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Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface

Cyclic lipodepsipeptides or CLiPs from Pseudomonas are secondary metabolites that mediate a wide range of biological functions for their producers, and display antimicrobial and anticancer activities. Direct interaction of CLiPs with the cellular membranes is presumed to be essential in causing thes...

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Autores principales: Geudens, Niels, Kovács, Benjámin, Sinnaeve, Davy, Oni, Feyisara Eyiwumi, Höfte, Monica, Martins, José C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630293/
https://www.ncbi.nlm.nih.gov/pubmed/31213011
http://dx.doi.org/10.3390/molecules24122257
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author Geudens, Niels
Kovács, Benjámin
Sinnaeve, Davy
Oni, Feyisara Eyiwumi
Höfte, Monica
Martins, José C.
author_facet Geudens, Niels
Kovács, Benjámin
Sinnaeve, Davy
Oni, Feyisara Eyiwumi
Höfte, Monica
Martins, José C.
author_sort Geudens, Niels
collection PubMed
description Cyclic lipodepsipeptides or CLiPs from Pseudomonas are secondary metabolites that mediate a wide range of biological functions for their producers, and display antimicrobial and anticancer activities. Direct interaction of CLiPs with the cellular membranes is presumed to be essential in causing these. To understand the processes involved at the molecular level, knowledge of the conformation and dynamics of CLiPs at the water-lipid interface is required to guide the interpretation of biophysical investigations in model membrane systems. We used NMR and molecular dynamics to study the conformation, location and orientation of the Pseudomonas CLiP viscosinamide in a water/dodecylphosphocholine solution. In the process, we demonstrate the strong added value of combining uniform, isotope-enriched viscosinamide and protein NMR methods. In particular, the use of techniques to determine backbone dihedral angles and detect and identify long-lived hydrogen bonds, establishes that the solution conformation previously determined in acetonitrile is maintained in water/dodecylphosphocholine solution. Paramagnetic relaxation enhancements pinpoint viscosinamide near the water-lipid interface, with its orientation dictated by the amphipathic distribution of hydrophobic and hydrophilic residues. Finally, the experimental observations are supported by molecular dynamics simulations. Thus a firm structural basis is now available for interpreting biophysical and bioactivity data relating to this class of compounds.
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spelling pubmed-66302932019-08-19 Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface Geudens, Niels Kovács, Benjámin Sinnaeve, Davy Oni, Feyisara Eyiwumi Höfte, Monica Martins, José C. Molecules Article Cyclic lipodepsipeptides or CLiPs from Pseudomonas are secondary metabolites that mediate a wide range of biological functions for their producers, and display antimicrobial and anticancer activities. Direct interaction of CLiPs with the cellular membranes is presumed to be essential in causing these. To understand the processes involved at the molecular level, knowledge of the conformation and dynamics of CLiPs at the water-lipid interface is required to guide the interpretation of biophysical investigations in model membrane systems. We used NMR and molecular dynamics to study the conformation, location and orientation of the Pseudomonas CLiP viscosinamide in a water/dodecylphosphocholine solution. In the process, we demonstrate the strong added value of combining uniform, isotope-enriched viscosinamide and protein NMR methods. In particular, the use of techniques to determine backbone dihedral angles and detect and identify long-lived hydrogen bonds, establishes that the solution conformation previously determined in acetonitrile is maintained in water/dodecylphosphocholine solution. Paramagnetic relaxation enhancements pinpoint viscosinamide near the water-lipid interface, with its orientation dictated by the amphipathic distribution of hydrophobic and hydrophilic residues. Finally, the experimental observations are supported by molecular dynamics simulations. Thus a firm structural basis is now available for interpreting biophysical and bioactivity data relating to this class of compounds. MDPI 2019-06-17 /pmc/articles/PMC6630293/ /pubmed/31213011 http://dx.doi.org/10.3390/molecules24122257 Text en © 2019 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
Geudens, Niels
Kovács, Benjámin
Sinnaeve, Davy
Oni, Feyisara Eyiwumi
Höfte, Monica
Martins, José C.
Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title_full Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title_fullStr Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title_full_unstemmed Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title_short Conformation and Dynamics of the Cyclic Lipopeptide Viscosinamide at the Water-Lipid Interface
title_sort conformation and dynamics of the cyclic lipopeptide viscosinamide at the water-lipid interface
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630293/
https://www.ncbi.nlm.nih.gov/pubmed/31213011
http://dx.doi.org/10.3390/molecules24122257
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