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A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules

Micelles self-assembled from small amphiphilic molecules are unstable in biological fluids, and thus are poor drug carriers. In contrast, amphiphilic polymer micelles can encapsulate hydrophobic drugs in their core to greatly enhance their aqueous solubility and extend their retention time in blood...

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Detalles Bibliográficos
Autores principales: Li, Man, Ling, Longbing, Xia, Qing, Li, Xinsong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697188/
https://www.ncbi.nlm.nih.gov/pubmed/35423790
http://dx.doi.org/10.1039/d1ra00079a
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author Li, Man
Ling, Longbing
Xia, Qing
Li, Xinsong
author_facet Li, Man
Ling, Longbing
Xia, Qing
Li, Xinsong
author_sort Li, Man
collection PubMed
description Micelles self-assembled from small amphiphilic molecules are unstable in biological fluids, and thus are poor drug carriers. In contrast, amphiphilic polymer micelles can encapsulate hydrophobic drugs in their core to greatly enhance their aqueous solubility and extend their retention time in blood circulation owing to their hydrophilic shell. However, the major disadvantages of conventional polymer micelles are the heterogeneity of the amphiphilic polymer structure and premature drug leakage. Thus, herein, to address these shortcomings, disulfide crosslinked micelles composed of a small amphiphilic molecule, di-lipoyl-glycerophosphorylcholine (di-LA-PC), were developed as redox-responsive drug carriers. Specifically, di-LA-PC was synthesized and self-assembled to form crosslinked micelles under catalysis by dithiothreitol. The disulfide crosslinked micelles maintained high stability in a simulated physiological environment, but rapidly disassembled under reductive conditions. Furthermore, paclitaxel (PTX), as a model drug, was encapsulated in the core of the crosslinked micelles with a high loading content of 8.13%. The in vitro release studies indicated that over 80% of PTX was released from the micelles in the reductive environment, whereas less than 20% PTX was released without reduction in the 68 h test. Benefiting from their nanoscale characteristics, the PTX-loaded micelles showed efficient cellular internalization and effectively induced the death of cancer cells, as revealed in the MTT, apoptosis and cell cycle tests. Moreover, pharmacokinetic studies demonstrated that the crosslinked micelles prolonged the circulation of the incorporated PTX in the bloodstream and increased its accumulation in the tumor tissue via the EPR effect. Finally, the PTX-loaded micelles displayed prominent in vivo anti-tumor activity in a 4T1 xenograft tumor model. In summary, the di-LA-PC crosslinked micelle platform possesses excellent stability, high loading capacity and reduction-responsive release profile, which may have applications in the delivery of PTX and other anti-cancer drugs.
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spelling pubmed-86971882022-04-13 A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules Li, Man Ling, Longbing Xia, Qing Li, Xinsong RSC Adv Chemistry Micelles self-assembled from small amphiphilic molecules are unstable in biological fluids, and thus are poor drug carriers. In contrast, amphiphilic polymer micelles can encapsulate hydrophobic drugs in their core to greatly enhance their aqueous solubility and extend their retention time in blood circulation owing to their hydrophilic shell. However, the major disadvantages of conventional polymer micelles are the heterogeneity of the amphiphilic polymer structure and premature drug leakage. Thus, herein, to address these shortcomings, disulfide crosslinked micelles composed of a small amphiphilic molecule, di-lipoyl-glycerophosphorylcholine (di-LA-PC), were developed as redox-responsive drug carriers. Specifically, di-LA-PC was synthesized and self-assembled to form crosslinked micelles under catalysis by dithiothreitol. The disulfide crosslinked micelles maintained high stability in a simulated physiological environment, but rapidly disassembled under reductive conditions. Furthermore, paclitaxel (PTX), as a model drug, was encapsulated in the core of the crosslinked micelles with a high loading content of 8.13%. The in vitro release studies indicated that over 80% of PTX was released from the micelles in the reductive environment, whereas less than 20% PTX was released without reduction in the 68 h test. Benefiting from their nanoscale characteristics, the PTX-loaded micelles showed efficient cellular internalization and effectively induced the death of cancer cells, as revealed in the MTT, apoptosis and cell cycle tests. Moreover, pharmacokinetic studies demonstrated that the crosslinked micelles prolonged the circulation of the incorporated PTX in the bloodstream and increased its accumulation in the tumor tissue via the EPR effect. Finally, the PTX-loaded micelles displayed prominent in vivo anti-tumor activity in a 4T1 xenograft tumor model. In summary, the di-LA-PC crosslinked micelle platform possesses excellent stability, high loading capacity and reduction-responsive release profile, which may have applications in the delivery of PTX and other anti-cancer drugs. The Royal Society of Chemistry 2021-04-01 /pmc/articles/PMC8697188/ /pubmed/35423790 http://dx.doi.org/10.1039/d1ra00079a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Man
Ling, Longbing
Xia, Qing
Li, Xinsong
A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title_full A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title_fullStr A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title_full_unstemmed A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title_short A reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
title_sort reduction-responsive drug delivery with improved stability: disulfide crosslinked micelles of small amiphiphilic molecules
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697188/
https://www.ncbi.nlm.nih.gov/pubmed/35423790
http://dx.doi.org/10.1039/d1ra00079a
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