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Fluorescent Leakage Assay to Investigate Membrane Destabilization by Cell-Penetrating Peptide
Published on: December 19, 2020
Additive and synergistic membrane permeabilization by antimicrobial (lipo)peptides and detergents
Hiren Patel1, Quang Huynh2, Dominik Bärlehner2
1Leslie Dan Faculty of Pharmacy, University of Toronto, Toronto, Canada; Department of Biophysics and Chemistry, University of Michigan, Ann Arbor, Michigan.
Abstract:
Certain antibiotic peptides are thought to permeabilize membranes of pathogens by effects that are also observed for simple detergents, such as membrane thinning and disordering, asymmetric bilayer expansion, toroidal pore formation, and micellization. Here we test the hypothesis that such peptides act additively with detergents when applied in parallel. Additivity is defined analogously to a fractional inhibitory concentration index of unity, and the extent and mechanism of leakage is measured by the fluorescence lifetime-based vesicle leakage assay using calcein-loaded vesicles. Good additivity was found for the concerted action of magainin 2, the fungicidal lipopeptide class of surfactins from Bacillus subtilis QST713, and the detergent octyl glucoside, respectively, with the detergent C12EO8. Synergistic or superadditive action was observed for fengycins from B. subtilis, as well as the detergent CHAPS, when combined with C12EO8. The results illustrate two mechanisms of synergistic action: First, maximal leakage requires an optimum degree of heterogeneity in the system that may be achieved by mixing a graded with an all-or-none permeabilizer. (The optimal perturbation should be focused to certain defect structures, yet not to the extent that some vesicles are not affected at all.) Second, a cosurfactant may enhance the bioavailability of a poorly soluble peptide. The results are important for understanding the concerted action of membrane-permeabilizing compounds in biology as well as for optimizing formulations of such antimicrobials for medical applications or crop protection.
Insights
Antibiotic peptides and detergents can work together to disrupt pathogen membranes. Some combinations show additive effects, while others, like fengycins and CHAPS with C12EO8, exhibit synergistic membrane permeabilization.
Area of Science:
- Microbiology
- Biochemistry
- Biophysics
Background:
- Antibiotic peptides and detergents can permeabilize pathogen membranes through similar mechanisms.
- Understanding their combined effects is crucial for developing new antimicrobial strategies.
Purpose of the Study:
- To test the hypothesis that antibiotic peptides and detergents act additively when applied together.
- To investigate the mechanisms underlying synergistic or additive membrane permeabilization.
Main Methods:
- Utilized a fluorescence lifetime-based vesicle leakage assay with calcein-loaded vesicles.
- Measured the extent and mechanism of membrane leakage caused by combinations of peptides and detergents.
Main Results:
- Magainin 2, surfactins, and octyl glucoside showed additive effects with the detergent C12EO8.
- Fengycins and CHAPS exhibited synergistic or superadditive effects when combined with C12EO8.
- Identified two mechanisms for synergy: optimal system heterogeneity and enhanced peptide bioavailability.
Conclusions:
- The study reveals distinct modes of interaction between membrane-permeabilizing agents.
- Findings are vital for understanding biological membrane disruption and optimizing antimicrobial formulations for medical and agricultural uses.
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