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Physical limitations on Salmonella typhi entry into cultured human intestinal epithelial cells
X Z Huang1, B Tall, W R Schwan
1Laboratory of Enteric and Sexually Transmitted Diseases, Center for Biologics Evaluation and Research, Food and Drug Administration, Bethesda, Maryland 20892, USA.
Abstract:
Kinetic studies of Salmonella typhi invasion of INT407 cells at different multiplicities of infection (MOIs) have revealed a strict physical limitation on S. typhi entry at MOIs of >/=40. Staining of infected monolayers to distinguish intracellular from extracellular bacteria revealed that all monolayer cells are susceptible to infection and that internalized bacteria are typically contained in one to three separate clusters per cell during the first 60 min. Scanning and transmission electron microscopic analyses of time course-infected monolayers showed that at early times postinfection, bacteria bind to shortened, coalesced microvilli in one to three focal aggregate structures per host cell surface. As reported previously for S. typhimurium, focal aggregates progress to conical membrane ruffles that appear to engulf one or a few centrally contained S. typhi cells by a macropinocytic process, which enhanced the entry of simultaneously added Escherichia coli HB101 about 30-fold. Additionally, kinetic studies showed that at an MOI of approximately 400, maximal S. typhi entry is virtually completed within 30 to 35 min. Monolayers pretreated with S. typhi for 30 min to saturate the entry process were severely reduced in the ability to internalize subsequently added kanamycin-resistant strains of S. typhi or S. typhimurium, but E. coli HB101(pRI203) expressing the cloned Yersinia inv gene was not reduced in entry. In invasion inhibition assays, anti-beta1 integrin antibodies markedly reduced E. coli HB101(pRI203) invasion efficiency but did not reduce S. typhi entry. Collectively, these data provide direct physical and visual evidence which indicates that S. typhi organisms are internalized at a limited number (i.e., two to four) of sites on host cells. S. typhi and S. typhimurium likely share INT407 cell entry receptors which do not appear to be members of the beta1 integrin superfamily.
Insights
Salmonella typhi invasion of INT407 cells is physically limited to a few sites per cell. This suggests shared entry mechanisms with Salmonella typhimurium, distinct from beta1 integrin pathways.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Salmonella typhi invades host cells, but the mechanisms and limitations of this process are not fully understood.
- Understanding bacterial entry is crucial for developing effective treatments against Salmonella infections.
Purpose of the Study:
- To investigate the physical limitations and cellular mechanisms governing Salmonella typhi invasion of INT407 cells.
- To identify potential shared entry receptors between Salmonella typhi and Salmonella typhimurium.
Main Methods:
- Kinetic studies at various multiplicities of infection (MOIs).
- Staining to differentiate intracellular and extracellular bacteria.
- Scanning and transmission electron microscopy.
- Invasion inhibition assays using antibodies and gene expression.
Main Results:
- Salmonella typhi entry is physically limited to 2-4 sites per cell, with saturation occurring rapidly at high MOIs.
- Bacteria aggregate on microvilli, forming ruffles that engulf bacteria via macropinocytosis, enhancing entry.
- Salmonella typhi and Salmonella typhimurium appear to share entry receptors, which are not beta1 integrins.
Conclusions:
- Salmonella typhi invasion is a receptor-limited process on INT407 cells.
- The findings suggest a common entry mechanism for Salmonella species into intestinal cells, independent of beta1 integrins.