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Multistep Molecular Dynamics Simulations Identify the Highly Cooperative Activity of Melittin in Recognizing and
Delin Sun1, Jan Forsman2, Clifford E Woodward1
1School of Physical, Environmental and Mathematical Sciences, University of New South Wales , Canberra ACT 2600, Australia.
Abstract:
The prototypical antimicrobial peptide, melittin, is well-known for its ability to induce pores in zwitterionic model lipid membranes. However, the mechanism by which melittin accomplishes this is not fully understood. We have conducted all-atom and coarse-grained molecular dynamics simulations which suggest that melittin employs a highly cooperative mechanism for the induction of both small and large membrane pores. The process by which this peptide induces membrane pores appears to be driven by its affinity to membrane defects via its N-terminus region. In our simulations, a membrane defect was deliberately created through either lipid flip-flop or the reorientation of one adsorbed melittin peptide. In a cooperative response, other melittin molecules also inserted their N-termini into the created defect, thus lowering the overall free energy. The insertion of these peptide molecules ultimately allowed the defect to develop into a small transmembrane pore, with an estimated diameter of ∼1.5 nm and a lifetime of the order of tens of milliseconds. In the presence of a finite membrane tension, we show that this small pore can act as a nucleation site for the stochastic rupture of the lipid bilayer, so as to create a much larger pore. We found that a threshold membrane tension of 25 mN/m was needed to create a ruptured pore. Furthermore, by actively accumulating at its edge, adsorbed peptides are able to cooperatively stabilize this larger pore. The defect-mediated pore formation mechanism revealed in this work may also apply to other amphipathic membrane-active peptides.
Insights
Melittin forms membrane pores through a cooperative mechanism, driven by its affinity for membrane defects. This process can lead to larger pore formation under membrane tension, potentially applicable to other peptides.
Area of Science:
- Biophysics
- Membrane Biology
- Computational Biology
Background:
- Melittin, a model antimicrobial peptide, induces pores in lipid membranes.
- The precise mechanism of melittin-induced pore formation remains unclear.
Purpose of the Study:
- To elucidate the cooperative mechanism of melittin-induced pore formation.
- To investigate the role of membrane defects and tension in pore dynamics.
Main Methods:
- All-atom and coarse-grained molecular dynamics simulations.
- Analysis of peptide-lipid interactions and membrane deformation.
Main Results:
- Melittin utilizes a cooperative mechanism, inserting its N-terminus into membrane defects.
- Small pores (∼1.5 nm diameter, ms lifetime) form via defect nucleation.
- Membrane tension (≥25 mN/m) promotes larger pore formation from small pores.
- Adsorbed melittin stabilizes larger pores through cooperative accumulation.
Conclusions:
- Melittin-induced pore formation is a defect-mediated, cooperative process.
- Membrane tension significantly influences pore size and stability.
- The revealed mechanism may extend to other amphipathic membrane-active peptides.
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