Antimicrobial peptide dendrimer interacts with phosphocholine membranes in a fluidity dependent manner: A neutron reflection study combined with molecular dynamics simulations

T. K. Lind, Leonardo Darré, Carmen Domene Nunez, Z. Urbanczyk-Lipkowska, M. Cardenas, H. P. Wacklin

Research output: Contribution to journalArticlepeer-review

26 Citations (SciVal)

Abstract

The interaction mechanism of a novel amphiphilic antimicrobial peptide dendrimer, BALY, with model lipid bilayers was explored through a combination of neutron reflection and molecular dynamics simulations. 1-Palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) and 1,2-dipalmitoyl-sn-glycero-3-phos-phocholine (DPPC) lipid bilayers were examined at room temperature to extract information on the interaction of BALY with fluid and gel phases, respectively. Furthermore, a 1:4 mixture of POPC and DPPC was used as a model of a phase-separated membrane. Upon interaction with fluid membranes, BALY inserted in the distal leaflet and caused thinning and disordering of the headgroups. Membrane thinning and expansion of the lipid cross-sectional area were observed for gel phase membranes, also with limited insertion to the distal leaflet. However, dendrimer insertion through the entire lipid tail region was observed upon crossing the lipid phase transition temperature of DPPC and in phase separated membranes. The results show clear differences in the interaction mechanism of the dendrimer depending on the lipid membrane fluidity, and suggest a role for lipid phase separation in promoting its antimicrobial activity.
Original languageEnglish
Pages (from-to)2075-2084
Number of pages10
JournalBiochimica Et Biophysica Acta-Biomembranes
Volume1848
Issue number10, Part A
Early online date27 May 2015
DOIs
Publication statusPublished - 1 Oct 2015

Keywords

  • Neutron reflection, Molecular dynamics simulations, Antimicrobial interactions, Dendrimer, Lipid bilayers, FREQUENCY VIBRATIONAL SPECTROSCOPY, SUPPORTED LIPID-BILAYERS, ATOMIC-FORCE MICROSCOPY, FLIP-FLOP, POLY(AMIDOAMINE) DENDRIMERS, MODEL MEMBRANES, PORE FORMATION, MAGAININ 2, MECHANISMS, PRESSURE

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