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Updated: May 27, 2026

Production and Visualization of Bacterial Spheroplasts and Protoplasts to Characterize Antimicrobial Peptide Localization
Published on: August 11, 2018
Mechanism of structural transformations induced by antimicrobial peptides in lipid membranes
Kin Lok H Lam1, Hao Wang, Ting Ann Siaw
1Department of Physics, The University of Chicago, Chicago, IL, USA.
Abstract:
It has long been suggested that pore formation is responsible for the increase in membrane permeability by antimicrobial peptides (AMPs). To better understand the mechanism of AMP activity, the disruption of model membrane by protegrin-1 (PG-1), a cationic antimicrobial peptide, was studied using atomic force microscopy. We present here the direct visualization of the full range of structural transformations in supported lipid bilayer patches induced by PG-1 on zwitterionic 1,2-dimyristoyl-snglycero-phospho-choline (DMPC) membranes. When PG-1 is added to DMPC, the peptide first induces edge instability at low concentrations, then pore-like surface defects at intermediate concentrations, and finally wormlike structures with a specific length scale at high concentrations. The formation of these structures can be understood using a mesophase framework of a binary mixture of lipids and peptides, where PG-1 acts as a line-active agent. Atomistic molecular dynamics simulations on lipid bilayer ribbons with PG-1 molecules placed at the edge or interior positions are carried out to calculate the effect of PG-1 in reducing line tension. Further investigation of the placement of PG-1 and its association with defects in the bilayer is carried out using unbiased assembly of a PG-1 containing bilayer from a random mixture of PG-1, DMPC, and water. A generalized model of AMP induced structural transformations is also presented in this work. This article is part of a Special Issue entitled: Membrane protein structure and function.
Insights
Antimicrobial peptides (AMPs) like protegrin-1 (PG-1) disrupt model membranes by forming various structures, from edge instability to wormlike shapes. This research visualizes PG-1
Area of Science:
- Membrane Biophysics
- Antimicrobial Peptide Research
- Molecular Dynamics
Background:
- Antimicrobial peptides (AMPs) are crucial for innate immunity.
- Pore formation is a proposed mechanism for AMP-induced membrane permeability.
- Understanding AMP-membrane interactions is key to developing new therapeutics.
Purpose of the Study:
- To visualize and understand the structural transformations induced by protegrin-1 (PG-1) in model lipid bilayers.
- To investigate the role of PG-1 concentration in membrane disruption.
- To develop a generalized model for AMP-induced structural changes.
Main Methods:
- Atomic Force Microscopy (AFM) for direct visualization of membrane structure.
- Atomistic Molecular Dynamics (MD) simulations to study peptide-lipid interactions and line tension.
- Unbiased assembly simulations to investigate PG-1 placement and defect association.
Main Results:
- PG-1 induces concentration-dependent structural changes: edge instability, pore-like defects, and wormlike structures.
- PG-1 acts as a line-active agent, reducing line tension in lipid bilayers.
- Simulations confirm PG-1's ability to destabilize and modify bilayer structure.
Conclusions:
- The study provides direct visualization of AMP-induced membrane disruption.
- A mesophase framework explains PG-1's role in structural transformations.
- Findings contribute to a generalized model of AMP activity and membrane interaction.
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