Aggregation and insertion of melittin and its analogue MelP5 into lipid bilayers at different concentrations: effects
1Department of Chemical Engineering, Dankook University, Yongin, 448-701, South Korea. leeh@dankook.ac.kr.
Abstract:
Melittin and its analogue MelP5 (five mutations T10A, R22A, K23A, R24Q, and Q26L of melittin) were simulated with lipid bilayers at different peptide/lipid molar ratios using all-atom and coarse-grained (CG) force fields. In CG simulations, both melittin and MelP5 insert into the bilayer at high concentration, while at low concentration only MelP5 can do so, showing the increased membrane permeability of MelP5 because five mutations weaken the electrostatic repulsion between peptides and strengthen the hydrophobic interactions between peptides and lipid tails, in quantitative agreement with experiments. In particular, aggregation of 6-8 MelP5 leads to pore formation, as also suggested by experiments. All-atom simulations, starting with atomic coordinates converted from the final configurations of CG simulations, show that MelP5 peptides bring more water molecules into the pores than do melittin peptides, indicating that MelP5 peptides form larger pores. Also, MelP5 peptides more effectively disorder lipids and thus increase the lateral mobility of lipids than do melittin peptides, leading to thinner bilayers. These findings indicate that differences of only five sequences can influence peptide aggregation and insertion, and bilayer thickness and dynamics, which helps explain experimental observations of the higher extent of antimicrobial activity and macromolecular leakage for MelP5 than for melittin, and also support experimental suggestions regarding the number of aggregated MelP5 and different effects of melittin and MelP5 on pore formation.
Insights
Melittin analogue MelP5 shows increased membrane permeability and forms larger pores than melittin due to specific mutations. These changes enhance antimicrobial activity and macromolecular leakage, as confirmed by simulations and experiments.
Area of Science:
- Biophysics
- Computational Chemistry
- Membrane Biology
Background:
- Melittin is a primary component of bee venom with known membrane-disrupting properties.
- Understanding peptide-lipid interactions is crucial for developing antimicrobial agents.
Purpose of the Study:
- To investigate the effects of specific mutations on melittin's interaction with lipid bilayers.
- To compare the membrane permeability and pore-forming capabilities of melittin and its analogue MelP5.
Main Methods:
- All-atom and coarse-grained (CG) molecular dynamics simulations were employed.
- Simulations were conducted at various peptide/lipid molar ratios.
- Atomic coordinates from CG simulations were used to initiate all-atom simulations.
Main Results:
- MelP5 exhibits increased membrane insertion and permeability compared to melittin, especially at lower concentrations.
- Aggregation of 6-8 MelP5 peptides promotes pore formation.
- MelP5 forms larger pores, disorders lipids more effectively, and thins bilayers compared to melittin.
Conclusions:
- Five specific mutations significantly alter peptide aggregation, membrane insertion, and bilayer properties.
- These alterations explain the enhanced antimicrobial activity and macromolecular leakage observed for MelP5.
- The study provides insights into the molecular mechanisms behind peptide-membrane interactions and their functional consequences.
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