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Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems

Electrospun systems are becoming promising devices usable for topical treatments. They are eligible to deliver different therapies, from anti-inflammatory to antitumoral. In the current research, polycaprolactone electrospun membranes loaded with synthetic and commercial antitumoral active substance...

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Autores principales: Longo, Raffaele, Raimondo, Marialuigia, Vertuccio, Luigi, Ciardulli, Maria Camilla, Sirignano, Marco, Mariconda, Annaluisa, Della Porta, Giovanna, Guadagno, Liberata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9861055/
https://www.ncbi.nlm.nih.gov/pubmed/36675021
http://dx.doi.org/10.3390/ijms24021507
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author Longo, Raffaele
Raimondo, Marialuigia
Vertuccio, Luigi
Ciardulli, Maria Camilla
Sirignano, Marco
Mariconda, Annaluisa
Della Porta, Giovanna
Guadagno, Liberata
author_facet Longo, Raffaele
Raimondo, Marialuigia
Vertuccio, Luigi
Ciardulli, Maria Camilla
Sirignano, Marco
Mariconda, Annaluisa
Della Porta, Giovanna
Guadagno, Liberata
author_sort Longo, Raffaele
collection PubMed
description Electrospun systems are becoming promising devices usable for topical treatments. They are eligible to deliver different therapies, from anti-inflammatory to antitumoral. In the current research, polycaprolactone electrospun membranes loaded with synthetic and commercial antitumoral active substances were produced, underlining how the matrix-filler affinity is a crucial parameter for designing drug delivery devices. Nanofibrous membranes loaded with different percentages of Dacarbazine (the drug of choice for melanoma) and a synthetic derivative of Dacarbazine were produced and compared to membranes loaded with AuM1, a highly active Au-complex with low affinity to the matrix. AFM morphologies showed that the surface profile of nanofibers loaded with affine substances is similar to one of the unloaded systems, thanks to the nature of the matrix-filler interaction. FTIR analyses proved the efficacy of the interaction between the amidic group of the Dacarbazine and the polycaprolactone. In AuM1-loaded membranes, because of the weak matrix-filler interaction, the complex is mainly aggregated in nanometric domains on the nanofiber surface, which manifests a nanometric roughness. Consequently, the release profiles follow a Fickian behavior for the Dacarbazine-based systems, whereas a two-step with a highly prominent burst effect was observed for AuM1 systems. The performed antitumoral tests evidence the high-cytotoxic activity of the electrospun systems against melanoma cell lines, proving that the synthetic substances are more active than the commercial dacarbazine.
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spelling pubmed-98610552023-01-22 Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems Longo, Raffaele Raimondo, Marialuigia Vertuccio, Luigi Ciardulli, Maria Camilla Sirignano, Marco Mariconda, Annaluisa Della Porta, Giovanna Guadagno, Liberata Int J Mol Sci Article Electrospun systems are becoming promising devices usable for topical treatments. They are eligible to deliver different therapies, from anti-inflammatory to antitumoral. In the current research, polycaprolactone electrospun membranes loaded with synthetic and commercial antitumoral active substances were produced, underlining how the matrix-filler affinity is a crucial parameter for designing drug delivery devices. Nanofibrous membranes loaded with different percentages of Dacarbazine (the drug of choice for melanoma) and a synthetic derivative of Dacarbazine were produced and compared to membranes loaded with AuM1, a highly active Au-complex with low affinity to the matrix. AFM morphologies showed that the surface profile of nanofibers loaded with affine substances is similar to one of the unloaded systems, thanks to the nature of the matrix-filler interaction. FTIR analyses proved the efficacy of the interaction between the amidic group of the Dacarbazine and the polycaprolactone. In AuM1-loaded membranes, because of the weak matrix-filler interaction, the complex is mainly aggregated in nanometric domains on the nanofiber surface, which manifests a nanometric roughness. Consequently, the release profiles follow a Fickian behavior for the Dacarbazine-based systems, whereas a two-step with a highly prominent burst effect was observed for AuM1 systems. The performed antitumoral tests evidence the high-cytotoxic activity of the electrospun systems against melanoma cell lines, proving that the synthetic substances are more active than the commercial dacarbazine. MDPI 2023-01-12 /pmc/articles/PMC9861055/ /pubmed/36675021 http://dx.doi.org/10.3390/ijms24021507 Text en © 2023 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
Longo, Raffaele
Raimondo, Marialuigia
Vertuccio, Luigi
Ciardulli, Maria Camilla
Sirignano, Marco
Mariconda, Annaluisa
Della Porta, Giovanna
Guadagno, Liberata
Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title_full Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title_fullStr Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title_full_unstemmed Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title_short Bottom-Up Strategy to Forecast the Drug Location and Release Kinetics in Antitumoral Electrospun Drug Delivery Systems
title_sort bottom-up strategy to forecast the drug location and release kinetics in antitumoral electrospun drug delivery systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9861055/
https://www.ncbi.nlm.nih.gov/pubmed/36675021
http://dx.doi.org/10.3390/ijms24021507
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