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Fibrinogen Activates the Capture of Human Plasminogen by Staphylococcal Fibronectin-Binding Proteins
Philippe Herman-Bausier1, Giampiero Pietrocola2, Timothy J Foster3
1Institute of Life Sciences, Université catholique de Louvain, Louvain-la-Neuve, Belgium.
Abstract:
Invasive bacterial pathogens can capture host plasminogen (Plg) and allow it to form plasmin. This process is of medical importance as surface-bound plasmin promotes bacterial spread by cleaving tissue components and favors immune evasion by degrading opsonins. In Staphylococcus aureus, Plg binding is in part mediated by cell surface fibronectin-binding proteins (FnBPs), but the underlying molecular mechanism is not known. Here, we use single-cell and single-molecule techniques to demonstrate that FnBPs capture Plg by a sophisticated activation mechanism involving fibrinogen (Fg), another ligand found in the blood. We show that while FnBPs bind to Plg through weak (∼200-pN) molecular bonds, direct interaction of the adhesins with Fg through the high-affinity dock, lock, and latch mechanism dramatically increases the strength of the FnBP-Plg bond (up to ∼2,000 pN). Our results point to a new model in which the binding of Fg triggers major conformational changes in the FnBP protein, resulting in the buried Plg-binding domains being projected and exposed away from the cell surface, thereby promoting strong interactions with Plg. This study demonstrated a previously unidentified role for a ligand-binding interaction by a staphylococcal cell surface protein, i.e., changing the protein orientation to activate a cryptic biological function.IMPORTANCEStaphylococcus aureus captures human plasminogen (Plg) via cell wall fibronectin-binding proteins (FnBPs), but the underlying molecular mechanism is not known. Here we show that the forces involved in the interaction between Plg and FnBPs on the S. aureus surface are weak. However, we discovered that binding of fibrinogen to FnBPs dramatically strengthens the FnBP-Plg bond, therefore revealing an unanticipated role for Fg in the capture of Plg by S. aureus These experiments favor a model where Fg-induced conformational changes in FnBPs promote their interaction with Plg. This work uncovers a previously undescribed activation mechanism for a staphylococcal surface protein, whereby ligand-binding elicits a cryptic biological function.
Insights
Staphylococcus aureus uses fibronectin-binding proteins (FnBPs) to capture host plasminogen (Plg). Fibrinogen binding to FnBPs dramatically strengthens this interaction, revealing a new mechanism for pathogen invasion and immune evasion.
Area of Science:
- Microbiology and Molecular Biology
- Host-Pathogen Interactions
- Biophysics
Background:
- Invasive bacterial pathogens, like Staphylococcus aureus, capture host plasminogen (Plg) to form plasmin.
- Surface-bound plasmin aids bacterial spread and immune evasion by degrading host tissues and opsonins.
- Staphylococcus aureus utilizes cell surface fibronectin-binding proteins (FnBPs) for Plg binding, but the mechanism remains unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which Staphylococcus aureus FnBPs capture plasminogen.
- To investigate the role of fibrinogen (Fg) in modulating the interaction between FnBPs and plasminogen.
Main Methods:
- Employed single-cell and single-molecule techniques to analyze FnBP-Plg interactions.
- Investigated the influence of fibrinogen binding on the mechanical strength of FnBP-Plg bonds.
Main Results:
- Demonstrated that FnBPs initially bind plasminogen with weak molecular bonds (approximately 200 pN).
- Showed that fibrinogen binding to FnBPs significantly enhances the FnBP-Plg bond strength, reaching up to 2,000 pN.
- Revealed that fibrinogen binding induces major conformational changes in FnBPs, exposing cryptic plasminogen-binding domains.
Conclusions:
- Proposed a novel model where fibrinogen acts as a trigger, activating FnBPs to strongly bind plasminogen.
- Uncovered a previously unknown mechanism of ligand-induced activation of cryptic biological functions in staphylococcal surface proteins.
- Highlighted the critical role of fibrinogen in facilitating Staphylococcus aureus plasminogen capture for enhanced virulence.
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