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Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles

[Image: see text] Core-crosslinked polymeric micelles (CCPMs) are an attractive class of nanocarriers for drug delivery. Two crosslinking approaches to form CCPMs exist: either via a low-molecular-weight crosslinking agent to connect homogeneous polymer chains with reactive handles or via cross-reac...

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Autores principales: Hebels, Erik R., van Steenbergen, Mies J., Haegebaert, Ragna, Seinen, Cornelis W., Mesquita, Barbara S., van den Dikkenberg, Antoinette, Remaut, Katrien, Rijcken, Cristianne J. F., van Ravensteijn, Bas G. P., Hennink, Wim E., Vermonden, Tina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10469444/
https://www.ncbi.nlm.nih.gov/pubmed/37581242
http://dx.doi.org/10.1021/acs.langmuir.3c01399
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author Hebels, Erik R.
van Steenbergen, Mies J.
Haegebaert, Ragna
Seinen, Cornelis W.
Mesquita, Barbara S.
van den Dikkenberg, Antoinette
Remaut, Katrien
Rijcken, Cristianne J. F.
van Ravensteijn, Bas G. P.
Hennink, Wim E.
Vermonden, Tina
author_facet Hebels, Erik R.
van Steenbergen, Mies J.
Haegebaert, Ragna
Seinen, Cornelis W.
Mesquita, Barbara S.
van den Dikkenberg, Antoinette
Remaut, Katrien
Rijcken, Cristianne J. F.
van Ravensteijn, Bas G. P.
Hennink, Wim E.
Vermonden, Tina
author_sort Hebels, Erik R.
collection PubMed
description [Image: see text] Core-crosslinked polymeric micelles (CCPMs) are an attractive class of nanocarriers for drug delivery. Two crosslinking approaches to form CCPMs exist: either via a low-molecular-weight crosslinking agent to connect homogeneous polymer chains with reactive handles or via cross-reactive handles on polymers to link them to each other (complementary polymers). Previously, CCPMs based on methoxy poly(ethylene glycol)-b-poly[N-(2-hydroxypropyl) methacrylamide-lactate] (mPEG-b-PHPMAmLac(n)) modified with thioesters were crosslinked via native chemical ligation (NCL, a reaction between a cysteine residue and thioester resulting in an amide bond) using a bifunctional cysteine containing crosslinker. These CCPMs are degradable under physiological conditions due to hydrolysis of the ester groups present in the crosslinks. The rapid onset of degradation observed previously, as measured by the light scattering intensity, questions the effectiveness of crosslinking via a bifunctional agent. Particularly due to the possibility of intrachain crosslinks that can occur using such a small crosslinker, we investigated the degradation mechanism of CCPMs generated via both approaches using various analytical techniques. CCPMs based on complementary polymers degraded slower at pH 7.4 and 37 °C than CCPMs with a crosslinker (the half-life of the light scattering intensity was approximately 170 h versus 80 h, respectively). Through comparative analysis of the degradation profiles of the two different CCPMs, we conclude that partially ineffective intrachain crosslinks are likely formed using the small crosslinker, which contributed to more rapid CCPM degradation. Overall, this study shows that the type of crosslinking approach can significantly affect degradation kinetics, and this should be taken into consideration when developing new degradable CCPM platforms.
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spelling pubmed-104694442023-09-01 Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles Hebels, Erik R. van Steenbergen, Mies J. Haegebaert, Ragna Seinen, Cornelis W. Mesquita, Barbara S. van den Dikkenberg, Antoinette Remaut, Katrien Rijcken, Cristianne J. F. van Ravensteijn, Bas G. P. Hennink, Wim E. Vermonden, Tina Langmuir [Image: see text] Core-crosslinked polymeric micelles (CCPMs) are an attractive class of nanocarriers for drug delivery. Two crosslinking approaches to form CCPMs exist: either via a low-molecular-weight crosslinking agent to connect homogeneous polymer chains with reactive handles or via cross-reactive handles on polymers to link them to each other (complementary polymers). Previously, CCPMs based on methoxy poly(ethylene glycol)-b-poly[N-(2-hydroxypropyl) methacrylamide-lactate] (mPEG-b-PHPMAmLac(n)) modified with thioesters were crosslinked via native chemical ligation (NCL, a reaction between a cysteine residue and thioester resulting in an amide bond) using a bifunctional cysteine containing crosslinker. These CCPMs are degradable under physiological conditions due to hydrolysis of the ester groups present in the crosslinks. The rapid onset of degradation observed previously, as measured by the light scattering intensity, questions the effectiveness of crosslinking via a bifunctional agent. Particularly due to the possibility of intrachain crosslinks that can occur using such a small crosslinker, we investigated the degradation mechanism of CCPMs generated via both approaches using various analytical techniques. CCPMs based on complementary polymers degraded slower at pH 7.4 and 37 °C than CCPMs with a crosslinker (the half-life of the light scattering intensity was approximately 170 h versus 80 h, respectively). Through comparative analysis of the degradation profiles of the two different CCPMs, we conclude that partially ineffective intrachain crosslinks are likely formed using the small crosslinker, which contributed to more rapid CCPM degradation. Overall, this study shows that the type of crosslinking approach can significantly affect degradation kinetics, and this should be taken into consideration when developing new degradable CCPM platforms. American Chemical Society 2023-08-15 /pmc/articles/PMC10469444/ /pubmed/37581242 http://dx.doi.org/10.1021/acs.langmuir.3c01399 Text en © 2023 The Authors. Published by 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 Hebels, Erik R.
van Steenbergen, Mies J.
Haegebaert, Ragna
Seinen, Cornelis W.
Mesquita, Barbara S.
van den Dikkenberg, Antoinette
Remaut, Katrien
Rijcken, Cristianne J. F.
van Ravensteijn, Bas G. P.
Hennink, Wim E.
Vermonden, Tina
Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title_full Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title_fullStr Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title_full_unstemmed Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title_short Mechanistic Study on the Degradation of Hydrolysable Core-Crosslinked Polymeric Micelles
title_sort mechanistic study on the degradation of hydrolysable core-crosslinked polymeric micelles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10469444/
https://www.ncbi.nlm.nih.gov/pubmed/37581242
http://dx.doi.org/10.1021/acs.langmuir.3c01399
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