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Updated: Aug 26, 2025

Measuring Peptide Translocation into Large Unilamellar Vesicles
Published on: January 27, 2012
Organizations of melittin peptides after spontaneous penetration into cell membranes
Liang Sun1, Simin Wang1, Fujia Tian1
1Department of Physics, City University of Hong Kong, Kowloon, Hong Kong, China.
Abstract:
The antimicrobial peptide, melittin, is a potential next-generation antibiotic because melittin can spontaneously form pores in bacterial cell membranes and cause cytoplasm leakage. However, the organizations of melittin peptides in cell membranes remain elusive, which impedes the understanding of the poration mechanism. In this work, we use coarse-grained and all-atom molecular dynamics (MD) simulations to investigate the organizations of melittin peptides during and after spontaneous penetration into DPPC/POPG lipid bilayers. We find that the peptides in lipid bilayers adopt either a transmembrane conformation or a U-shaped conformation, which are referred to as T- and U-peptides, respectively. Several U-peptides and/or T-peptides aggregate to form stable pores. We analyze a T-pore consisting of four T-peptides and a U-pore consisting of three U-peptides and one T-peptide. In both pores, peptides are organized in a manner such that polar residues face inward and hydrophobic residues face outward, which stabilizes the pores and produces water channels. Compared with the U-pore, the T-pore has lower energy, larger pore diameter, and higher permeability. However, the T-pore occurs less frequently than the U-pore in our simulations, probably because the formation of the T-pore is kinetically slower than the U-pore. The stability and permeability of both pores are confirmed by 300 ns all-atom MD simulations. The peptide organizations obtained in this work should deepen the understanding of the stability, poration mechanism, and permeability of melittin, and facilitate the optimization of melittin to enhance the antibacterial ability.
Insights
Melittin peptides form pores in bacterial membranes via transmembrane or U-shaped structures, enabling cytoplasm leakage. Understanding these melittin organizations aids in developing new antibiotics.
Area of Science:
- Biophysics
- Molecular Biology
- Antimicrobial Research
Background:
- Melittin, an antimicrobial peptide, shows potential as a next-generation antibiotic due to its ability to form pores in bacterial membranes.
- The precise organization of melittin peptides within cell membranes and the mechanism of pore formation remain poorly understood.
Purpose of the Study:
- To investigate the organizational structures of melittin peptides within lipid bilayers during and after pore formation.
- To elucidate the mechanism of melittin-induced membrane poration and identify factors influencing pore stability and permeability.
Main Methods:
- Utilized coarse-grained and all-atom molecular dynamics (MD) simulations.
- Simulated melittin peptide interactions with DPPC/POPG lipid bilayers.
Main Results:
- Identified two primary melittin conformations: transmembrane (T-peptides) and U-shaped (U-peptides).
- Observed aggregation of T- and/or U-peptides to form stable pores with inward-facing polar residues and outward-facing hydrophobic residues.
- Characterized T-pores (lower energy, larger diameter, higher permeability) and U-pores, noting T-pore formation is kinetically slower.
- Confirmed pore stability and permeability using 300 ns all-atom MD simulations.
Conclusions:
- Melittin peptides organize into T- and U-conformations to form stable, water-channeling pores in lipid bilayers.
- The T-pore exhibits superior energy, diameter, and permeability compared to the U-pore, though it forms less frequently.
- Findings enhance understanding of melittin's antibacterial mechanism, aiding in the optimization of melittin-based therapeutics.
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