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Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity

PURPOSE: The biomedical applications of silver nanoparticles (AgNPs) are heavily investigated due to their cytotoxic and antimicrobial properties. However, the scientific literature is lacking in data on the aggregation behavior of nanoparticles, especially regarding its impact on biological activit...

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Autores principales: Bélteky, Péter, Rónavári, Andrea, Igaz, Nóra, Szerencsés, Bettina, Tóth, Ildikó Y, Pfeiffer, Ilona, Kiricsi, Mónika, Kónya, Zoltán
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6342213/
https://www.ncbi.nlm.nih.gov/pubmed/30705586
http://dx.doi.org/10.2147/IJN.S185965
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author Bélteky, Péter
Rónavári, Andrea
Igaz, Nóra
Szerencsés, Bettina
Tóth, Ildikó Y
Pfeiffer, Ilona
Kiricsi, Mónika
Kónya, Zoltán
author_facet Bélteky, Péter
Rónavári, Andrea
Igaz, Nóra
Szerencsés, Bettina
Tóth, Ildikó Y
Pfeiffer, Ilona
Kiricsi, Mónika
Kónya, Zoltán
author_sort Bélteky, Péter
collection PubMed
description PURPOSE: The biomedical applications of silver nanoparticles (AgNPs) are heavily investigated due to their cytotoxic and antimicrobial properties. However, the scientific literature is lacking in data on the aggregation behavior of nanoparticles, especially regarding its impact on biological activity. Therefore, to assess the potential of AgNPs in therapeutic applications, two different AgNP samples were compared under biorelevant conditions. METHODS: Citrate-capped nanosilver was produced by classical chemical reduction and stabilization with sodium citrate (AgNP@C), while green tea extract was used to produce silver nanoparticles in a green synthesis approach (AgNP@GTs). Particle size, morphology, and crystallinity were characterized using transmission electron microscopy. To observe the effects of the most important biorelevant conditions on AgNP colloidal stability, aggregation grade measurements were carried out using UV-Vis spectroscopy and dynamic light scatterig, while MTT assay and a microdilution method were performed to evaluate the effects of aggregation on cytotoxicity and antimicrobial activity in a time-dependent manner. RESULTS: The aggregation behavior of AgNPs is mostly affected by pH and electrolyte concentration, while the presence of biomolecules can improve particle stability due to the biomolecular corona effect. We demonstrated that high aggregation grade in both AgNP samples attenuated their toxic effect toward living cells. However, AgNP@GT proved less prone to aggregation thus retained a degree of its toxicity. CONCLUSION: To our knowledge, this is the first systematic examination regarding AgNP aggregation behavior with simultaneous measurements of its effect on biological activity. We showed that nanoparticle behavior in complex systems can be estimated by simple compounds like sodium chloride and glutamine. Electrostatic stabilization might not be suitable for biomedical AgNP applications, while green synthesis approaches could offer new frontiers to preserve nanoparticle toxicity by enhancing colloidal stability. The importance of properly selected synthesis methods must be emphasized as they profoundly influence colloidal stability, and therefore biological activity.
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spelling pubmed-63422132019-01-31 Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity Bélteky, Péter Rónavári, Andrea Igaz, Nóra Szerencsés, Bettina Tóth, Ildikó Y Pfeiffer, Ilona Kiricsi, Mónika Kónya, Zoltán Int J Nanomedicine Original Research PURPOSE: The biomedical applications of silver nanoparticles (AgNPs) are heavily investigated due to their cytotoxic and antimicrobial properties. However, the scientific literature is lacking in data on the aggregation behavior of nanoparticles, especially regarding its impact on biological activity. Therefore, to assess the potential of AgNPs in therapeutic applications, two different AgNP samples were compared under biorelevant conditions. METHODS: Citrate-capped nanosilver was produced by classical chemical reduction and stabilization with sodium citrate (AgNP@C), while green tea extract was used to produce silver nanoparticles in a green synthesis approach (AgNP@GTs). Particle size, morphology, and crystallinity were characterized using transmission electron microscopy. To observe the effects of the most important biorelevant conditions on AgNP colloidal stability, aggregation grade measurements were carried out using UV-Vis spectroscopy and dynamic light scatterig, while MTT assay and a microdilution method were performed to evaluate the effects of aggregation on cytotoxicity and antimicrobial activity in a time-dependent manner. RESULTS: The aggregation behavior of AgNPs is mostly affected by pH and electrolyte concentration, while the presence of biomolecules can improve particle stability due to the biomolecular corona effect. We demonstrated that high aggregation grade in both AgNP samples attenuated their toxic effect toward living cells. However, AgNP@GT proved less prone to aggregation thus retained a degree of its toxicity. CONCLUSION: To our knowledge, this is the first systematic examination regarding AgNP aggregation behavior with simultaneous measurements of its effect on biological activity. We showed that nanoparticle behavior in complex systems can be estimated by simple compounds like sodium chloride and glutamine. Electrostatic stabilization might not be suitable for biomedical AgNP applications, while green synthesis approaches could offer new frontiers to preserve nanoparticle toxicity by enhancing colloidal stability. The importance of properly selected synthesis methods must be emphasized as they profoundly influence colloidal stability, and therefore biological activity. Dove Medical Press 2019-01-18 /pmc/articles/PMC6342213/ /pubmed/30705586 http://dx.doi.org/10.2147/IJN.S185965 Text en © 2019 Bélteky et al. This work is published and licensed by Dove Medical Press Limited The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Bélteky, Péter
Rónavári, Andrea
Igaz, Nóra
Szerencsés, Bettina
Tóth, Ildikó Y
Pfeiffer, Ilona
Kiricsi, Mónika
Kónya, Zoltán
Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title_full Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title_fullStr Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title_full_unstemmed Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title_short Silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
title_sort silver nanoparticles: aggregation behavior in biorelevant conditions and its impact on biological activity
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6342213/
https://www.ncbi.nlm.nih.gov/pubmed/30705586
http://dx.doi.org/10.2147/IJN.S185965
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