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Biophys J
2013 Mar 19;1046:L9-11. doi: 10.1016/j.bpj.2013.01.047.
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Synergistic insertion of antimicrobial magainin-family peptides in membranes depends on the lipid spontaneous curvature.
Strandberg E
,
Zerweck J
,
Wadhwani P
,
Ulrich AS
.
???displayArticle.abstract??? PGLa and magainin 2 (MAG2) are amphiphilic antimicrobial peptides from frog skin with known synergistic activity. The orientation of the two helices in membranes was studied using solid-state (15)N-NMR, for each peptide alone and for a 1:1 mixture of the peptides, in a range of different lipid systems. Two types of orientational behavior emerged. 1), In lipids with negative spontaneous curvature, both peptides remain flat on the membrane surface, when assessed both alone and in a 1:1 mixture. 2), In lipids with positive spontaneous curvature, PGLa alone assumes a tilted orientation but inserts into the bilayer in a transmembrane alignment in the presence of MAG2, whereas MAG2 stays on the surface or gets only slightly tilted, when observed both alone and in the presence of PGLa. The behavior of PGLa alone is identical to that of another antimicrobial peptide, MSI-103, in the same lipid systems, indicating that the curvature-dependent helix orientation is a general feature of membrane-bound peptides and also influences their synergistic intermolecular interactions.
Bechinger,
Orientations of helical peptides in membrane bilayers by solid state NMR spectroscopy.
1996, Pubmed,
Xenbase
Bechinger,
Orientations of helical peptides in membrane bilayers by solid state NMR spectroscopy.
1996,
Pubmed
,
Xenbase
Glaser,
Concentration-dependent realignment of the antimicrobial peptide PGLa in lipid membranes observed by solid-state 19F-NMR.
2005,
Pubmed
Glaser,
Orientation of the antimicrobial peptide PGLa in lipid membranes determined from 19F-NMR dipolar couplings of 4-CF3-phenylglycine labels.
2004,
Pubmed
Hackenberger,
The reduction of oxidized methionine residues in peptide thioesters with NH4I-Me2S.
2006,
Pubmed
Latal,
Structural aspects of the interaction of peptidyl-glycylleucine-carboxyamide, a highly potent antimicrobial peptide from frog skin, with lipids.
1997,
Pubmed
,
Xenbase
Marsh,
Energetics of hydrophobic matching in lipid-protein interactions.
2008,
Pubmed
Matsuzaki,
Physicochemical determinants for the interactions of magainins 1 and 2 with acidic lipid bilayers.
1991,
Pubmed
,
Xenbase
Raetz,
Enzymology, genetics, and regulation of membrane phospholipid synthesis in Escherichia coli.
1978,
Pubmed
Salnikov,
Lipid-controlled peptide topology and interactions in bilayers: structural insights into the synergistic enhancement of the antimicrobial activities of PGLa and magainin 2.
2011,
Pubmed
Strandberg,
Solid-state NMR analysis of the PGLa peptide orientation in DMPC bilayers: structural fidelity of 2H-labels versus high sensitivity of 19F-NMR.
2006,
Pubmed
Strandberg,
Lipid shape is a key factor for membrane interactions of amphipathic helical peptides.
2012,
Pubmed
Strandberg,
Orientation and dynamics of peptides in membranes calculated from 2H-NMR data.
2009,
Pubmed
Strandberg,
Synergistic transmembrane insertion of the heterodimeric PGLa/magainin 2 complex studied by solid-state NMR.
2009,
Pubmed
,
Xenbase
Tremouilhac,
Synergistic transmembrane alignment of the antimicrobial heterodimer PGLa/magainin.
2006,
Pubmed
,
Xenbase
van der Wel,
Geometry and intrinsic tilt of a tryptophan-anchored transmembrane alpha-helix determined by (2)H NMR.
2002,
Pubmed
Wang,
Imaging membrane protein helical wheels.
2000,
Pubmed