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Interactions between human defensins and lipid bilayers: evidence for formation of multimeric pores

W C Wimley1, M E Selsted, S H White

  • 1Department of Physiology and Biophysics, University of California, Irvine 92717-4560.

Insights

Human neutrophil defensin HNP-2 permeabilizes anionic lipid vesicles by forming pores. This process, initiated by electrostatic interactions, suggests HNP-2 creates pores with a maximum diameter of approximately 25 angstroms.

Area of Science:

  • Biochemistry
  • Biophysics
  • Molecular Biology

Background:

  • Defensins are antimicrobial peptides found in neutrophils and Paneth cells.
  • Neutrophil defensins are known to permeabilize microbial membranes, but the mechanism remains unclear.
  • Human neutrophil defensin 2 (HNP-2) is investigated for its membrane permeabilization mechanism.

Purpose of the Study:

  • To elucidate the mechanism by which HNP-2 permeabilizes large unilamellar vesicles (LUVs) composed of anionic lipids.
  • To determine the role of electrostatic interactions in HNP-2 binding to lipid membranes.
  • To characterize the nature of HNP-2-induced membrane permeabilization (graded vs. all-or-none) and pore size.

Main Methods:

  • HNP-2 interaction with LUVs of varying palmitoyloleoylphosphatidylglycerol (POPG) and palmitoyloleoylphosphatidylcholine (POPC) ratios.
  • Systematic variation of vesicle and peptide concentrations to study aggregation and fusion.
  • Fluorescence "requenching" assay to differentiate between graded and all-or-none leakage.
  • Leakage studies using small solutes and fluorescently labeled dextrans of different molecular weights.

Main Results:

  • HNP-2 binding to vesicles is initiated by electrostatic interactions with anionic lipids (POPG).
  • HNP-2 induces vesicle aggregation and hemi-fusion at higher concentrations, but content mixing is limited.
  • Leakage of entrapped solutes is a sigmoidal function of HNP-2 concentration, occurring in an all-or-none manner for native HNP-2.
  • Pore formation by HNP-2 is suggested, with a maximum diameter estimated at approximately 25 angstroms based on differential dextran retention.

Conclusions:

  • HNP-2 permeabilizes anionic lipid membranes through pore formation, likely involving multimeric peptide structures.
  • The all-or-none leakage mechanism and pore size provide insights into defensin antimicrobial activity.
  • Electrostatic interactions are crucial for the initial binding of HNP-2 to target membranes.

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