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Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery

Alginate hydrogels have been broadly investigated for use in medical applications due to their biocompatibility and the possibility to encapsulate cells, proteins, and drugs. In the treatment of peritoneal metastasis, rapid drug clearance from the peritoneal cavity is a major challenge. Aiming to de...

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Autores principales: Fleten, Karianne Giller, Hyldbakk, Astrid, Einen, Caroline, Benjakul, Sopisa, Strand, Berit Løkensgard, Davies, Catharina de Lange, Mørch, Ýrr, Flatmark, Kjersti
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9782800/
https://www.ncbi.nlm.nih.gov/pubmed/36547891
http://dx.doi.org/10.3390/md20120744
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author Fleten, Karianne Giller
Hyldbakk, Astrid
Einen, Caroline
Benjakul, Sopisa
Strand, Berit Løkensgard
Davies, Catharina de Lange
Mørch, Ýrr
Flatmark, Kjersti
author_facet Fleten, Karianne Giller
Hyldbakk, Astrid
Einen, Caroline
Benjakul, Sopisa
Strand, Berit Løkensgard
Davies, Catharina de Lange
Mørch, Ýrr
Flatmark, Kjersti
author_sort Fleten, Karianne Giller
collection PubMed
description Alginate hydrogels have been broadly investigated for use in medical applications due to their biocompatibility and the possibility to encapsulate cells, proteins, and drugs. In the treatment of peritoneal metastasis, rapid drug clearance from the peritoneal cavity is a major challenge. Aiming to delay drug absorption and reduce toxic side effects, cabazitaxel (CAB)-loaded poly(alkyl cyanoacrylate) (PACA) nanoparticles were encapsulated in alginate microspheres. The PACAlg alginate microspheres were synthesized by electrostatic droplet generation and the physicochemical properties, stability, drug release kinetics, and mesothelial cytotoxicity were analyzed before biodistribution and therapeutic efficacy were studied in mice. The 450 µm microspheres were stable at in vivo conditions for at least 21 days after intraperitoneal implantation in mice, and distributed evenly throughout the peritoneal cavity without aggregation or adhesion. The nanoparticles were stably retained in the alginate microspheres, and nanoparticle toxicity to mesothelial cells was reduced, while the therapeutic efficacy of free CAB was maintained or improved in vivo. Altogether, this work presents the alginate encapsulation of drug-loaded nanoparticles as a promising novel strategy for the treatment of peritoneal metastasis that can improve the therapeutic ratio between toxicity and therapeutic efficacy.
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spelling pubmed-97828002022-12-24 Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery Fleten, Karianne Giller Hyldbakk, Astrid Einen, Caroline Benjakul, Sopisa Strand, Berit Løkensgard Davies, Catharina de Lange Mørch, Ýrr Flatmark, Kjersti Mar Drugs Article Alginate hydrogels have been broadly investigated for use in medical applications due to their biocompatibility and the possibility to encapsulate cells, proteins, and drugs. In the treatment of peritoneal metastasis, rapid drug clearance from the peritoneal cavity is a major challenge. Aiming to delay drug absorption and reduce toxic side effects, cabazitaxel (CAB)-loaded poly(alkyl cyanoacrylate) (PACA) nanoparticles were encapsulated in alginate microspheres. The PACAlg alginate microspheres were synthesized by electrostatic droplet generation and the physicochemical properties, stability, drug release kinetics, and mesothelial cytotoxicity were analyzed before biodistribution and therapeutic efficacy were studied in mice. The 450 µm microspheres were stable at in vivo conditions for at least 21 days after intraperitoneal implantation in mice, and distributed evenly throughout the peritoneal cavity without aggregation or adhesion. The nanoparticles were stably retained in the alginate microspheres, and nanoparticle toxicity to mesothelial cells was reduced, while the therapeutic efficacy of free CAB was maintained or improved in vivo. Altogether, this work presents the alginate encapsulation of drug-loaded nanoparticles as a promising novel strategy for the treatment of peritoneal metastasis that can improve the therapeutic ratio between toxicity and therapeutic efficacy. MDPI 2022-11-26 /pmc/articles/PMC9782800/ /pubmed/36547891 http://dx.doi.org/10.3390/md20120744 Text en © 2022 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
Fleten, Karianne Giller
Hyldbakk, Astrid
Einen, Caroline
Benjakul, Sopisa
Strand, Berit Løkensgard
Davies, Catharina de Lange
Mørch, Ýrr
Flatmark, Kjersti
Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title_full Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title_fullStr Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title_full_unstemmed Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title_short Alginate Microsphere Encapsulation of Drug-Loaded Nanoparticles: A Novel Strategy for Intraperitoneal Drug Delivery
title_sort alginate microsphere encapsulation of drug-loaded nanoparticles: a novel strategy for intraperitoneal drug delivery
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9782800/
https://www.ncbi.nlm.nih.gov/pubmed/36547891
http://dx.doi.org/10.3390/md20120744
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