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A role for Salmonella fimbriae in intraperitoneal infections
R A Edwards1, D M Schifferli, S R Maloy
1Department of Microbiology, University of Illinois at Urbana-Champaign, B103 Chemical and Life Sciences Building, 601 S. Goodwin Avenue, Urbana, IL 61801, USA. edwards2@uiuc.edu
Abstract:
Enteric bacteria possess multiple fimbriae, many of which play critical roles in attachment to epithelial cell surfaces. SEF14 fimbriae are only found in Salmonella enterica serovar Enteritidis (S. enteritidis) and closely related serovars, suggesting that SEF14 fimbriae may affect serovar-specific virulence traits. Despite evidence that SEF14 fimbriae are expressed by S. enteritidis in vivo, previous studies showed that SEF14 fimbriae do not mediate adhesion to the intestinal epithelium. Therefore, we tested whether SEF14 fimbriae are required for virulence at a stage in infection after the bacteria have passed the intestinal barrier. Polar mutations that disrupt the entire sef operon decreased virulence in mice more than 1,000-fold. Nonpolar mutations that disrupted sefA (encoding the major structural subunit) did not affect virulence, but mutations that disrupted sefD (encoding the putative adhesion subunit) resulted in a severe virulence defect. The results indicate that the putative SEF14 adhesion subunit is specifically required for a stage of the infection subsequent to transit across the intestinal barrier. Therefore, we tested whether SefD is required for uptake or survival in macrophages. The majority of wild-type bacteria were detected inside macrophages soon after i.p. infection, but the sefD mutants were not readily internalized by peritoneal macrophages. These results indicate that the potential SEF14 adhesion subunit is essential for efficient uptake or survival of S. enteritidis in macrophages. This report describes a role of fimbriae in intracellular infection, and indicates that fimbriae may be required for systemic infections at stages beyond the initial colonization of host epithelial surfaces.
Insights
Salmonella Enteritidis SEF14 fimbriae, specifically the SefD subunit, are crucial for bacterial uptake and survival within macrophages, impacting systemic infection stages beyond intestinal adhesion.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Enteric bacteria utilize fimbriae for attachment to host cells.
- SEF14 fimbriae are unique to Salmonella Enteritidis and may influence serovar-specific virulence.
- Previous studies indicated SEF14 fimbriae do not mediate intestinal adhesion despite in vivo expression.
Purpose of the Study:
- To investigate the role of SEF14 fimbriae in Salmonella Enteritidis virulence after intestinal transit.
- To determine if SEF14 fimbriae are required for intracellular survival or macrophage interaction.
Main Methods:
- Construction of polar and nonpolar mutations in the sef operon of Salmonella Enteritidis.
- Assessment of bacterial virulence in a mouse model.
- Evaluation of bacterial uptake and survival within peritoneal macrophages.
Main Results:
- Disruption of the entire sef operon significantly reduced virulence (>1000-fold).
- Mutations in sefA did not affect virulence, while sefD mutations caused a severe virulence defect.
- SefD mutants showed impaired internalization and/or survival in macrophages compared to wild-type bacteria.
Conclusions:
- The SEF14 adhesion subunit (SefD) is essential for Salmonella Enteritidis virulence post-intestinal barrier.
- SEF14 fimbriae mediate efficient uptake or survival of bacteria within macrophages.
- Fimbriae play a role in intracellular infection and systemic spread, extending beyond initial host surface colonization.