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.

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.

Related Concept Videos

Translocation of Proteins into the Mitochondria01:19

Translocation of Proteins into the Mitochondria

Mitochondrial precursors are translocated to the internal subcompartments via independent mechanisms involving distinct protein machineries called translocases.
Sorting of outer membrane proteins:
Mitochondrial outer membrane proteins are of two types: the transmembrane, beta-barrel porins, and the membrane-anchored, alpha-helical proteins. Beta-barrel porin precursors are translocated by the TOM complex and inserted into the outer mitochondrial membrane by the SAM complex. In contrast,...
Pinching-off of Coated Vesicles01:32

Pinching-off of Coated Vesicles

Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...
Multi-pass Transmembrane Proteins and β-barrels01:09

Multi-pass Transmembrane Proteins and β-barrels

In multi-pass transmembrane proteins, the polypeptide chain crosses the membrane more than once. The transmembrane polypeptide chain either forms an α-helix or β-strand structure. α-Helix containing multi-pass transmembrane proteins are ubiquitous, whereas β-strand containing ones are mainly found in gram-negative bacteria, mitochondria, and chloroplasts.
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as G-protein-linked receptors (GPCRs) and...