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Obtention of Giant Unilamellar Hybrid Vesicles by Electroformation and Measurement of their Mechanical Properties by Micropipette Aspiration
Published on: January 19, 2020
Magainin-H2 effects on the permeabilization and mechanical properties of giant unilamellar vesicles
Andrea Mescola1, Nathaly Marín-Medina2, Gregorio Ragazzini3
1CNR-Nanoscience Institute-S3, Via Campi 213/A, 41125 Modena, Italy.
Abstract:
Among the potential novel therapeutics to treat bacterial infections, antimicrobial peptides (AMPs) are a very promising substitute due to their broad-spectrum activity and rapid bactericidal action. AMPs strongly interact with the bacterial membrane, and the need to have a correct understanding of the interaction between AMPs and lipid bilayers at a molecular level prompted a wealth of experimental and theoretical studies exploiting a variety of AMPs. Here, we studied the effects of magainin H2 (Mag H2), an analog of the well-known magainin 2 (wt Mag 2) AMP endowed with a higher degree of hydrophobicity, on giant unilamellar vesicles (GUVs) concentrating on its permeabilization activity and the effect on the lipid bilayer mechanical properties. We demonstrated that the increased hydrophobicity of Mag H2 affects its selectivity conferring a strong permeabilization activity also on zwitterionic lipid bilayers. Moreover, when lipid mixtures including PG lipids are considered, PG has a protective effect, at variance from wt Mag 2, suggesting that for Mag H2 the monolayer curvature could prevail over the peptide-membrane electrostatic interaction. We then mechanically characterized GUVs by measuring the effect of Mag H2 on the bending constant of lipid bilayers by flickering spectroscopy and, by using micropipette aspiration technique, we followed the steps leading to vesicle permeabilization. We found that Mag H2, notwithstanding its enhanced hydrophobicity, has a pore formation mechanism compatible with the toroidal pore model similar to that of wt Mag 2.
Insights
Magainin H2, a more hydrophobic antimicrobial peptide, effectively permeabilizes bacterial membranes. Its mechanism involves toroidal pore formation, similar to wt Mag 2, despite altered lipid interactions.
Area of Science:
- Biophysics
- Biochemistry
- Materials Science
Background:
- Antimicrobial peptides (AMPs) are promising therapeutics for bacterial infections due to broad-spectrum activity.
- Understanding AMP-lipid bilayer interactions is crucial for developing new antibacterial agents.
- Magainin H2 (Mag H2) is a more hydrophobic analog of magainin 2 (wt Mag 2) with potential therapeutic applications.
Purpose of the Study:
- To investigate the effects of Mag H2 on giant unilamellar vesicles (GUVs), focusing on permeabilization and mechanical properties.
- To compare the activity of Mag H2 with wt Mag 2 on different lipid bilayers.
- To elucidate the molecular mechanism of Mag H2-induced membrane disruption.
Main Methods:
- Giant unilamellar vesicle (GUV) preparation and characterization.
- Flickering spectroscopy to measure lipid bilayer bending constants.
- Micropipette aspiration technique to observe vesicle permeabilization.
Main Results:
- Increased hydrophobicity of Mag H2 enhances its permeabilization activity, even on zwitterionic lipid bilayers.
- Phosphatidylglycerol (PG) lipids showed a protective effect against Mag H2, unlike with wt Mag 2, suggesting curvature effects may dominate.
- Mag H2 utilizes a toroidal pore model for membrane permeabilization, similar to wt Mag 2.
Conclusions:
- Mag H2's enhanced hydrophobicity alters its membrane interaction selectivity and mechanism.
- The study provides molecular insights into AMP-lipid interactions, relevant for antimicrobial drug design.
- Mag H2 represents a potential candidate for novel antibacterial therapies.
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