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High Resolution Physical Characterization of Single Metallic Nanoparticles
Published on: June 28, 2019
Membrane binding of pore-forming γ-hemolysin components studied at different lipid compositions
Thomas Tarenzi1, Gianluca Lattanzi1, Raffaello Potestio1
1Department of Physics, University of Trento, Via Sommarive 14, Povo (TN) 38123, Italy; INFN-TIFPA, Trento Institute for Fundamental Physics and Applications, Via Sommarive 14, Povo (TN) 38123, Italy.
Abstract:
Methicillin-resistant Staphylococcus aureus is among those pathogens currently posing the highest threat to public health. Its host immune evasion strategy is mediated by pore-forming toxins (PFTs), among which the bi-component γ-hemolysin is one of the most common. The complexity of the porogenesis mechanism by γ-hemolysin poses difficulties in the development of antivirulence therapies targeting PFTs from S. aureus, and sparse and apparently contrasting experimental data have been produced. Here, through a large set of molecular dynamics simulations at different levels of resolution, we investigate the first step of pore formation, and in particular the effect of membrane composition on the ability of γ-hemolysin components, LukF and Hlg2, to steadily adhere to the lipid bilayer in the absence of proteinaceous receptors. Our simulations are in agreement with experimental data of γ-hemolysin pore formation on model membranes, which are here explained on the basis of the bilayer properties. Our computational investigation suggests a possible rationale to explain experimental data on phospholipid binding to the LukF component, and to hypothesise a mechanism by which, on purely lipidic bilayers, the stable anchoring of LukF to the cell surface facilitates Hlg2 binding, through the exposure of its N-terminal region. We expect that further insights on the mechanism of transition between soluble and membrane bound-forms and on the role played by the lipid molecules will contribute to the design of antivirulence agents with enhanced efficacy against methicillin-resistant S. aureus infections.
Insights
Pore-forming toxins from methicillin-resistant Staphylococcus aureus (MRSA) are key to immune evasion. Molecular dynamics simulations reveal how membrane composition affects toxin binding, aiding antivirulence therapy development against MRSA.
Area of Science:
- Microbiology
- Biophysics
- Computational Biology
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) poses a significant public health threat.
- Pore-forming toxins (PFTs), particularly the bi-component γ-hemolysin, are crucial for MRSA immune evasion.
- Developing antivirulence therapies targeting MRSA PFTs is challenging due to complex mechanisms and limited data.
Purpose of the Study:
- Investigate the initial step of γ-hemolysin pore formation.
- Determine the effect of membrane composition on the adherence of LukF and Hlg2 components to lipid bilayers.
- Explain experimental observations of γ-hemolysin pore formation on model membranes.
Main Methods:
- Extensive molecular dynamics (MD) simulations at various resolutions.
- Analysis of toxin-ligand interactions and membrane properties.
- Comparison of simulation results with experimental data.
Main Results:
- Simulations align with experimental data on γ-hemolysin pore formation on model membranes.
- Bilayer properties explain the observed pore formation.
- A mechanism for LukF anchoring to lipid bilayers, facilitating Hlg2 binding via N-terminal region exposure, is proposed.
- Computational insights into phospholipid binding to the LukF component are provided.
Conclusions:
- Membrane composition critically influences γ-hemolysin component adherence.
- The study provides a computational basis for understanding γ-hemolysin pore formation on lipid bilayers.
- Further research into lipid-protein interactions can guide the design of novel antivirulence agents against MRSA.
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