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The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties

Complex engineered nanomaterials (CENs) are a rapidly developing class of structurally and compositionally complex materials that are expected to dominate the next generation of functional nanomaterials. The development of methods enabling rapid assessment of the toxicity risk associated with this t...

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Detalles Bibliográficos
Autores principales: Mahoney, Sharlee, Najera, Michelle, Bai, Qing, Burton, Edward A., Veser, Götz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4816503/
https://www.ncbi.nlm.nih.gov/pubmed/27031643
http://dx.doi.org/10.1371/journal.pone.0152010
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author Mahoney, Sharlee
Najera, Michelle
Bai, Qing
Burton, Edward A.
Veser, Götz
author_facet Mahoney, Sharlee
Najera, Michelle
Bai, Qing
Burton, Edward A.
Veser, Götz
author_sort Mahoney, Sharlee
collection PubMed
description Complex engineered nanomaterials (CENs) are a rapidly developing class of structurally and compositionally complex materials that are expected to dominate the next generation of functional nanomaterials. The development of methods enabling rapid assessment of the toxicity risk associated with this type of nanomaterial is therefore critically important. We evaluated the toxicity of three differently structured nickel-silica nanomaterials as prototypical CENs: simple, surface-deposited Ni-SiO(2) and hollow and non-hollow core-shell Ni@SiO(2) materials (i.e., ~1–2 nm Ni nanoparticles embedded into porous silica shells with and without a central cavity, respectively). Zebrafish embryos were exposed to these CENs, and morphological (survival and malformations) and physiological (larval motility) endpoints were coupled with thorough characterization of physiochemical characteristics (including agglomeration, settling and nickel ion dissolution) to determine how toxicity differed between these CENs and equivalent quantities of Ni(2+) salt (based on total Ni). Exposure to Ni(2+) ions strongly compromised zebrafish larva viability, and surviving larvae showed severe malformations. In contrast, exposure to the equivalent amount of Ni CEN did not result in these abnormalities. Interestingly, exposure to Ni-SiO(2) and hollow Ni@SiO(2) provoked abnormalities of zebrafish larval motor function, indicating developmental toxicity, while non-hollow Ni@SiO(2) showed no toxicity. Correlating these observations with physicochemical characterization of the CENs suggests that the toxicity of the Ni-SiO(2) and hollow Ni@SiO(2) material may result partly from an increased effective exposure at the bottom of the well due to rapid settling. Overall, our data suggest that embedding nickel NPs in a porous silica matrix may be a straightforward way to mitigate their toxicity without compromising their functional properties. At the same time, our results also indicate that it is critical to consider modification of the effective exposure when comparing different nanomaterial configurations, because effective exposure might influence NP toxicity more than specific “nano-chemistry” effects.
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spelling pubmed-48165032016-04-14 The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties Mahoney, Sharlee Najera, Michelle Bai, Qing Burton, Edward A. Veser, Götz PLoS One Research Article Complex engineered nanomaterials (CENs) are a rapidly developing class of structurally and compositionally complex materials that are expected to dominate the next generation of functional nanomaterials. The development of methods enabling rapid assessment of the toxicity risk associated with this type of nanomaterial is therefore critically important. We evaluated the toxicity of three differently structured nickel-silica nanomaterials as prototypical CENs: simple, surface-deposited Ni-SiO(2) and hollow and non-hollow core-shell Ni@SiO(2) materials (i.e., ~1–2 nm Ni nanoparticles embedded into porous silica shells with and without a central cavity, respectively). Zebrafish embryos were exposed to these CENs, and morphological (survival and malformations) and physiological (larval motility) endpoints were coupled with thorough characterization of physiochemical characteristics (including agglomeration, settling and nickel ion dissolution) to determine how toxicity differed between these CENs and equivalent quantities of Ni(2+) salt (based on total Ni). Exposure to Ni(2+) ions strongly compromised zebrafish larva viability, and surviving larvae showed severe malformations. In contrast, exposure to the equivalent amount of Ni CEN did not result in these abnormalities. Interestingly, exposure to Ni-SiO(2) and hollow Ni@SiO(2) provoked abnormalities of zebrafish larval motor function, indicating developmental toxicity, while non-hollow Ni@SiO(2) showed no toxicity. Correlating these observations with physicochemical characterization of the CENs suggests that the toxicity of the Ni-SiO(2) and hollow Ni@SiO(2) material may result partly from an increased effective exposure at the bottom of the well due to rapid settling. Overall, our data suggest that embedding nickel NPs in a porous silica matrix may be a straightforward way to mitigate their toxicity without compromising their functional properties. At the same time, our results also indicate that it is critical to consider modification of the effective exposure when comparing different nanomaterial configurations, because effective exposure might influence NP toxicity more than specific “nano-chemistry” effects. Public Library of Science 2016-03-31 /pmc/articles/PMC4816503/ /pubmed/27031643 http://dx.doi.org/10.1371/journal.pone.0152010 Text en © 2016 Mahoney et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Mahoney, Sharlee
Najera, Michelle
Bai, Qing
Burton, Edward A.
Veser, Götz
The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title_full The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title_fullStr The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title_full_unstemmed The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title_short The Developmental Toxicity of Complex Silica-Embedded Nickel Nanoparticles Is Determined by Their Physicochemical Properties
title_sort developmental toxicity of complex silica-embedded nickel nanoparticles is determined by their physicochemical properties
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4816503/
https://www.ncbi.nlm.nih.gov/pubmed/27031643
http://dx.doi.org/10.1371/journal.pone.0152010
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