal colonization in a murine model.
- briC significantly enhances biofilm biomass and thickness at later stages (72h) and promotes colonization, consistent with biofilm's role.
- A long briC promoter variant, found in clinically relevant lineages, enhances briC expression independently of competence, rescuing biofilm defects.
Conclusions:
- BriC is a key molecule connecting the competence pathway to biofilm development and colonization in Streptococcus pneumoniae.
- The identified briC gene and its regulatory variants play a significant role in pneumococcal pathogenesis and adaptation.
- The competence-independent pathway mediated by the long briC promoter offers a potential mechanism for enhanced colonization in specific pneumococcal strains.
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