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Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications

Silver nanoparticles (AgNPs) are widely used as antibacterial agents and anticancer drugs, but often their low stability limits their mass production and broad applications. The use of niosomes as a carrier to protect and envelop AgNPs gives a new perspective to solve these problems. In this study,...

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Autores principales: Rinaldi, Federica, del Favero, Elena, Moeller, Johannes, Hanieh, Patrizia Nadia, Passeri, Daniele, Rossi, Marco, Angeloni, Livia, Venditti, Iole, Marianecci, Carlotta, Carafa, Maria, Fratoddi, Ilaria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6724070/
https://www.ncbi.nlm.nih.gov/pubmed/31426465
http://dx.doi.org/10.3390/nano9081177
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author Rinaldi, Federica
del Favero, Elena
Moeller, Johannes
Hanieh, Patrizia Nadia
Passeri, Daniele
Rossi, Marco
Angeloni, Livia
Venditti, Iole
Marianecci, Carlotta
Carafa, Maria
Fratoddi, Ilaria
author_facet Rinaldi, Federica
del Favero, Elena
Moeller, Johannes
Hanieh, Patrizia Nadia
Passeri, Daniele
Rossi, Marco
Angeloni, Livia
Venditti, Iole
Marianecci, Carlotta
Carafa, Maria
Fratoddi, Ilaria
author_sort Rinaldi, Federica
collection PubMed
description Silver nanoparticles (AgNPs) are widely used as antibacterial agents and anticancer drugs, but often their low stability limits their mass production and broad applications. The use of niosomes as a carrier to protect and envelop AgNPs gives a new perspective to solve these problems. In this study, AgNPs were functionalized with sodium 3-mercapto-1-propanesulfonate (3MPS) to induce hydrophilic behavior, improving loading in Tween 20 and Span 20 niosomes (NioTw20 and NioSp20, respectively). Entrapment efficiency was evaluated by UV analyses and is around 1–4%. Dimensions were investigated by means of dynamic light scattering (DLS) (<2R(H)> = 140 ± 4 nm and <2R(H)> = 251 ± 1 nm respectively for NioTw20 + AgNPs and NioSp20 + AgNPs) and were compared with those by atomic force microscopy (AFM) and small angle X ray scattering (SAXS) analyses. Stability was assessed in water up to 90 days, and both in bovine serum and human serum for up to 8 h. In order to characterize the local structure of niosomes, SAXS measurements have been performed on Tween 20 and Span 20 empty niosomes and loaded with AgNPs. The release profiles of hydrophilic probe calcein and lipophilic probe Nile Red were performed in HEPES buffer and in human serum. All these features contribute to conclude that the two systems, NioTw20 + AgNPs and NioSp20 + AgNPs, are suitable and promising in the field of biological applications.
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spelling pubmed-67240702019-09-10 Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications Rinaldi, Federica del Favero, Elena Moeller, Johannes Hanieh, Patrizia Nadia Passeri, Daniele Rossi, Marco Angeloni, Livia Venditti, Iole Marianecci, Carlotta Carafa, Maria Fratoddi, Ilaria Nanomaterials (Basel) Article Silver nanoparticles (AgNPs) are widely used as antibacterial agents and anticancer drugs, but often their low stability limits their mass production and broad applications. The use of niosomes as a carrier to protect and envelop AgNPs gives a new perspective to solve these problems. In this study, AgNPs were functionalized with sodium 3-mercapto-1-propanesulfonate (3MPS) to induce hydrophilic behavior, improving loading in Tween 20 and Span 20 niosomes (NioTw20 and NioSp20, respectively). Entrapment efficiency was evaluated by UV analyses and is around 1–4%. Dimensions were investigated by means of dynamic light scattering (DLS) (<2R(H)> = 140 ± 4 nm and <2R(H)> = 251 ± 1 nm respectively for NioTw20 + AgNPs and NioSp20 + AgNPs) and were compared with those by atomic force microscopy (AFM) and small angle X ray scattering (SAXS) analyses. Stability was assessed in water up to 90 days, and both in bovine serum and human serum for up to 8 h. In order to characterize the local structure of niosomes, SAXS measurements have been performed on Tween 20 and Span 20 empty niosomes and loaded with AgNPs. The release profiles of hydrophilic probe calcein and lipophilic probe Nile Red were performed in HEPES buffer and in human serum. All these features contribute to conclude that the two systems, NioTw20 + AgNPs and NioSp20 + AgNPs, are suitable and promising in the field of biological applications. MDPI 2019-08-17 /pmc/articles/PMC6724070/ /pubmed/31426465 http://dx.doi.org/10.3390/nano9081177 Text en © 2019 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
Rinaldi, Federica
del Favero, Elena
Moeller, Johannes
Hanieh, Patrizia Nadia
Passeri, Daniele
Rossi, Marco
Angeloni, Livia
Venditti, Iole
Marianecci, Carlotta
Carafa, Maria
Fratoddi, Ilaria
Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title_full Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title_fullStr Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title_full_unstemmed Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title_short Hydrophilic Silver Nanoparticles Loaded into Niosomes: Physical–Chemical Characterization in View of Biological Applications
title_sort hydrophilic silver nanoparticles loaded into niosomes: physical–chemical characterization in view of biological applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6724070/
https://www.ncbi.nlm.nih.gov/pubmed/31426465
http://dx.doi.org/10.3390/nano9081177
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