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Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel

[Image: see text] We have developed a dual-functional nanocarrier composed of a hydrophilic polyethylene glycol (PEG) and a hydrophobic farnesylthiosalicylate (FTS, a nontoxic Ras antagonist), which is effective in delivery of hydrophobic anticancer drug, paclitaxel (PTX). To facilitate the retentio...

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Autores principales: Zhang, Xiaolan, Liu, Ke, Huang, Yixian, Xu, Jieni, Li, Jiang, Ma, Xiaochao, Li, Song
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4166038/
https://www.ncbi.nlm.nih.gov/pubmed/25121577
http://dx.doi.org/10.1021/bc500292j
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author Zhang, Xiaolan
Liu, Ke
Huang, Yixian
Xu, Jieni
Li, Jiang
Ma, Xiaochao
Li, Song
author_facet Zhang, Xiaolan
Liu, Ke
Huang, Yixian
Xu, Jieni
Li, Jiang
Ma, Xiaochao
Li, Song
author_sort Zhang, Xiaolan
collection PubMed
description [Image: see text] We have developed a dual-functional nanocarrier composed of a hydrophilic polyethylene glycol (PEG) and a hydrophobic farnesylthiosalicylate (FTS, a nontoxic Ras antagonist), which is effective in delivery of hydrophobic anticancer drug, paclitaxel (PTX). To facilitate the retention of the therapeutic activity of the carrier, FTS was coupled to PEG via a reduction-sensitive disulfide linkage (PEG(5k)-S-S-FTS(2)). PEG(5k)-S-S-FTS(2) conjugate formed uniform micelles with very small size (∼30 nm) and the hydrophobic drug PTX could be readily incorporated into the micelles. Interestingly, inclusion of a disulfide linkage into the PEG(5k)-FTS(2) micellar system resulted in a 4-fold decrease in the critical micelle concentration (CMC). In addition, the PTX loading capacity and colloidal stability of PTX-loaded micelles were improved. HPLC-MS showed that parent FTS could be more effectively released from PEG(5k)-S-S-FTS(2) conjugate in tumor cells/tissues compared to PEG(5k)-FTS(2) conjugate in vitro and in vivo. PEG(5k)-S-S-FTS(2) exhibited a higher level of cytotoxicity toward tumor cells than PEG(5k)-FTS(2) without a disulfide linkage. Furthermore, PTX-loaded PEG(5k)-S-S-FTS(2) micelles were more effective in inhibiting the proliferation of cultured tumor cells compared to Taxol and PTX loaded in PEG(5k)-FTS(2) micelles. More importantly, PTX-loaded PEG(5k)-S-S-FTS(2) micelles demonstrated superior antitumor activity compared to Taxol and PTX formulated in PEG(5k)-FTS(2) micelles in an aggressive murine breast cancer model (4T1.2).
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spelling pubmed-41660382015-08-08 Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel Zhang, Xiaolan Liu, Ke Huang, Yixian Xu, Jieni Li, Jiang Ma, Xiaochao Li, Song Bioconjug Chem [Image: see text] We have developed a dual-functional nanocarrier composed of a hydrophilic polyethylene glycol (PEG) and a hydrophobic farnesylthiosalicylate (FTS, a nontoxic Ras antagonist), which is effective in delivery of hydrophobic anticancer drug, paclitaxel (PTX). To facilitate the retention of the therapeutic activity of the carrier, FTS was coupled to PEG via a reduction-sensitive disulfide linkage (PEG(5k)-S-S-FTS(2)). PEG(5k)-S-S-FTS(2) conjugate formed uniform micelles with very small size (∼30 nm) and the hydrophobic drug PTX could be readily incorporated into the micelles. Interestingly, inclusion of a disulfide linkage into the PEG(5k)-FTS(2) micellar system resulted in a 4-fold decrease in the critical micelle concentration (CMC). In addition, the PTX loading capacity and colloidal stability of PTX-loaded micelles were improved. HPLC-MS showed that parent FTS could be more effectively released from PEG(5k)-S-S-FTS(2) conjugate in tumor cells/tissues compared to PEG(5k)-FTS(2) conjugate in vitro and in vivo. PEG(5k)-S-S-FTS(2) exhibited a higher level of cytotoxicity toward tumor cells than PEG(5k)-FTS(2) without a disulfide linkage. Furthermore, PTX-loaded PEG(5k)-S-S-FTS(2) micelles were more effective in inhibiting the proliferation of cultured tumor cells compared to Taxol and PTX loaded in PEG(5k)-FTS(2) micelles. More importantly, PTX-loaded PEG(5k)-S-S-FTS(2) micelles demonstrated superior antitumor activity compared to Taxol and PTX formulated in PEG(5k)-FTS(2) micelles in an aggressive murine breast cancer model (4T1.2). American Chemical Society 2014-08-08 2014-09-17 /pmc/articles/PMC4166038/ /pubmed/25121577 http://dx.doi.org/10.1021/bc500292j Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Zhang, Xiaolan
Liu, Ke
Huang, Yixian
Xu, Jieni
Li, Jiang
Ma, Xiaochao
Li, Song
Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title_full Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title_fullStr Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title_full_unstemmed Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title_short Reduction-Sensitive Dual Functional Nanomicelles for Improved Delivery of Paclitaxel
title_sort reduction-sensitive dual functional nanomicelles for improved delivery of paclitaxel
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4166038/
https://www.ncbi.nlm.nih.gov/pubmed/25121577
http://dx.doi.org/10.1021/bc500292j
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