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Published on: March 6, 2013
Effects of Peptide Charge, Orientation, and Concentration on Melittin Transmembrane Pores
Almudena Pino-Angeles1, Themis Lazaridis2
1Department of Chemistry, The City College of New York, New York, New York.
Abstract:
Melittin is a short cationic peptide that exerts cytolytic effects on bacterial and eukaryotic cells. Experiments suggest that in zwitterionic membranes, melittin forms transmembrane toroidal pores supported by four to eight peptides. A recently constructed melittin variant with a reduced cationic charge, MelP5, is active at 10-fold lower concentrations. In previous work, we performed molecular dynamics simulations on the microsecond timescale to examine the supramolecular pore structure of a melittin tetramer in zwitterionic and partially anionic membranes. We now extend that study to include the effects of peptide charge, initial orientation, and number of monomers on the pore formation and stabilization processes. Our results show that parallel transmembrane orientations of melittin and MelP5 are more consistent with experimental data. Whereas a MelP5 parallel hexamer forms a large stable pore during the 5-μs simulation time, a melittin hexamer and an octamer are not fully stable, with several monomers dissociating during the simulation time. Interaction-energy analysis shows that this difference in behavior between melittin and MelP5 is not due to stronger electrostatic repulsion between neighboring melittin peptides but to peptide-lipid interactions that disfavor the isolated MelP5 transmembrane monomer. The ability of melittin monomers to diffuse freely in the 1,2-dimyristoyl-SN-glycero-3-phosphocholine membrane leads to dynamic pores with varying molecularity.
Insights
Melittin variant MelP5 forms stable transmembrane pores in lipid membranes, unlike native melittin. This difference stems from peptide-lipid interactions, not charge repulsion, impacting pore stability and molecular dynamics.
Area of Science:
- Biophysics
- Molecular Biology
- Membrane Biophysics
Background:
- Melittin is a cationic peptide known for cytolytic effects.
- Melittin forms transmembrane toroidal pores in zwitterionic membranes.
- A reduced-charge variant, MelP5, shows higher activity.
Purpose of the Study:
- Investigate the effects of peptide charge, orientation, and number on melittin and MelP5 pore formation.
- Compare the pore stabilization mechanisms of melittin and MelP5.
- Analyze the role of peptide-lipid interactions in pore dynamics.
Main Methods:
- Microsecond timescale molecular dynamics simulations.
- Analysis of peptide-lipid interactions and electrostatic repulsion.
- Examination of pore structure and monomer stability.
Main Results:
- Parallel transmembrane orientations are favored for both melittin and MelP5.
- A MelP5 hexamer forms a stable pore, while melittin hexamers and octamers show instability.
- Peptide-lipid interactions, not charge repulsion, explain MelP5's distinct behavior.
- Melittin monomers exhibit free diffusion, leading to dynamic pores.
Conclusions:
- Melittin and MelP5 exhibit differential pore formation and stability due to peptide-lipid interactions.
- MelP5's reduced charge and altered peptide-lipid interactions contribute to stable pore formation.
- Understanding these dynamics is crucial for developing peptide-based therapeutics.
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