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Crystallizing Membrane Proteins for Structure Determination using Lipidic Mesophases
Published on: November 21, 2010
Antimicrobial Peptide K0-W6-Hya1 Induces Stable Structurally Modified Lipid Domains in Anionic Membranes
Thais A Enoki1, Isabela Moreira-Silva2, Esteban N Lorenzon3
1Instituto de Física da Universidade de São Paulo, São Paulo, SP, CEP 05508-090, Brasil.
Abstract:
Considering the known different mode of action of antimicrobial peptides in zwitterionic and anionic cell membranes, the present work compares the action of the antimicrobial peptide K0-W6-Hya1 (KIFGAIWPLALGALKNLIK-NH2) with zwitterionic and negatively charged model membranes, namely, liposomes composed of phosphatidylcholine (PC) and phosphatidylglycerol (PG) membranes, and a mixture of the two. Differential scanning calorimetry (DSC), steady state fluorescence of the Trp residue, dynamic light scattering (DLS), and measurement of the leakage of an entrapped fluorescent dye (carboxyfluorescein, CF) were performed with large unilamellar vesicles (LUVs). All techniques evidenced the different action of the peptide in zwitterionic and anionic vesicles. Trp fluorescence spectroscopy shows that the differences are related not only to the partition of the cationic peptide in zwitterionic and anionic membranes, but also to the different penetration depth of the peptide into the lipid bilayers: Trp goes deeper into negatively charged membranes, both in the gel and fluid phases, than into zwitterionic ones. DSC shows that the peptide is strongly attached to anionic bilayers, giving rise to the coexistence of two different lipid regions, one depleted of peptide and another one peptide-disturbed, possibly a stable or transient polar pore, considering the leakage of CF. This contrasts with the homogeneous effect produced by the peptide in zwitterionic membranes, probably related to peptide-membrane diffusion. Moreover, in mixed bilayers (PC:PG), the peptide sequesters negatively charged lipids, creating peptide-rich anionic lipid regions, strongly disturbing the membrane. The distinct structural interaction displayed by the peptide in PC and PG membranes could be related to the different mechanisms of action of the peptide in anionic prokaryotic and zwitterionic eukaryotic cell membranes.
Insights
Antimicrobial peptides interact differently with zwitterionic and anionic membranes. This study reveals distinct peptide penetration and membrane disturbance, explaining varied actions against bacterial and eukaryotic cells.
Area of Science:
- Biophysics
- Membrane Biophysics
- Antimicrobial Peptides
Background:
- Antimicrobial peptides (AMPs) exhibit varied mechanisms against different cell membrane types.
- Understanding these interactions is crucial for developing targeted antimicrobial therapies.
Purpose of the Study:
- To compare the action of the antimicrobial peptide K0-W6-Hya1 on zwitterionic (phosphatidylcholine, PC) and anionic (phosphatidylglycerol, PG) model membranes.
- To elucidate the structural basis for differential peptide-membrane interactions.
Main Methods:
- Large unilamellar vesicles (LUVs) composed of PC, PG, or PC:PG mixtures were used as model membranes.
- Techniques included Differential Scanning Calorimetry (DSC), Trp fluorescence spectroscopy, Dynamic Light Scattering (DLS), and carboxyfluorescein (CF) leakage assays.
Main Results:
- The peptide exhibited differential partitioning and deeper penetration into anionic membranes compared to zwitterionic membranes.
- DSC revealed strong peptide-bilayer attachment in anionic membranes, forming distinct lipid regions and potential pores, evidenced by CF leakage.
- In mixed bilayers, the peptide sequestered anionic lipids, creating disturbed, peptide-rich domains.
Conclusions:
- The distinct structural interactions of K0-W6-Hya1 with PC and PG membranes correlate with its different modes of action.
- These findings provide insights into the differential efficacy of AMPs against prokaryotic (anionic) and eukaryotic (zwitterionic) cell membranes.
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