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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.
Abstract:
Defensins comprise a family of broad-spectrum antimicrobial peptides that are stored in the cytoplasmic granules of mammalian neutrophils and Paneth cells of the small intestine. Neutrophil defensins are known to permeabilize cell membranes of susceptible microorganisms, but the mechanism of permeabilization is uncertain. We report here the results of an investigation of the mechanism by which HNP-2, one of 4 human neutrophil defensins, permeabilizes large unilamellar vesicles formed from the anionic lipid palmitoyloleoylphosphatidylglycerol (POPG). As observed by others, we find that HNP-2 (net charge = +3) cannot bind to vesicles formed from neutral lipids. The binding of HNP-2 to vesicles containing varying amounts of POPG and neutral (zwitterionic) palmitoyloleoylphosphatidylcholine (POPC) demonstrates that binding is initiated through electrostatic interactions. Because vesicle aggregation and fusion can confound studies of the interaction of HNP-2 with vesicles, those processes were explored systematically by varying the concentrations of vesicles and HNP-2, and the POPG:POPC ratio. Vesicles (300 microM POPG) readily aggregated at HNP-2 concentrations above 1 microM, but no mixing of vesicle contents could be detected for concentrations as high as 2 microM despite the fact that intervesicular lipid mixing could be demonstrated. This indicates that if fusion of vesicles occurs, it is hemi-fusion, in which only the outer monolayers mix at bilayer contact sites. Under conditions of limited aggregation and intervesicular lipid mixing, the fractional leakage of small solutes is a sigmoidal function of peptide concentration. For 300 microM POPG vesicles, 50% of entrapped solute is released by 0.7 microM HNP-2. We introduce a simple method for determining whether leakage from vesicles is graded or all-or-none. We show by means of this fluorescence "requenching" method that native HNP-2 induces vesicle leakage in an all-or-none manner, whereas reduced HNP-2 induces partial, or graded, leakage of vesicle contents. At HNP-2 concentrations that release 100% of small (approximately 400 Da) markers, a fluorescent dextran of 4,400 Da is partially retained in the vesicles, and a 18,900-Da dextran is mostly retained. These results suggest that HNP-2 can form pores that have a maximum diameter of approximately 25 A. A speculative multimeric model of the pore is presented based on these results and on the crystal structure of a human defensin.
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.