Cargando…

Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability

Cyclic peptides have the potential to vastly extend the scope of druggable proteins and lead to new therapeutics for currently untreatable diseases. However, cyclic peptides often suffer from poor bioavailability. To uncover design principles for permeable cyclic peptides, a promising strategy is to...

Descripción completa

Detalles Bibliográficos
Autores principales: Linker, Stephanie M., Schellhaas, Christian, Ries, Benjamin, Roth, Hans-Jörg, Fouché, Marianne, Rodde, Stephane, Riniker, Sereina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981571/
https://www.ncbi.nlm.nih.gov/pubmed/35424539
http://dx.doi.org/10.1039/d1ra09025a
_version_ 1784681628972351488
author Linker, Stephanie M.
Schellhaas, Christian
Ries, Benjamin
Roth, Hans-Jörg
Fouché, Marianne
Rodde, Stephane
Riniker, Sereina
author_facet Linker, Stephanie M.
Schellhaas, Christian
Ries, Benjamin
Roth, Hans-Jörg
Fouché, Marianne
Rodde, Stephane
Riniker, Sereina
author_sort Linker, Stephanie M.
collection PubMed
description Cyclic peptides have the potential to vastly extend the scope of druggable proteins and lead to new therapeutics for currently untreatable diseases. However, cyclic peptides often suffer from poor bioavailability. To uncover design principles for permeable cyclic peptides, a promising strategy is to analyze the conformational dynamics of the peptides using molecular dynamics (MD) and Markov state models (MSMs). Previous MD studies have focused on the conformational dynamics in pure aqueous or apolar environments to rationalize membrane permeability. However, during the key steps of the permeation through the membrane, cyclic peptides are exposed to interfaces between polar and apolar regions. Recent studies revealed that these interfaces constitute the free energy minima of the permeation process. Thus, a deeper understanding of the behavior of cyclic peptides at polar/apolar interfaces is desired. Here, we investigate the conformational and kinetic behavior of cyclic decapeptides at a water/chloroform interface using unbiased MD simulations and MSMs. The distinct environments at the interface alter the conformational equilibrium as well as the interconversion kinetics of cyclic peptide conformations. For peptides with low population of the permeable conformation in aqueous solution, the polar/apolar interface facilitates the interconversion to the closed conformation, which is required for membrane permeation. Comparison to unbiased MD simulations with a POPC bilayer reveals that not only the conformations but also the orientations are relevant in a membrane system. These findings allow us to propose a permeability model that includes both ‘prefolding’ and ‘non-prefolding’ cyclic peptides – an extension that can lead to new design considerations for permeable cyclic peptides.
format Online
Article
Text
id pubmed-8981571
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-89815712022-04-13 Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability Linker, Stephanie M. Schellhaas, Christian Ries, Benjamin Roth, Hans-Jörg Fouché, Marianne Rodde, Stephane Riniker, Sereina RSC Adv Chemistry Cyclic peptides have the potential to vastly extend the scope of druggable proteins and lead to new therapeutics for currently untreatable diseases. However, cyclic peptides often suffer from poor bioavailability. To uncover design principles for permeable cyclic peptides, a promising strategy is to analyze the conformational dynamics of the peptides using molecular dynamics (MD) and Markov state models (MSMs). Previous MD studies have focused on the conformational dynamics in pure aqueous or apolar environments to rationalize membrane permeability. However, during the key steps of the permeation through the membrane, cyclic peptides are exposed to interfaces between polar and apolar regions. Recent studies revealed that these interfaces constitute the free energy minima of the permeation process. Thus, a deeper understanding of the behavior of cyclic peptides at polar/apolar interfaces is desired. Here, we investigate the conformational and kinetic behavior of cyclic decapeptides at a water/chloroform interface using unbiased MD simulations and MSMs. The distinct environments at the interface alter the conformational equilibrium as well as the interconversion kinetics of cyclic peptide conformations. For peptides with low population of the permeable conformation in aqueous solution, the polar/apolar interface facilitates the interconversion to the closed conformation, which is required for membrane permeation. Comparison to unbiased MD simulations with a POPC bilayer reveals that not only the conformations but also the orientations are relevant in a membrane system. These findings allow us to propose a permeability model that includes both ‘prefolding’ and ‘non-prefolding’ cyclic peptides – an extension that can lead to new design considerations for permeable cyclic peptides. The Royal Society of Chemistry 2022-02-16 /pmc/articles/PMC8981571/ /pubmed/35424539 http://dx.doi.org/10.1039/d1ra09025a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Linker, Stephanie M.
Schellhaas, Christian
Ries, Benjamin
Roth, Hans-Jörg
Fouché, Marianne
Rodde, Stephane
Riniker, Sereina
Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title_full Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title_fullStr Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title_full_unstemmed Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title_short Polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
title_sort polar/apolar interfaces modulate the conformational behavior of cyclic peptides with impact on their passive membrane permeability
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981571/
https://www.ncbi.nlm.nih.gov/pubmed/35424539
http://dx.doi.org/10.1039/d1ra09025a
work_keys_str_mv AT linkerstephaniem polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT schellhaaschristian polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT riesbenjamin polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT rothhansjorg polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT fouchemarianne polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT roddestephane polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability
AT rinikersereina polarapolarinterfacesmodulatetheconformationalbehaviorofcyclicpeptideswithimpactontheirpassivemembranepermeability