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Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles

[Image: see text] Intrinsically disordered peptide amphiphiles (IDPAs) present a novel class of synthetic conjugates that consist of short hydrophilic polypeptides anchored to hydrocarbon chains. These hybrid polymer-lipid block constructs spontaneously self-assemble into dispersed nanoscopic aggreg...

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Autores principales: Ehm, Tamara, Shinar, Hila, Jacoby, Guy, Meir, Sagi, Koren, Gil, Segal Asher, Merav, Korpanty, Joanna, Thompson, Matthew P., Gianneschi, Nathan C., Kozlov, Michael M., Azoulay-Ginsburg, Salome, Amir, Roey J., Rädler, Joachim O., Beck, Roy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9832477/
https://www.ncbi.nlm.nih.gov/pubmed/36469950
http://dx.doi.org/10.1021/acs.biomac.2c00866
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author Ehm, Tamara
Shinar, Hila
Jacoby, Guy
Meir, Sagi
Koren, Gil
Segal Asher, Merav
Korpanty, Joanna
Thompson, Matthew P.
Gianneschi, Nathan C.
Kozlov, Michael M.
Azoulay-Ginsburg, Salome
Amir, Roey J.
Rädler, Joachim O.
Beck, Roy
author_facet Ehm, Tamara
Shinar, Hila
Jacoby, Guy
Meir, Sagi
Koren, Gil
Segal Asher, Merav
Korpanty, Joanna
Thompson, Matthew P.
Gianneschi, Nathan C.
Kozlov, Michael M.
Azoulay-Ginsburg, Salome
Amir, Roey J.
Rädler, Joachim O.
Beck, Roy
author_sort Ehm, Tamara
collection PubMed
description [Image: see text] Intrinsically disordered peptide amphiphiles (IDPAs) present a novel class of synthetic conjugates that consist of short hydrophilic polypeptides anchored to hydrocarbon chains. These hybrid polymer-lipid block constructs spontaneously self-assemble into dispersed nanoscopic aggregates or ordered mesophases in aqueous solution due to hydrophobic interactions. Yet, the possible sequence variations and their influence on the self-assembly structures are vast and have hardly been explored. Here, we measure the nanoscopic self-assembled structures of four IDPA systems that differ by their amino acid sequence. We show that permutations in the charge pattern along the sequence remarkably alter the headgroup conformation and consequently alter the pH-triggered phase transitions between spherical, cylindrical micelles and hexagonal condensed phases. We demonstrate that even a single amino acid mutation is sufficient to tune structural transitions in the condensed IDPA mesophases, while peptide conformations remain unfolded and disordered. Furthermore, alteration of the peptide sequence can render IDPAs to become susceptible to enzymatic cleavage and induce enzymatically activated phase transitions. These results hold great potential for embedding multiple functionalities into lipid nanoparticle delivery systems by incorporating IDPAs with the desired properties.
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spelling pubmed-98324772023-01-12 Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles Ehm, Tamara Shinar, Hila Jacoby, Guy Meir, Sagi Koren, Gil Segal Asher, Merav Korpanty, Joanna Thompson, Matthew P. Gianneschi, Nathan C. Kozlov, Michael M. Azoulay-Ginsburg, Salome Amir, Roey J. Rädler, Joachim O. Beck, Roy Biomacromolecules [Image: see text] Intrinsically disordered peptide amphiphiles (IDPAs) present a novel class of synthetic conjugates that consist of short hydrophilic polypeptides anchored to hydrocarbon chains. These hybrid polymer-lipid block constructs spontaneously self-assemble into dispersed nanoscopic aggregates or ordered mesophases in aqueous solution due to hydrophobic interactions. Yet, the possible sequence variations and their influence on the self-assembly structures are vast and have hardly been explored. Here, we measure the nanoscopic self-assembled structures of four IDPA systems that differ by their amino acid sequence. We show that permutations in the charge pattern along the sequence remarkably alter the headgroup conformation and consequently alter the pH-triggered phase transitions between spherical, cylindrical micelles and hexagonal condensed phases. We demonstrate that even a single amino acid mutation is sufficient to tune structural transitions in the condensed IDPA mesophases, while peptide conformations remain unfolded and disordered. Furthermore, alteration of the peptide sequence can render IDPAs to become susceptible to enzymatic cleavage and induce enzymatically activated phase transitions. These results hold great potential for embedding multiple functionalities into lipid nanoparticle delivery systems by incorporating IDPAs with the desired properties. American Chemical Society 2022-12-05 2023-01-09 /pmc/articles/PMC9832477/ /pubmed/36469950 http://dx.doi.org/10.1021/acs.biomac.2c00866 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Ehm, Tamara
Shinar, Hila
Jacoby, Guy
Meir, Sagi
Koren, Gil
Segal Asher, Merav
Korpanty, Joanna
Thompson, Matthew P.
Gianneschi, Nathan C.
Kozlov, Michael M.
Azoulay-Ginsburg, Salome
Amir, Roey J.
Rädler, Joachim O.
Beck, Roy
Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title_full Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title_fullStr Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title_full_unstemmed Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title_short Self-Assembly of Tunable Intrinsically Disordered Peptide Amphiphiles
title_sort self-assembly of tunable intrinsically disordered peptide amphiphiles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9832477/
https://www.ncbi.nlm.nih.gov/pubmed/36469950
http://dx.doi.org/10.1021/acs.biomac.2c00866
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