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Sökning: WFRF:(Protopapa Elisabeth)

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1.
  • Protopapa, Elisabeth, et al. (författare)
  • Interaction of self-assembling beta-sheet peptides with phospholipid monolayers : The effect of serine, threonine, glutamine and asparagine amino acid side chains
  • 2010
  • Ingår i: Electrochimica Acta. - : Elsevier BV. - 0013-4686 .- 1873-3859. ; 55:9, s. 3368-3375
  • Tidskriftsartikel (refereegranskat)abstract
    • The dioleoyl phosphatidylcholine (DOPC) monolayer activities of 11 systematically altered 11 residue beta-sheet tape-forming peptides were studied. Peptide-DOPC interactions were characterised by electrochemical impedance spectroscopy (EIS). An impedance model combining the constant phase element approach with dielectric relaxation in the surface layer was used to analyse the data. The facilitation of DOPC layer permeability to ions by the peptides was monitored by both EIS and the Tl(l)/Tl(Hg) and Cd(II)/Cd(Hg)faradaic reactions. It was found that peptides with side chains of serine and threonine interact with DOPC layers more strongly and in a well characterised manner compared to peptides with side chains of glutamine and asparagine. Cationic and neutral peptides containing serine and threonine penetrate the DOPC to give a maximum plateau monolayer capacitance. At higher solution concentrations of these peptides the growth of a well-defined secondary element in the impedance data indicates the segregation of secondary DOPC-peptide phases. Cationic and neutral peptides containing serine and anionic peptides containing threonine interact with the DOPC layers leading to a selective increase in the layer's permeability to Tl+ ions. Impedance measurements at higher solution concentrations of anionic peptides with serine and threonine show that these peptide modified DOPC layers associate with electrolyte ions. (C) 2010 Elsevier Ltd. All rights reserved.
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2.
  • Ringstad, Lovisa, et al. (författare)
  • An electrochemical study into the interaction between complement-derived peptides and DOPC mono- and bilayers.
  • 2008
  • Ingår i: Langmuir. - : American Chemical Society (ACS). - 0743-7463 .- 1520-5827. ; 24:1, s. 208-216
  • Tidskriftsartikel (refereegranskat)abstract
    • Electrochemical methods employing the hanging mercury drop electrode were used to study the interaction between variants of the complement-derived antimicrobial peptide CNY21 (CNYITELRRQH ARASHLGLAR) and dioleoyl phosphatidylcholine (DOPC) monolayers. Capacitance potential and impedance measurements showed that the CNY21 analogues investigated interact with DOPC monolayers coating the mercury drop. Increasing the peptide hydrophobicity by substituting the two histidine residues with leucine resulted in a deeper peptide penetration into the hydrophobic region of the DOPC monolayer, indicated by an increase in the dielectric constant of the lipid monolayer (Deltaepsilon = 2.0 after 15 min interaction). Increasing the peptide net charge from +3 to +5 by replacing the histidines by lysines, on the other hand, arrests the peptide in the lipid head group region. Reduction of electroactive ions (Tl+, Pb2+, Cd2+, and Eu3+) at the monolayer-coated electrode was employed to further characterize the types of defects induced by the peptides. All peptides studied permeabilize the monolayer to Tl+ to an appreciable extent, but this effect is more pronounced for the more hydrophobic peptide (CNY21L), which also allows penetration of larger ions and ions of higher valency. The results for the various ions indicate that charge repulsion rather than ion size is the determining factor for cation penetration through peptide-induced defects in the DOPC monolayer. The effects obtained for monolayers were compared to results obtained with bilayers from liposome leakage and circular dichroism studies for unilamellar DOPC vesicles, and in situ ellipsometry for supported DOPC bilayers. Trends in peptide-induced liposome leakage were similar to peptide effects on electrochemical impedance and permeability of electroactive ions for the monolayer system, demonstrating that formation of transmembrane pores alone does not constitute the mechanism of action for the peptides investigated. Instead, our results point to the importance of local packing defects in the lipid membrane in close proximity to the adsorbed peptide molecules.
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