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Updated: Dec 22, 2025

Biomimetic Materials to Characterize Bacteria-host Interactions
Published on: November 16, 2015
Analyzing the adhesion mechanism of FnBPA, a surface adhesin from Staphylococcus aureus on its interaction with
Shobana Ponnuvel1, Sreejanani Sankar1, Karthe Ponnuraj1
1Centre of Advanced Study in Crystallography and Biophysics, University of Madras, Guindy Campus, Chennai, 600 025, India.
Abstract:
Staphylococcus aureus expresses many Microbial Surface Recognizing Adhesive Matrix Molecules (MSCRAMM's) to recognize host extracellular matrix (ECM) molecules to initiate colonization. The MSCRAMM, fibronectin binding protein A (FnBPA), is an important adhesin for S. aureus infection. FnBPA also binds with fibrinogen (Fg) by using a unique ligand binding mechanism called dock, lock and latch. Nanoparticles, especially nanosilver particles have been widely used in a variety of biomedical applications which includes disease diagnosis and treatment, drug delivery and implanted medical device coating. In a biological system, when protein molecules encounter nanoparticle, they can be absorbed onto its surface which results in the formation of protein corona. In the present study, we have analysed the fibrinogen binding ability of rFnBPA(189-512) in the presence of silver nanoparticles by employing techniques like gel shift assay, Western blot, size exclusion chromatography, enzyme-linked immunosorbent assay, bio-layer interferometry and circular dichroism spectroscopy. The results indicate that rFnBPA(189-512) is unable to bind to Fg in the presence of a nanoparticle. This could be due to the inaccessibility of the Fg binding site and conformational change in rFnBPA(189-512). With nanoparticles, rFnBPA(189-512) undergoes significant structural changes as the β-sheet content has drastically reduced to 10% from the initial 60% at higher concentration of the nanoparticle. Pathogenic bacteria interact with its surrounding environment through their surface molecules which includes MSCRAMMs. Therefore MSCRAMMs play an important role when bacteria encounter nanoparticles. The results of the present study suggest that the orientation of the protein during the absorption on the surface of a nanoparticle as well as the concentration of the nanoparticle, will dictate the function of the absorbed protein and in this case the Fg binding property of rFnBPA(189-512).
Insights
Silver nanoparticles prevent Staphylococcus aureus fibronectin binding protein A (FnBPA) from binding to fibrinogen (Fg). This interaction is crucial for bacterial colonization and is affected by nanoparticle concentration and protein orientation.
Area of Science:
- Microbiology
- Biochemistry
- Nanotechnology
Background:
- Staphylococcus aureus utilizes Microbial Surface Recognizing Adhesive Matrix Molecules (MSCRAMMs) like fibronectin binding protein A (FnBPA) for host colonization.
- FnBPA mediates bacterial adhesion by binding to host extracellular matrix (ECM) components, including fibrinogen (Fg).
- Nanoparticles, particularly nanosilver, are used in biomedical applications, and protein adsorption onto their surface forms a protein corona.
Purpose of the Study:
- To investigate the effect of silver nanoparticles on the fibrinogen binding capability of the recombinant FnBPA (rFnBPA(189-512)).
- To understand the structural alterations in rFnBPA(189-512) upon interaction with silver nanoparticles.
Main Methods:
- Utilized gel shift assay, Western blot, size exclusion chromatography, ELISA, bio-layer interferometry, and circular dichroism spectroscopy.
- Analyzed rFnBPA(189-512)'s fibrinogen binding in the presence of varying concentrations of silver nanoparticles.
Main Results:
- rFnBPA(189-512) demonstrated a significant loss of fibrinogen binding ability when exposed to silver nanoparticles.
- Circular dichroism spectroscopy revealed substantial structural changes in rFnBPA(189-512), with a decrease in β-sheet content from 60% to 10% at higher nanoparticle concentrations.
- These findings suggest nanoparticle-induced conformational changes and altered binding site accessibility.
Conclusions:
- Silver nanoparticles inhibit the fibrinogen-binding function of rFnBPA(189-512), potentially by altering its structure and blocking the binding site.
- The interaction between MSCRAMMs and nanoparticles is concentration-dependent and influenced by protein adsorption orientation.
- This study highlights the critical role of nanoparticle-protein interactions in modulating bacterial adhesion mechanisms.
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