4.7 Article

Structure and Formation Mechanism of Antimicrobial Peptides Temporin B- and L-Induced Tubular Membrane Protrusion

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出版社

MDPI
DOI: 10.3390/ijms222011015

关键词

antimicrobial peptide; temporin B; temporin L; lipid membrane; molecular dynamics simulation

资金

  1. National Natural Science Foundation of China [21973004, 21673021]

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Temporins are a family of antimicrobial peptides isolated from frog skin, which are very short, weakly charged, and highly hydrophobic. They execute bactericidal activities by folding into α-helices at the membrane surface, extracting lipids, and forming protrusions at high peptide concentrations. These unique antimicrobial mechanisms include lipid extraction and tubule-like protrusion formation.
Temporins are a family of antimicrobial peptides (AMPs) isolated from frog skin, which are very short, weakly charged, and highly hydrophobic. They execute bactericidal activities in different ways from many other AMPs. This work investigated morphological changes of planar bilayer membranes composed of mixed zwitterionic and anionic phospholipids induced by temporin B and L (TB and TL) using all-atom and coarse-grained molecular dynamics simulations. We found that TB and TL fold to alpha-helices at the membrane surface and penetrate shallowly into the bilayer. These short AMPs have low propensity to induce membrane pore formation but possess high ability to extract lipids out. At relatively high peptide concentrations, the strong hydrophobicity of TB and TL promotes them to aggregate into clusters on the membrane surface. These aggregates attract a large amount of lipids out of the membrane to release compression induced by other dispersed peptides binding to the membrane. The extruded lipids mix evenly with the peptides in the cluster and form tubule-like protrusions. Certain water molecules follow the movement of lipids, which not only fill the cavities of the protrusion but also assist in maintaining the tubular structures. In contrast, the peptide-free leaflet remains intact. The present results unravel distinctive antimicrobial mechanisms of temporins disturbing membranes.

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