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Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme

Glioblastoma multiforme (GBM) is the most aggressive type of malignant brain tumour, which is associated with a poor two-year survival rate and a high rate of fatal recurrence near the original tumour. Focal/local drug delivery devices hold promise for improving therapeutic outcomes for GBM by incre...

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Autores principales: Alghamdi, Majed, Chierchini, Filippo, Eigel, Dimitri, Taplan, Christian, Miles, Thomas, Pette, Dagmar, Welzel, Petra B., Werner, Carsten, Wang, Wenxin, Neto, Catia, Gumbleton, Mark, Newland, Ben
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418774/
https://www.ncbi.nlm.nih.gov/pubmed/36132909
http://dx.doi.org/10.1039/d0na00471e
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author Alghamdi, Majed
Chierchini, Filippo
Eigel, Dimitri
Taplan, Christian
Miles, Thomas
Pette, Dagmar
Welzel, Petra B.
Werner, Carsten
Wang, Wenxin
Neto, Catia
Gumbleton, Mark
Newland, Ben
author_facet Alghamdi, Majed
Chierchini, Filippo
Eigel, Dimitri
Taplan, Christian
Miles, Thomas
Pette, Dagmar
Welzel, Petra B.
Werner, Carsten
Wang, Wenxin
Neto, Catia
Gumbleton, Mark
Newland, Ben
author_sort Alghamdi, Majed
collection PubMed
description Glioblastoma multiforme (GBM) is the most aggressive type of malignant brain tumour, which is associated with a poor two-year survival rate and a high rate of fatal recurrence near the original tumour. Focal/local drug delivery devices hold promise for improving therapeutic outcomes for GBM by increasing drug concentrations locally at the tumour site, or by facilitating the use of potent anti-cancer drugs that are poorly permeable across the blood brain barrier (BBB). For inoperable tumours, stereotactic delivery to the tumour necessitates the development of nanoscale/microscale injectable drug delivery devices. Herein we assess the ability of a novel class of polymer nanotube (based on poly(ethylene glycol) (PEG)) to load doxorubicin (a mainstay breast cancer therapeutic with poor BBB permeability) and release it slowly. The drug loading properties of the PEG nanotubes could be tuned by varying the degree of carboxylic acid functionalisation and hence the capacity of the nanotubes to electrostatically bind and load doxorubicin. 70% of the drug was released over the first seven days followed by sustained drug release for the remaining two weeks tested. Unloaded PEG nanotubes showed no toxicity to any of the cell types analysed, whereas doxorubicin loaded nanotubes decreased GBM cell viability (C6, U-87 and U-251) in a dose dependent manner in 2D in vitro culture. Finally, doxorubicin loaded PEG nanotubes significantly reduced the viability of in vitro 3D GBM models whilst unloaded nanotubes showed no cytotoxicity. Taken together, these findings show that polymer nanotubes could be used to deliver alternative anti-cancer drugs for local therapeutic strategies against brain cancers.
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spelling pubmed-94187742022-09-20 Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme Alghamdi, Majed Chierchini, Filippo Eigel, Dimitri Taplan, Christian Miles, Thomas Pette, Dagmar Welzel, Petra B. Werner, Carsten Wang, Wenxin Neto, Catia Gumbleton, Mark Newland, Ben Nanoscale Adv Chemistry Glioblastoma multiforme (GBM) is the most aggressive type of malignant brain tumour, which is associated with a poor two-year survival rate and a high rate of fatal recurrence near the original tumour. Focal/local drug delivery devices hold promise for improving therapeutic outcomes for GBM by increasing drug concentrations locally at the tumour site, or by facilitating the use of potent anti-cancer drugs that are poorly permeable across the blood brain barrier (BBB). For inoperable tumours, stereotactic delivery to the tumour necessitates the development of nanoscale/microscale injectable drug delivery devices. Herein we assess the ability of a novel class of polymer nanotube (based on poly(ethylene glycol) (PEG)) to load doxorubicin (a mainstay breast cancer therapeutic with poor BBB permeability) and release it slowly. The drug loading properties of the PEG nanotubes could be tuned by varying the degree of carboxylic acid functionalisation and hence the capacity of the nanotubes to electrostatically bind and load doxorubicin. 70% of the drug was released over the first seven days followed by sustained drug release for the remaining two weeks tested. Unloaded PEG nanotubes showed no toxicity to any of the cell types analysed, whereas doxorubicin loaded nanotubes decreased GBM cell viability (C6, U-87 and U-251) in a dose dependent manner in 2D in vitro culture. Finally, doxorubicin loaded PEG nanotubes significantly reduced the viability of in vitro 3D GBM models whilst unloaded nanotubes showed no cytotoxicity. Taken together, these findings show that polymer nanotubes could be used to deliver alternative anti-cancer drugs for local therapeutic strategies against brain cancers. RSC 2020-08-24 /pmc/articles/PMC9418774/ /pubmed/36132909 http://dx.doi.org/10.1039/d0na00471e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Alghamdi, Majed
Chierchini, Filippo
Eigel, Dimitri
Taplan, Christian
Miles, Thomas
Pette, Dagmar
Welzel, Petra B.
Werner, Carsten
Wang, Wenxin
Neto, Catia
Gumbleton, Mark
Newland, Ben
Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title_full Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title_fullStr Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title_full_unstemmed Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title_short Poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
title_sort poly(ethylene glycol) based nanotubes for tuneable drug delivery to glioblastoma multiforme
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418774/
https://www.ncbi.nlm.nih.gov/pubmed/36132909
http://dx.doi.org/10.1039/d0na00471e
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