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The fibronectin-binding MSCRAMM FnbpA of Staphylococcus aureus is a bifunctional protein that also binds to
E R Wann1, S Gurusiddappa, M Hook
1Center for Extracellular Matrix Biology, Department of Biochemistry and Biophysics, Institute of Biosciences and Technology, Texas A&M University System Health Science Center, Houston, Texas 77030-3303, USA. ewann@ibt.tamu.edu
Abstract:
Staphylococcus aureus is an important pathogen capable of causing a wide spectrum of diseases in humans and animals. This bacterium expresses a variety of virulence factors that participate in the process of infection. These include MSCRAMMs (microbial surface components recognizing adhesive matrix molecules) that mediate the adherence of the bacteria to host extracellular matrix components, such as collagen, fibronectin (Fn), and fibrinogen (Fg). Two Fn-binding MSCRAMMs, FnbpA and FnbpB, have been previously identified. The Fn binding activity has been localized to the approximately 40-amino acid residue D repeats in the C-terminal part of these proteins. However, no biological activity has yet been attributed to the N-terminal A regions of these proteins. These regions exhibit substantial amino acid sequence identity to the A regions of other staphylococcal MSCRAMMs, including ClfA, ClfB, and SdrG (Fbe), all of which bind Fg. This raises the question of whether the Fn-binding MSCRAMMs can also bind specifically to Fg. In this report, we show that a recombinant form of the A region of FnbpA does specifically recognize Fg. We localize the binding site in Fg for recombinant FnbpA to the gamma-chain, in particular to the C-terminal residues of this polypeptide, the site also recognized by ClfA. In addition, we demonstrate that recombinant FnbpA can compete with ClfA for binding to both immobilized and soluble Fg. By the use of surface plasmon resonance spectroscopy and fluorescence polarization, we determine the dissociation equilibrium constant for the interaction of recombinant FnbpA with intact immobilized Fg and with a synthetic C-terminal gamma-chain peptide, respectively. Finally, by overexpressing FnbpA in a mutant strain of S. aureus that lacks the expression of both ClfA and ClfB, we show that native FnbpA can mediate the interaction of S. aureus with soluble Fg.
Insights
Staphylococcus aureus protein FnbpA binds fibrinogen (Fg), not just fibronectin (Fn). This finding reveals a new virulence mechanism for S. aureus infections.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Staphylococcus aureus utilizes microbial surface components recognizing adhesive matrix molecules (MSCRAMMs) for host tissue adherence.
- FnbpA and FnbpB are known fibronectin (Fn)-binding MSCRAMMs, with Fn-binding activity in their C-terminal D repeats.
- The N-terminal A regions of Fn-binding MSCRAMMs share sequence identity with fibrinogen (Fg)-binding MSCRAMMs, suggesting potential Fg binding.
Purpose of the Study:
- To investigate whether the Fn-binding MSCRAMM FnbpA can also bind fibrinogen (Fg).
- To characterize the binding interaction between FnbpA and Fg, including the specific binding site and affinity.
- To determine the role of native FnbpA in mediating S. aureus interaction with Fg.
Main Methods:
- Recombinant protein expression and purification.
- Fg binding assays using immobilized and soluble Fg.
- Surface plasmon resonance (SPR) and fluorescence polarization (FP) for binding kinetics.
- Competitive binding assays with ClfA.
- Overexpression of FnbpA in a mutant S. aureus strain.
Main Results:
- Recombinant FnbpA specifically recognizes and binds Fg.
- The FnbpA binding site on Fg is the gamma-chain, specifically its C-terminal residues, also recognized by ClfA.
- FnbpA competes with ClfA for Fg binding.
- SPR and FP quantified the binding affinity of FnbpA to Fg and its gamma-chain peptide.
- Native FnbpA mediates S. aureus adherence to soluble Fg in a strain lacking ClfA and ClfB.
Conclusions:
- The N-terminal A region of FnbpA possesses Fg-binding activity.
- FnbpA contributes to S. aureus virulence by mediating adherence to Fg via its gamma-chain.
- This dual binding capability (Fn and Fg) highlights FnbpA as a significant virulence factor.