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Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy

pH-sensitive polymer–liposomes can rapidly release their payloads. However, it is difficult to simultaneously achieve stability and pH-responsiveness in the polymer–liposomes. In this study, stable and pH-sensitive crosslinked polymer–liposomes were fabricated through electrostatic interactions. The...

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Autores principales: Chiang, Yi-Ting, Lyu, Sih-Ying, Wen, Yu-Han, Lo, Chun-Liang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6032249/
https://www.ncbi.nlm.nih.gov/pubmed/29848991
http://dx.doi.org/10.3390/ijms19061615
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author Chiang, Yi-Ting
Lyu, Sih-Ying
Wen, Yu-Han
Lo, Chun-Liang
author_facet Chiang, Yi-Ting
Lyu, Sih-Ying
Wen, Yu-Han
Lo, Chun-Liang
author_sort Chiang, Yi-Ting
collection PubMed
description pH-sensitive polymer–liposomes can rapidly release their payloads. However, it is difficult to simultaneously achieve stability and pH-responsiveness in the polymer–liposomes. In this study, stable and pH-sensitive crosslinked polymer–liposomes were fabricated through electrostatic interactions. The pH-sensitive copolymer methoxy poly(ethylene glycol)-block-poly(methacrylic acid)-cholesterol (mPEG-b-P(MAAc)-chol) and crosslinking reagent poly(ethylene glycol) with end-capped with lysine (PEG-Lys2) were synthesized and characterized. At physiological conditions, the pH-sensitive copolymers were anionic and interacted electrostatically with the cationic crosslinker PEG-Lys2, forming the electrostatically-crosslinked polymer–liposomes and stabilizing the liposomal structure. At pH 5.0, the carboxylic groups in mPEG-b-P(MAAc)-chol were neutralized, and the liposomal structure was destroyed. The particle size of the crosslinked polymer–liposomes was approximately 140 nm and the polymer–liposomes were loaded with the anticancer drug doxorubicin. At pH 7.4, the crosslinked polymer–liposomes exhibited good stability with steady particle size and low drug leakage, even in the presence of fetal bovine serum. At pH 5.0, the architecture of the crosslinked polymer–liposomes was damaged following rapid drug release, as observed by using transmission electron microscopy and their apparent size variation. The crosslinked polymer–liposomes were pH-sensitive within the endosome and in the human breast cancer cells MDA-MB-231, as determined by using confocal laser scanning microscopy. The intracellular drug release profiles indicated cytotoxicity in cancer cells. These results indicated that the highly-stable and pH-sensitive electrostatically-crosslinked polymer–liposomes offered a potent drug-delivery system for use in anticancer therapies.
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spelling pubmed-60322492018-07-13 Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy Chiang, Yi-Ting Lyu, Sih-Ying Wen, Yu-Han Lo, Chun-Liang Int J Mol Sci Article pH-sensitive polymer–liposomes can rapidly release their payloads. However, it is difficult to simultaneously achieve stability and pH-responsiveness in the polymer–liposomes. In this study, stable and pH-sensitive crosslinked polymer–liposomes were fabricated through electrostatic interactions. The pH-sensitive copolymer methoxy poly(ethylene glycol)-block-poly(methacrylic acid)-cholesterol (mPEG-b-P(MAAc)-chol) and crosslinking reagent poly(ethylene glycol) with end-capped with lysine (PEG-Lys2) were synthesized and characterized. At physiological conditions, the pH-sensitive copolymers were anionic and interacted electrostatically with the cationic crosslinker PEG-Lys2, forming the electrostatically-crosslinked polymer–liposomes and stabilizing the liposomal structure. At pH 5.0, the carboxylic groups in mPEG-b-P(MAAc)-chol were neutralized, and the liposomal structure was destroyed. The particle size of the crosslinked polymer–liposomes was approximately 140 nm and the polymer–liposomes were loaded with the anticancer drug doxorubicin. At pH 7.4, the crosslinked polymer–liposomes exhibited good stability with steady particle size and low drug leakage, even in the presence of fetal bovine serum. At pH 5.0, the architecture of the crosslinked polymer–liposomes was damaged following rapid drug release, as observed by using transmission electron microscopy and their apparent size variation. The crosslinked polymer–liposomes were pH-sensitive within the endosome and in the human breast cancer cells MDA-MB-231, as determined by using confocal laser scanning microscopy. The intracellular drug release profiles indicated cytotoxicity in cancer cells. These results indicated that the highly-stable and pH-sensitive electrostatically-crosslinked polymer–liposomes offered a potent drug-delivery system for use in anticancer therapies. MDPI 2018-05-30 /pmc/articles/PMC6032249/ /pubmed/29848991 http://dx.doi.org/10.3390/ijms19061615 Text en © 2018 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
Chiang, Yi-Ting
Lyu, Sih-Ying
Wen, Yu-Han
Lo, Chun-Liang
Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title_full Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title_fullStr Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title_full_unstemmed Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title_short Preparation and Characterization of Electrostatically Crosslinked Polymer–Liposomes in Anticancer Therapy
title_sort preparation and characterization of electrostatically crosslinked polymer–liposomes in anticancer therapy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6032249/
https://www.ncbi.nlm.nih.gov/pubmed/29848991
http://dx.doi.org/10.3390/ijms19061615
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