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Updated: May 11, 2026

High-throughput Assay to Phenotype Salmonella enterica Typhimurium Association, Invasion, and Replication in Macrophages
Published on: August 11, 2014
Preferential invasion of mitotic cells by Salmonella reveals that cell surface cholesterol is maximal during
António J M Santos1, Michael Meinecke, Michael B Fessler
1Section of Microbiology, MRC Centre for Molecular Bacteriology and Infection, Imperial College London, London SW7 2AZ, UK.
Abstract:
Cell surface-exposed cholesterol is crucial for cell attachment and invasion of many viruses and bacteria, including the bacterium Salmonella, which causes typhoid fever and gastroenteritis. Using flow cytometry and 3D confocal fluorescence microscopy, we found that mitotic cells, although representing only 1-4% of an exponentially growing population, were much more efficiently targeted for invasion by Salmonella. This targeting was not dependent on the spherical shape of mitotic cells, but was instead SipB and cholesterol dependent. Thus, we measured the levels of plasma membrane and cell surface cholesterol throughout the cell cycle using, respectively, brief staining with filipin and a fluorescent ester of polyethylene glycol-cholesterol that cannot flip through the plasma membrane, and found that both were maximal during mitosis. This increase was due not only to the rise in global cell cholesterol levels along the cell cycle but also to a transient loss in cholesterol asymmetry at the plasma membrane during mitosis. We measured that cholesterol, but not phosphatidylserine, changed from a ∼2080 outerinner leaflet repartition during interphase to ∼5050 during metaphase, suggesting this was specific to cholesterol and not due to a broad change of lipid asymmetry during metaphase. This explains the increase in outer surface levels that make dividing cells more susceptible to Salmonella invasion and perhaps to other viruses and bacteria entering cells in a cholesterol-dependent manner. The change in cholesterol partitioning also favoured the recruitment of activated ERM (Ezrin, Radixin, Moesin) proteins at the plasma membrane and thus supported mitotic cell rounding.
Insights
Mitotic cells are more vulnerable to Salmonella invasion due to increased cell surface cholesterol. This heightened susceptibility is linked to a loss of cholesterol asymmetry during cell division, impacting bacterial entry.
Area of Science:
- Cell Biology
- Microbiology
- Biochemistry
Background:
- Cell surface cholesterol is vital for pathogen invasion, including Salmonella.
- Salmonella causes typhoid fever and gastroenteritis.
- Mitotic cells are a small fraction of the cell population but are efficiently invaded.
Purpose of the Study:
- To investigate why mitotic cells are more susceptible to Salmonella invasion.
- To determine the role of cell surface cholesterol and lipid asymmetry in this process.
Main Methods:
- Flow cytometry and 3D confocal fluorescence microscopy were used.
- Filipin staining and fluorescently labeled cholesterol probes measured cell surface cholesterol.
- Lipid asymmetry was assessed by measuring cholesterol and phosphatidylserine distribution.
Main Results:
- Salmonella efficiently invades mitotic cells, dependent on SipB and cholesterol, not cell shape.
- Cell surface and plasma membrane cholesterol peak during mitosis.
- Mitotic cells exhibit a transient loss of cholesterol asymmetry, shifting from ~20:80 to ~50:50 outer:inner leaflet distribution.
- This altered cholesterol distribution enhances Salmonella invasion and supports mitotic cell rounding via ERM protein recruitment.
Conclusions:
- Increased cell surface cholesterol and loss of asymmetry during mitosis make cells more susceptible to Salmonella.
- This mechanism may also apply to other cholesterol-dependent pathogen invasions.
- Cholesterol redistribution during mitosis influences cell shape and pathogen entry.
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