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Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel

Prolonging in vivo circulation has proved to be an efficient route for enhancing the therapeutic effect of rapidly metabolized drugs. In this study, we aimed to construct a nanocrystal-loaded micelles delivery system to enhance the blood circulation of docetaxel (DOC). We employed high-pressure homo...

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Autores principales: Cheng, Meng, Liu, Qiaoming, Gan, Tiantian, Fang, Yuanying, Yue, Pengfei, Sun, Yongbing, Jin, Yi, Feng, Jianfang, Tu, Liangxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348076/
https://www.ncbi.nlm.nih.gov/pubmed/34361634
http://dx.doi.org/10.3390/molecules26154481
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author Cheng, Meng
Liu, Qiaoming
Gan, Tiantian
Fang, Yuanying
Yue, Pengfei
Sun, Yongbing
Jin, Yi
Feng, Jianfang
Tu, Liangxing
author_facet Cheng, Meng
Liu, Qiaoming
Gan, Tiantian
Fang, Yuanying
Yue, Pengfei
Sun, Yongbing
Jin, Yi
Feng, Jianfang
Tu, Liangxing
author_sort Cheng, Meng
collection PubMed
description Prolonging in vivo circulation has proved to be an efficient route for enhancing the therapeutic effect of rapidly metabolized drugs. In this study, we aimed to construct a nanocrystal-loaded micelles delivery system to enhance the blood circulation of docetaxel (DOC). We employed high-pressure homogenization to prepare docetaxel nanocrystals (DOC(Nc)), and then produced docetaxel nanocrystal-loaded micelles (DOC(Nc)@mPEG-PLA) by a thin-film hydration method. The particle sizes of optimized DOC(Nc), docetaxel micelles (DOC@mPEG-PLA), and DOC(Nc)@mPEG-PLA were 168.4, 36.3, and 72.5 nm, respectively. The crystallinity of docetaxel was decreased after transforming it into nanocrystals, and the crystalline state of docetaxel in micelles was amorphous. The constructed DOC(Nc)@mPEG-PLA showed good stability as its particle size showed no significant change in 7 days. Despite their rapid dissolution, docetaxel nanocrystals exhibited higher bioavailability. The micelles prolonged the retention time of docetaxel in the circulation system of rats, and DOC(Nc)@mPEG-PLA exhibited the highest retention time and bioavailability. These results reveal that constructing nanocrystal-loaded micelles may be a promising way to enhance the in vivo circulation and bioavailability of rapidly metabolized drugs such as docetaxel.
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spelling pubmed-83480762021-08-08 Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel Cheng, Meng Liu, Qiaoming Gan, Tiantian Fang, Yuanying Yue, Pengfei Sun, Yongbing Jin, Yi Feng, Jianfang Tu, Liangxing Molecules Article Prolonging in vivo circulation has proved to be an efficient route for enhancing the therapeutic effect of rapidly metabolized drugs. In this study, we aimed to construct a nanocrystal-loaded micelles delivery system to enhance the blood circulation of docetaxel (DOC). We employed high-pressure homogenization to prepare docetaxel nanocrystals (DOC(Nc)), and then produced docetaxel nanocrystal-loaded micelles (DOC(Nc)@mPEG-PLA) by a thin-film hydration method. The particle sizes of optimized DOC(Nc), docetaxel micelles (DOC@mPEG-PLA), and DOC(Nc)@mPEG-PLA were 168.4, 36.3, and 72.5 nm, respectively. The crystallinity of docetaxel was decreased after transforming it into nanocrystals, and the crystalline state of docetaxel in micelles was amorphous. The constructed DOC(Nc)@mPEG-PLA showed good stability as its particle size showed no significant change in 7 days. Despite their rapid dissolution, docetaxel nanocrystals exhibited higher bioavailability. The micelles prolonged the retention time of docetaxel in the circulation system of rats, and DOC(Nc)@mPEG-PLA exhibited the highest retention time and bioavailability. These results reveal that constructing nanocrystal-loaded micelles may be a promising way to enhance the in vivo circulation and bioavailability of rapidly metabolized drugs such as docetaxel. MDPI 2021-07-24 /pmc/articles/PMC8348076/ /pubmed/34361634 http://dx.doi.org/10.3390/molecules26154481 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cheng, Meng
Liu, Qiaoming
Gan, Tiantian
Fang, Yuanying
Yue, Pengfei
Sun, Yongbing
Jin, Yi
Feng, Jianfang
Tu, Liangxing
Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title_full Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title_fullStr Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title_full_unstemmed Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title_short Nanocrystal-Loaded Micelles for the Enhanced In Vivo Circulation of Docetaxel
title_sort nanocrystal-loaded micelles for the enhanced in vivo circulation of docetaxel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348076/
https://www.ncbi.nlm.nih.gov/pubmed/34361634
http://dx.doi.org/10.3390/molecules26154481
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