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Updated: Sep 9, 2025

Production and Visualization of Bacterial Spheroplasts and Protoplasts to Characterize Antimicrobial Peptide Localization
Published on: August 11, 2018
A unified model of transient poration induced by antimicrobial peptides
Amy Rice1, Andriana C Zourou2, Myriam L Cotten2,3
1Laboratory of Computational Biology, National Heart, Lung, Blood Institute, National Institutes of Health, Bethesda, MD 20892.
Abstract:
Membrane active peptides (MAPs) represent a diverse group of agents that disrupt the integrity of lipid membranes. One class of MAPs, antimicrobial peptides (AMPs), destroy bacteria by transiently porating the bacterial membrane causing leakage of cellular contents. Transient leakage is classified as "graded," where all vesicles in a population leak partially, or "all-or-none," where some vesicles leak completely. However, the molecular interactions underlying transient leakage have eluded experimental determination. Here, dye leakage experiments with the AMP piscidin 1 (P1) show that graded leakage can be converted to all-or-none by simply adding a defect-promoting lysophospholipid. Molecular dynamics simulations demonstrate that area stress arising from membrane asymmetry decreases the energy of pore formation and is highly lipid dependent. Furthermore, lipids and peptides translocate the bilayer through these pores, leading to area-relaxed states where poration is highly unfavorable. Even pores too small to leak dye relieve area stress; they are the "none" component of all-or-none release. These observations lead to development of a quantitative model where graded and all-or-none leakage are treated as a continuum explained by a single mechanism that accounts for the local peptide concentration and probabilities of different pore sizes. This unified model accurately reproduces the P1 dye leakage data and provides an explanation for varying pore energy, size, and probability within the framework of asymmetry-driven poration. This model is expected to be applicable to other MAPs, including cell-penetrating peptides, and could provide a framework for designing peptides with greater cellular specificity, a long-sought outcome.
Insights
Antimicrobial peptides (AMPs) can cause graded or all-or-none membrane leakage. A new model explains this continuum by considering peptide concentration and pore size, offering insights into membrane disruption mechanisms.
Area of Science:
- Biophysics
- Membrane Biology
- Antimicrobial Peptides
Background:
- Membrane active peptides (MAPs) disrupt lipid membranes.
- Antimicrobial peptides (AMPs) cause transient membrane poration, leading to leakage.
- Transient leakage is classified as graded or all-or-none, but underlying mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular interactions governing transient membrane leakage by AMPs.
- To develop a unified model explaining both graded and all-or-none leakage mechanisms.
- To investigate the role of membrane asymmetry and lipid composition in peptide-induced poration.
Main Methods:
- Dye leakage experiments using the AMP piscidin 1 (P1).
- Molecular dynamics simulations to analyze peptide-lipid interactions and pore formation.
- Development and validation of a quantitative model for membrane poration.
Main Results:
- Adding lysophospholipids converted graded leakage to all-or-none.
- Membrane asymmetry and area stress significantly influence pore formation energy.
- Lipids and peptides translocate through pores, leading to relaxed states and influencing poration probability.
- Small pores, even those not causing dye leakage, relieve area stress.
Conclusions:
- A unified model explains graded and all-or-none leakage as a continuum driven by asymmetry.
- The model accurately predicts P1 dye leakage data and accounts for pore characteristics.
- This framework can guide the design of MAPs with enhanced cellular specificity.
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