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Magainin 2 and PGLa in bacterial membrane mimics IV: Membrane curvature and partitioning
Enrico F Semeraro1, Peter Pajtinka2, Lisa Marx1
1University of Graz, Institute of Molecular Biosciences, Biophysics Division, NAWI Graz, Graz, Austria; BioTechMed Graz, Graz, Austria.
Abstract:
We previously reported that the synergistically enhanced antimicrobial activity of magainin 2 (MG2a) and PGLa is related to membrane adhesion and fusion. Here, we demonstrate that equimolar mixtures of MG2a and L18W-PGLa induce positive monolayer curvature stress and sense, at the same time, positive mean and Gaussian bilayer curvatures already at low amounts of bound peptide. The combination of both abilities-membrane curvature sensing and inducing-is most likely the base for the synergistically enhanced peptide activity. In addition, our coarse-grained simulations suggest that fusion stalks are promoted by decreasing the free-energy barrier for their formation rather than by stabilizing their shape. We also interrogated peptide partitioning as a function of lipid and peptide concentration using tryptophan fluorescence spectroscopy and peptide-induced leakage of dyes from lipid vesicles. In agreement with a previous report, we find increased membrane partitioning of L18W-PGLa in the presence of MG2a. However, this effect does not prevail to lipid concentrations higher than 1 mM, above which all peptides associate with the lipid bilayers. This implies that synergistic effects of MG2a and L18W-PGLa in previously reported experiments with lipid concentrations >1 mM are due to peptide-induced membrane remodeling and not their specific membrane partitioning.
Insights
Magainin 2 (MG2a) and PGLa peptides work together to fight microbes by remodeling cell membranes. Their combined ability to sense and induce membrane curvature drives this synergistic antimicrobial activity.
Area of Science:
- Biophysics
- Antimicrobial Peptides
- Membrane Biology
Background:
- Antimicrobial peptides (AMPs) like magainin 2 (MG2a) and PGLa exhibit synergistic activity.
- Previous work linked this synergy to membrane adhesion and fusion.
Purpose of the Study:
- To investigate the mechanisms behind the enhanced antimicrobial activity of MG2a and PGLa mixtures.
- To determine the role of membrane curvature sensing and induction in peptide synergy.
Main Methods:
- Coarse-grained simulations to model peptide-lipid interactions and fusion stalk formation.
- Tryptophan fluorescence spectroscopy to study peptide partitioning.
- Dye leakage assays to measure peptide-induced membrane permeabilization.
Main Results:
- Equimolar mixtures of MG2a and L18W-PGLa induce positive monolayer curvature stress and sense bilayer curvatures.
- Synergistic effects are attributed to peptide-induced membrane remodeling, not just partitioning, at higher lipid concentrations (>1 mM).
- Simulations suggest fusion stalk promotion via reduced free-energy barriers.
Conclusions:
- The combined ability of MG2a and L18W-PGLa to sense and induce membrane curvature is key to their synergistic antimicrobial action.
- Membrane remodeling, rather than specific partitioning, drives synergy at physiologically relevant lipid concentrations.
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