Lipopolysaccharide-Phospholipid Separation in the Outer Membrane Vesicle Model Promotes Preferential Binding of
Kaijie Mu1,2, Wendong Ma2, Zhenyu Ma1
1National Glycoengineering Research Center, Shandong University, Qingdao 266237, China.
Abstract:
Multidrug-resistant Gram-negative pathogens pose a major global medical challenge due to the lack of new antibiotics. Outer membrane vesicles (OMVs) in Gram-negative bacteria significantly contribute to their resistance to antimicrobial peptides (AMPs), particularly the lipopeptide polymyxins. However, how the structural organization of the OMV membranes influences AMP binding remains poorly understood. Here, we employed large-scale coarse-grained molecular dynamics simulations and enhanced sampling techniques to explore the structural dynamics of the OMV models and their interactions with polymyxins and other AMPs. Our results demonstrated that the separation of lipopolysaccharides (LPS) and phospholipids (PLs) occurred within the outer leaflet of the OMV models, forming LPS-rich regions, PL-rich regions, and LPS-PL interfaces. Interestingly, small geometric defects appeared at LPS-PL interfaces due to a mismatched orientation between LPS and PL molecules. These defects enhanced polymyxin binding to OMV models with folded conformations, in which their hydrophobic parts inserted into the PL-rich regions while the positively charged residues bound to the exposed phosphate groups of lipid A. Free energy calculations confirmed that polymyxins penetrated OMV models more effectively at LPS-PL interfaces than at LPS-rich regions. Importantly, this biased location at the LPS-PL interfaces was found across six other types of AMPs, including Melittin, LL-37, Magainin 2, Tachyplesin 1, Protegrin 1, and Capitellacin. Our findings suggest that the LPS-PL separation in the OMV models creates distinct microenvironments that favor AMP binding, particularly at LPS-PL interfaces. These mechanistic insights will inspire the design of novel AMPs that can evade the protective effect of the aforementioned OMVs.
Insights
Outer membrane vesicles (OMVs) from Gram-negative bacteria shield them from antimicrobial peptides (AMPs). OMVs separate into distinct regions, creating defects that enhance AMP binding and penetration, offering insights for new antibiotic design.
Area of Science:
- Microbiology
- Biophysics
- Computational Chemistry
Background:
- Multidrug-resistant Gram-negative pathogens present a significant global health threat due to a scarcity of new antibiotics.
- Outer membrane vesicles (OMVs) are crucial in Gram-negative bacterial resistance to antimicrobial peptides (AMPs), especially polymyxins.
- The precise influence of OMV membrane structure on AMP binding is not well understood.
Purpose of the Study:
- To investigate the structural dynamics of OMV models and their interactions with polymyxins and other AMPs.
- To elucidate how the structural organization of OMV membranes affects AMP binding and penetration.
Main Methods:
- Large-scale coarse-grained molecular dynamics simulations.
- Enhanced sampling techniques.
- Free energy calculations.
Main Results:
- OMV outer leaflets showed separation into lipopolysaccharide (LPS)-rich, phospholipid (PL)-rich regions, and LPS-PL interfaces.
- Geometric defects at LPS-PL interfaces enhanced polymyxin binding by facilitating insertion into PL-rich regions and interaction with lipid A.
- Polymyxins and six other AMPs preferentially bound to LPS-PL interfaces, indicating these regions are key for AMP interaction.
Conclusions:
- The separation of LPS and PL in OMVs creates specific microenvironments that promote AMP binding, particularly at LPS-PL interfaces.
- These findings provide mechanistic insights for designing novel AMPs that can overcome OMV-mediated bacterial resistance.
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