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Updated: Aug 24, 2026

Invasion of Human Cells by a Bacterial Pathogen
Published on: March 21, 2011
Pseudomonas aeruginosa selective adherence to and entry into human endothelial cells
M C Plotkowski1, A M Saliba, S H Pereira
1Department of Microbiology and Immunology, Universidade do Estado do Rio de Janeiro, Brazil.
Abstract:
The pathogenesis of Pseudomonas aeruginosa disseminated infections depends on bacterial interaction with blood vessels. We have hypothesized that in order to traverse the endothelial barrier, bacteria would have to adhere to and damage endothelial cells. To test this hypothesis, we studied the adherence to human endothelial cells in primary culture of the piliated P. aeruginosa strain PAK and of two isogenic nonpiliated strains: PAK/p-, which carries a mutation in the pilin structural gene, and PAK-N1, a mutant defective in the regulatory rpoN gene. PAK adhered significantly more than did the pilus-lacking strains. P. aeruginosa was also taken up by endothelial cells, as determined by quantitative bacteriologic assays and by transmission electron microscopy. This internalization of P. aeruginosa seems to be a selective process, since the piliated strain was taken up significantly more than the nonpiliated bacteria and the avirulent Escherichia coli DH5 alpha, even following bacterial centrifugation onto the cell monolayers. A significant fraction of the internalized P. aeruginosa PAK was recovered in a viable form after 6 h of residence within endothelial cells. Progressive endothelial cell damage resulted from PAK intracellular harboring, as indicated by the release of lactate dehydrogenase. An increasing concentration of PAK cells was recovered from the extracellular medium with time, suggesting that ingested bacteria were released from endothelial cells and multiplied freely. We speculate that in vivo the ability of some P. aeruginosa strains to resist intracellular residence would afford protection from host defenses and antibiotics and that the release of viable bacteria into bloodstream may represent a central feature of the pathogenesis of bacteremia in compromised patients.
Insights
Piliated Pseudomonas aeruginosa efficiently adheres to and invades human endothelial cells, causing cell damage and potentially leading to bacteremia. This highlights the role of pili in bacterial pathogenesis and survival within the bloodstream.
Area of Science:
- Microbiology
- Pathogenesis
- Cell Biology
Background:
- Pseudomonas aeruginosa disseminated infections involve interactions with blood vessels.
- Bacterial traversal of the endothelial barrier requires adherence to and damage of endothelial cells.
Purpose of the Study:
- To investigate the role of pili in Pseudomonas aeruginosa adherence to and invasion of human endothelial cells.
- To determine the impact of intracellular bacterial residence on endothelial cell viability and bacterial release.
Main Methods:
- Studied adherence of piliated (PAK) and nonpiliated (PAK/p-, PAK-N1) P. aeruginosa strains to human endothelial cells in primary culture.
- Utilized quantitative bacteriologic assays and transmission electron microscopy to assess bacterial uptake and intracellular survival.
- Measured lactate dehydrogenase release to quantify endothelial cell damage.
Main Results:
- Piliated P. aeruginosa (PAK) demonstrated significantly higher adherence to endothelial cells compared to nonpiliated strains.
- Endothelial cells selectively internalized P. aeruginosa, with the piliated strain showing greater uptake than nonpiliated bacteria and Escherichia coli.
- Intracellular P. aeruginosa caused progressive endothelial cell damage and was released into the extracellular medium in viable form, indicating multiplication.
Conclusions:
- Pili play a crucial role in Pseudomonas aeruginosa adherence to and invasion of endothelial cells.
- Intracellular residence within endothelial cells allows P. aeruginosa to evade host defenses and antibiotics, contributing to bacteremia.
- The ability of P. aeruginosa to survive and multiply within endothelial cells is a key feature in the pathogenesis of disseminated infections.
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