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Updated: Apr 22, 2026

Invasion of Human Cells by a Bacterial Pathogen
Published on: March 21, 2011
Staphylococcus aureus host cell invasion and virulence in sepsis is facilitated by the multiple repeats within FnBPA
Andrew M Edwards1, Jennifer R Potts, Elisabet Josefsson
1Department of Biology and Biochemistry, University of Bath, Bath, United Kingdom.
Abstract:
Entry of Staphylococcus aureus into the bloodstream can lead to metastatic abscess formation and infective endocarditis. Crucial to the development of both these conditions is the interaction of S. aureus with endothelial cells. In vivo and in vitro studies have shown that the staphylococcal invasin FnBPA triggers bacterial invasion of endothelial cells via a process that involves fibronectin (Fn) bridging to alpha(5)beta(1) integrins. The Fn-binding region of FnBPA usually contains 11 non-identical repeats (FnBRs) with differing affinities for Fn, which facilitate the binding of multiple Fn molecules and may promote integrin clustering. We thus hypothesized that multiple repeats are necessary to trigger the invasion of endothelial cells by S. aureus. To test this we constructed variants of fnbA containing various combinations of FnBRs. In vitro assays revealed that endothelial cell invasion can be facilitated by a single high-affinity, but not low-affinity FnBR. Studies using a nisin-inducible system that controlled surface expression of FnBPA revealed that variants encoding fewer FnBRs required higher levels of surface expression to mediate invasion. High expression levels of FnBPA bearing a single low affinity FnBR bound Fn but did not invade, suggesting that FnBPA affinity for Fn is crucial for triggering internalization. In addition, multiple FnBRs increased the speed of internalization, as did higher expression levels of FnBPA, without altering the uptake mechanism. The relevance of these findings to pathogenesis was demonstrated using a murine sepsis model, which showed that multiple FnBRs were required for virulence. In conclusion, multiple FnBRs within FnBPA facilitate efficient Fn adhesion, trigger rapid bacterial uptake and are required for pathogenesis.
Insights
Multiple repeats in Staphylococcus aureus invasin FnBPA are essential for efficient bacterial entry into endothelial cells and virulence in sepsis models. High affinity binding is crucial for invasion.
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Staphylococcus aureus bloodstream entry causes metastatic abscesses and infective endocarditis.
- Bacterial interaction with endothelial cells is key to S. aureus pathogenesis.
- The invasin FnBPA mediates bacterial invasion via fibronectin (Fn) bridging to alpha(5)beta(1) integrins.
Purpose of the Study:
- To investigate the role of multiple Fn-binding repeats (FnBRs) in FnBPA for S. aureus endothelial cell invasion.
- To determine if the number and affinity of FnBRs influence bacterial uptake and virulence.
Main Methods:
- Construction and testing of fnbA variants with different FnBR combinations.
- In vitro invasion assays using endothelial cells.
- Nisin-inducible system to control FnBPA surface expression.
- Murine sepsis model to assess virulence.
Main Results:
- A single high-affinity FnBR, but not low-affinity, facilitated invasion.
- Fewer FnBRs required higher surface expression levels for invasion.
- FnBPA affinity for Fn is critical for triggering bacterial internalization.
- Multiple FnBRs and higher expression increased internalization speed.
- Multiple FnBRs were necessary for virulence in a murine sepsis model.
Conclusions:
- Multiple FnBRs in FnBPA enhance fibronectin adhesion and trigger rapid bacterial uptake.
- Bacterial invasin FnBPA's affinity and repeat number are crucial for S. aureus pathogenesis.
- Understanding FnBPA function is vital for developing strategies against S. aureus infections.
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