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Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism

A micellar hydrogel has long been considered an intelligent hydrophobic drug delivery material. In this study, synthesized PLA(1750)-PEG(1750)-PLA(1750) micellar hydrogel aims to encapsulate ibuprofen (IBU) in the core PLA hydrophobic of the micelle and prolong the drug release time by an injectable...

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Autores principales: Nguyen, Hien Thi-Thanh, Nguyen, Lam Thi-Truc, Ha, Anh Cam, Huynh, Phu Dai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10159733/
https://www.ncbi.nlm.nih.gov/pubmed/37151377
http://dx.doi.org/10.1155/2023/5005316
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author Nguyen, Hien Thi-Thanh
Nguyen, Lam Thi-Truc
Ha, Anh Cam
Huynh, Phu Dai
author_facet Nguyen, Hien Thi-Thanh
Nguyen, Lam Thi-Truc
Ha, Anh Cam
Huynh, Phu Dai
author_sort Nguyen, Hien Thi-Thanh
collection PubMed
description A micellar hydrogel has long been considered an intelligent hydrophobic drug delivery material. In this study, synthesized PLA(1750)-PEG(1750)-PLA(1750) micellar hydrogel aims to encapsulate ibuprofen (IBU) in the core PLA hydrophobic of the micelle and prolong the drug release time by an injectable route. The structure and morphology of the PLA(1750)-PEG(1750)-PLA(1750) copolymer hydrogel were demonstrated by (1)H NMR and TEM data. The hydrogel also achieved a gel state at a high concentration of 25 wt.% under the physiological conditions of the body (37°C, pH 7.4). Besides, the biocompatibility test displayed that the hydrogel slightly affected mice after injection one week and fully recovered after four weeks. Furthermore, the in vitro degradation of the hydrogel showed apparent gel erosion after the first three weeks, which is related to the IBU release rate: slow for the first three weeks and then fast. As a result, the total drug release after three and four weeks was 18 wt.% and 41 wt.%, respectively. However, in the first 24 hours, the amount of the drug released was 10 wt.%, suggesting that the IBU drug diffused from the surface hydrogel to the buffer solution. These show that PLA(1750)-PEG(1750)-PLA(1750) hydrogel can be a potential IBU drug delivery candidate.
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spelling pubmed-101597332023-05-05 Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism Nguyen, Hien Thi-Thanh Nguyen, Lam Thi-Truc Ha, Anh Cam Huynh, Phu Dai Int J Biomater Research Article A micellar hydrogel has long been considered an intelligent hydrophobic drug delivery material. In this study, synthesized PLA(1750)-PEG(1750)-PLA(1750) micellar hydrogel aims to encapsulate ibuprofen (IBU) in the core PLA hydrophobic of the micelle and prolong the drug release time by an injectable route. The structure and morphology of the PLA(1750)-PEG(1750)-PLA(1750) copolymer hydrogel were demonstrated by (1)H NMR and TEM data. The hydrogel also achieved a gel state at a high concentration of 25 wt.% under the physiological conditions of the body (37°C, pH 7.4). Besides, the biocompatibility test displayed that the hydrogel slightly affected mice after injection one week and fully recovered after four weeks. Furthermore, the in vitro degradation of the hydrogel showed apparent gel erosion after the first three weeks, which is related to the IBU release rate: slow for the first three weeks and then fast. As a result, the total drug release after three and four weeks was 18 wt.% and 41 wt.%, respectively. However, in the first 24 hours, the amount of the drug released was 10 wt.%, suggesting that the IBU drug diffused from the surface hydrogel to the buffer solution. These show that PLA(1750)-PEG(1750)-PLA(1750) hydrogel can be a potential IBU drug delivery candidate. Hindawi 2023-04-27 /pmc/articles/PMC10159733/ /pubmed/37151377 http://dx.doi.org/10.1155/2023/5005316 Text en Copyright © 2023 Hien Thi-Thanh Nguyen et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Nguyen, Hien Thi-Thanh
Nguyen, Lam Thi-Truc
Ha, Anh Cam
Huynh, Phu Dai
Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title_full Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title_fullStr Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title_full_unstemmed Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title_short Evaluation of Ibuprofen Prolonged Release of Biomedical PLA-PEG-PLA Hydrogel via Degradation Mechanism
title_sort evaluation of ibuprofen prolonged release of biomedical pla-peg-pla hydrogel via degradation mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10159733/
https://www.ncbi.nlm.nih.gov/pubmed/37151377
http://dx.doi.org/10.1155/2023/5005316
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