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Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone

Polymeric nanoparticles that combine dexamethasone and naproxen reduce inflammation and synergistically inhibit Interleukin-12b (Il12b) transcription in macrophages. This effect can be the result of a cyclooxygenase-dependent or a cyclooxygenase-independent mechanism. The aim of this work is to obta...

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Autores principales: Espinosa-Cano, Eva, Aguilar, Maria Rosa, Portilla, Yadileiny, Barber, Domingo F., San Román, Julio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7465001/
https://www.ncbi.nlm.nih.gov/pubmed/32751993
http://dx.doi.org/10.3390/pharmaceutics12080723
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author Espinosa-Cano, Eva
Aguilar, Maria Rosa
Portilla, Yadileiny
Barber, Domingo F.
San Román, Julio
author_facet Espinosa-Cano, Eva
Aguilar, Maria Rosa
Portilla, Yadileiny
Barber, Domingo F.
San Román, Julio
author_sort Espinosa-Cano, Eva
collection PubMed
description Polymeric nanoparticles that combine dexamethasone and naproxen reduce inflammation and synergistically inhibit Interleukin-12b (Il12b) transcription in macrophages. This effect can be the result of a cyclooxygenase-dependent or a cyclooxygenase-independent mechanism. The aim of this work is to obtain potent anti-inflammatory polymeric nanoparticles by the combination of dexamethasone and ketoprofen, one of the most efficient cyclooxygenase-inhibitors among non-steroidal anti-inflammatory drugs, with appropriate hydrodynamic properties to facilitate accumulation and co-release of drugs in inflamed tissue. Nanoparticles are spherical with hydrodynamic diameter (117 ± 1 nm), polydispersity (0.139 ± 0.004), and surface charge (+30 ± 1 mV), which confer them with high stability and facilitate both macrophage uptake and internalization pathways to favor their retention at the inflamed areas and lysosomal degradation and drug release, respectively. In vitro biological studies concluded that the dexamethasone-loaded ketoprofen-bearing system is non-cytotoxic and efficiently reduces lipopolysaccharide-induced nitric oxide release. The RT-qPCR analysis shows that the ketoprofen nanoparticles were able to reduce to almost basal levels the expression of tested pro-inflammatory markers and increase the gene expression of anti-inflammatory cytokines under inflammatory conditions. However, the synergistic inhibition of Il12b observed in nanoparticles that combine dexamethasone and naproxen was not observed in nanoparticles that combine dexamethasone and ketoprofen, suggesting that the synergistic trans-repression of Il12b observed in the first case was not mediated by cyclooxygenase-dependent pathways.
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spelling pubmed-74650012020-09-04 Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone Espinosa-Cano, Eva Aguilar, Maria Rosa Portilla, Yadileiny Barber, Domingo F. San Román, Julio Pharmaceutics Article Polymeric nanoparticles that combine dexamethasone and naproxen reduce inflammation and synergistically inhibit Interleukin-12b (Il12b) transcription in macrophages. This effect can be the result of a cyclooxygenase-dependent or a cyclooxygenase-independent mechanism. The aim of this work is to obtain potent anti-inflammatory polymeric nanoparticles by the combination of dexamethasone and ketoprofen, one of the most efficient cyclooxygenase-inhibitors among non-steroidal anti-inflammatory drugs, with appropriate hydrodynamic properties to facilitate accumulation and co-release of drugs in inflamed tissue. Nanoparticles are spherical with hydrodynamic diameter (117 ± 1 nm), polydispersity (0.139 ± 0.004), and surface charge (+30 ± 1 mV), which confer them with high stability and facilitate both macrophage uptake and internalization pathways to favor their retention at the inflamed areas and lysosomal degradation and drug release, respectively. In vitro biological studies concluded that the dexamethasone-loaded ketoprofen-bearing system is non-cytotoxic and efficiently reduces lipopolysaccharide-induced nitric oxide release. The RT-qPCR analysis shows that the ketoprofen nanoparticles were able to reduce to almost basal levels the expression of tested pro-inflammatory markers and increase the gene expression of anti-inflammatory cytokines under inflammatory conditions. However, the synergistic inhibition of Il12b observed in nanoparticles that combine dexamethasone and naproxen was not observed in nanoparticles that combine dexamethasone and ketoprofen, suggesting that the synergistic trans-repression of Il12b observed in the first case was not mediated by cyclooxygenase-dependent pathways. MDPI 2020-07-31 /pmc/articles/PMC7465001/ /pubmed/32751993 http://dx.doi.org/10.3390/pharmaceutics12080723 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Espinosa-Cano, Eva
Aguilar, Maria Rosa
Portilla, Yadileiny
Barber, Domingo F.
San Román, Julio
Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title_full Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title_fullStr Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title_full_unstemmed Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title_short Anti-Inflammatory Polymeric Nanoparticles Based on Ketoprofen and Dexamethasone
title_sort anti-inflammatory polymeric nanoparticles based on ketoprofen and dexamethasone
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7465001/
https://www.ncbi.nlm.nih.gov/pubmed/32751993
http://dx.doi.org/10.3390/pharmaceutics12080723
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