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Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes

Many peptides interact with biological membranes, but elucidating these interactions is challenging because cellular membranes are complex and peptides are structurally flexible. To contribute to understanding how the membrane-active peptides behave near the membranes, we investigated peptide struct...

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Autores principales: Wojciechowska, Monika, Miszkiewicz, Joanna, Trylska, Joanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766051/
https://www.ncbi.nlm.nih.gov/pubmed/33352981
http://dx.doi.org/10.3390/ijms21249672
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author Wojciechowska, Monika
Miszkiewicz, Joanna
Trylska, Joanna
author_facet Wojciechowska, Monika
Miszkiewicz, Joanna
Trylska, Joanna
author_sort Wojciechowska, Monika
collection PubMed
description Many peptides interact with biological membranes, but elucidating these interactions is challenging because cellular membranes are complex and peptides are structurally flexible. To contribute to understanding how the membrane-active peptides behave near the membranes, we investigated peptide structural changes in different lipid surroundings. We focused on two antimicrobial peptides, anoplin and W-MreB(1–9), and one cell-penetrating peptide, (KFF)(3)K. Firstly, by using circular dichroism spectroscopy, we determined the secondary structures of these peptides when interacting with micelles, liposomes, E. coli lipopolysaccharides, and live E. coli bacteria. The peptides were disordered in the buffer, but anoplin and W-MreB(1–9) displayed lipid-induced helicity. Yet, structural changes of the peptide depended on the composition and concentration of the membranes. Secondly, we quantified the destructive activity of peptides against liposomes by monitoring the release of a fluorescent dye (calcein) from the liposomes treated with peptides. We observed that only for anoplin and W-MreB(1–9) calcein leakage from liposomes depended on the peptide concentration. Thirdly, bacterial growth inhibition assays showed that peptide conformational changes, evoked by the lipid environments, do not directly correlate with the antimicrobial activity of the peptides. However, understanding the relation between peptide structural properties, mechanisms of membrane disruption, and their biological activities can guide the design of membrane-active peptides.
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spelling pubmed-77660512020-12-28 Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes Wojciechowska, Monika Miszkiewicz, Joanna Trylska, Joanna Int J Mol Sci Article Many peptides interact with biological membranes, but elucidating these interactions is challenging because cellular membranes are complex and peptides are structurally flexible. To contribute to understanding how the membrane-active peptides behave near the membranes, we investigated peptide structural changes in different lipid surroundings. We focused on two antimicrobial peptides, anoplin and W-MreB(1–9), and one cell-penetrating peptide, (KFF)(3)K. Firstly, by using circular dichroism spectroscopy, we determined the secondary structures of these peptides when interacting with micelles, liposomes, E. coli lipopolysaccharides, and live E. coli bacteria. The peptides were disordered in the buffer, but anoplin and W-MreB(1–9) displayed lipid-induced helicity. Yet, structural changes of the peptide depended on the composition and concentration of the membranes. Secondly, we quantified the destructive activity of peptides against liposomes by monitoring the release of a fluorescent dye (calcein) from the liposomes treated with peptides. We observed that only for anoplin and W-MreB(1–9) calcein leakage from liposomes depended on the peptide concentration. Thirdly, bacterial growth inhibition assays showed that peptide conformational changes, evoked by the lipid environments, do not directly correlate with the antimicrobial activity of the peptides. However, understanding the relation between peptide structural properties, mechanisms of membrane disruption, and their biological activities can guide the design of membrane-active peptides. MDPI 2020-12-18 /pmc/articles/PMC7766051/ /pubmed/33352981 http://dx.doi.org/10.3390/ijms21249672 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wojciechowska, Monika
Miszkiewicz, Joanna
Trylska, Joanna
Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title_full Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title_fullStr Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title_full_unstemmed Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title_short Conformational Changes of Anoplin, W-MreB(1–9), and (KFF)(3)K Peptides near the Membranes
title_sort conformational changes of anoplin, w-mreb(1–9), and (kff)(3)k peptides near the membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766051/
https://www.ncbi.nlm.nih.gov/pubmed/33352981
http://dx.doi.org/10.3390/ijms21249672
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