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Characterization of Inflammatory Responses During Intranasal Colonization with Streptococcus pneumoniae
Published on: January 17, 2014
Surface-associated lipoprotein PpmA of Streptococcus pneumoniae is involved in colonization in a strain-specific
L E Cron1, H J Bootsma1, N Noske2
1Laboratory of Pediatric Infectious Diseases, Radboud University Nijmegen Medical Centre, Nijmegen, The Netherlands.
Abstract:
Streptococcus pneumoniae produces two surface-associated lipoproteins that share homology with two distinct families of peptidyl-prolyl isomerases (PPIases), the streptococcal lipoprotein rotamase A (SlrA) and the putative proteinase maturation protein A (PpmA). Previously, we have demonstrated that SlrA has PPIase activity, and that the enzyme plays a role in pneumococcal virulence. Here, we investigated the contribution of PpmA to pneumococcal pathogenesis. Pneumococcal mutants of D39 and TIGR4 lacking the gene encoding PpmA were less capable of persisting in the nasopharynx of mice, demonstrating the contribution of PpmA to pneumococcal colonization. This observation was partially confirmed in vitro, as the pneumococcal mutants NCTC10319DeltappmA and TIGR4DeltacpsDeltappmA, but not D39DeltacpsDeltappmA, were impaired in adherence to Detroit 562 pharyngeal cells. This suggests that the contribution of PpmA to pneumococcal colonization is not solely the result of its role in adherence to epithelial cells. Deficiency in PpmA did not result in reduced binding to various extracellular matrix and serum proteins. Similar to SlrA, we observed that PpmA was involved in immune evasion. Uptake of PpmA-deficient D39Deltacps and NCTC10319 by human polymorphonuclear leukocytes was significantly enhanced compared to the isogenic wild-types. In addition, ingestion of D39DeltappmA, but not that of either NCTC10319DeltappmA or TIGR4DeltappmA, by murine macrophage cell line J774 was also enhanced, whereas intracellular killing remained unaffected. We conclude that PpmA contributes to the early stages of infection, i.e. colonization. The contribution of PpmA to virulence can be explained by its strain-specific role in adherence to epithelial cells and contribution to the evasion of phagocytosis.
Insights
Streptococcus pneumoniae protein PpmA aids in bacterial colonization and immune evasion. Mutants lacking PpmA showed reduced persistence in the nasopharynx and increased susceptibility to phagocytosis, highlighting PpmA
Area of Science:
- Microbiology
- Immunology
- Molecular Biology
Background:
- Streptococcus pneumoniae possesses surface lipoproteins with peptidyl-prolyl isomerase (PPIase) activity.
- SlrA, a PPIase, is known to contribute to pneumococcal virulence.
- The role of the homologous protein, PpmA, in pneumococcal pathogenesis remained largely uncharacterized.
Purpose of the Study:
- To investigate the contribution of PpmA to Streptococcus pneumoniae pathogenesis.
- To determine PpmA's role in pneumococcal colonization, adherence, and immune evasion.
Main Methods:
- Construction and characterization of PpmA-deficient Streptococcus pneumoniae mutants (D39, TIGR4, NCTC10319).
- In vivo colonization assays in a murine nasopharyngeal model.
- In vitro adherence assays using pharyngeal epithelial cells.
- Assessment of bacterial binding to extracellular matrix and serum proteins.
- Phagocytosis assays using human polymorphonuclear leukocytes and murine macrophages.
Main Results:
- PpmA-deficient mutants exhibited reduced persistence in the murine nasopharynx, indicating a role in colonization.
- Adherence to pharyngeal cells was partially impaired in specific PpmA-deficient strains.
- PpmA deficiency led to enhanced uptake by human polymorphonuclear leukocytes and murine macrophages, suggesting immune evasion properties.
- No significant difference in binding to extracellular matrix or serum proteins was observed.
Conclusions:
- PpmA plays a significant role in the early stages of Streptococcus pneumoniae infection, specifically in colonization.
- PpmA contributes to pneumococcal virulence through strain-specific adherence to epithelial cells and evasion of phagocytosis.
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