Enhancement of endotoxin neutralization by coupling of a C12-alkyl chain to a lactoferricin-derived peptide

Author:

ANDRÄ Jörg1,LOHNER Karl2,BLONDELLE Sylvie E.3,JERALA Roman4,MORIYON Ignacio5,KOCH Michel H. J.6,GARIDEL Patrick7,BRANDENBURG Klaus1

Affiliation:

1. Research Center Borstel, Leibniz-Center for Medicine and Biosciences, Division of Biophysics, Parkallee 10, D-23845 Borstel, Germany

2. sterreichische Akademie der Wissenschaften, Institut für Biophysik und Röntgenstrukturforschung, Schmiedlstrasse 6, A-8042 Graz, Austria

3. Torrey Pines Institute for Molecular Studies, Department of Biochemistry/Microbiology, 3550 General Atomics Court, San Diego, CA 92121, U.S.A.

4. National Institute of Chemistry, Hajdrihova 19, 1000 SL-Ljubljana, Slovenia

5. Universidad de Navarra, Departamento de Microbiologia, Irunlarrea 1, 31008 Pamplona, Spain

6. European Molecular Biology Laboratory, EMBL c/o DESY, Hamburg outstation, Notkestrasse 85, D-22603 Hamburg, Germany

7. Martin-Luther-Universität Halle/Wittenberg, Institut für Physikalische Chemie, Mühlpforte 1, D-06108 Halle/Saale, Germany

Abstract

Antibacterial peptide acylation, which mimics the structure of the natural lipopeptide polymyxin B, increases antimicrobial and endotoxin-neutralizing activities. The interaction of the lactoferricin-derived peptide LF11 and its N-terminally acylated analogue, lauryl-LF11, with different chemotypes of bacterial lipopolysaccharide (LPS Re, Ra and smooth S form) was investigated by biophysical means and was related to the peptides' biological activities. Both peptides exhibit high antibacterial activity against the three strains of Salmonella enterica differing in the LPS chemotype. Lauryl-LF11 has one order of magnitude higher activity against Re-type, but activity against Ra- and S-type bacteria is comparable with that of LF11. The alkyl derivative peptide lauryl-LF11 shows a much stronger inhibition of the LPS-induced cytokine induction in human mononuclear cells than LF11. Although peptide–LPS interaction is essentially of electrostatic nature, the lauryl-modified peptide displays a strong hydrophobic component. Such a feature might then explain the fact that saturation of the peptide binding takes place at a much lower peptide/LPS ratio for LF11 than for lauryl-LF11, and that an overcompensation of the negative LPS backbone charges is observed for lauryl-LF11. The influence of LF11 on the gel-to-liquid-crystalline phase-transition of LPS is negligible for LPS Re, but clearly fluidizing for LPS Ra. In contrast, lauryl-LF11 causes a cholesterol-like effect in the two chemotypes, fluidizing in the gel and rigidifying of the hydrocarbon chains in the liquid-crystalline phase. Both peptides convert the mixed unilamellar/non-lamellar aggregate structure of lipid A, the ‘endotoxic principle’ of LPS, into a multilamellar one. These data contribute to the understanding of the mechanisms of the peptide-mediated neutralization of endotoxin and effect of lipid modification of peptides.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference40 articles.

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