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Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media

Toxicological effects of metal-oxide-engineered nanomaterials (ENMs) are closely related to their distinct physical–chemical properties, especially solubility and surface reactivity. The present study used five metal-oxide ENMs (ZnO, MnO(2), CeO(2), Al(2)O(3), and Fe(2)O(3)) to investigate how vario...

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Autores principales: Avramescu, Mary-Luyza, Chénier, Marc, Beauchemin, Suzanne, Rasmussen, Pat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9824292/
https://www.ncbi.nlm.nih.gov/pubmed/36615936
http://dx.doi.org/10.3390/nano13010026
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author Avramescu, Mary-Luyza
Chénier, Marc
Beauchemin, Suzanne
Rasmussen, Pat
author_facet Avramescu, Mary-Luyza
Chénier, Marc
Beauchemin, Suzanne
Rasmussen, Pat
author_sort Avramescu, Mary-Luyza
collection PubMed
description Toxicological effects of metal-oxide-engineered nanomaterials (ENMs) are closely related to their distinct physical–chemical properties, especially solubility and surface reactivity. The present study used five metal-oxide ENMs (ZnO, MnO(2), CeO(2), Al(2)O(3), and Fe(2)O(3)) to investigate how various biologically relevant media influenced dissolution behaviour. In both water and cell culture medium (DMEM), the metal-oxide ENMs were more soluble than their bulk analogues, with the exception that bulk-MnO(2) was slightly more soluble in water than nano-MnO(2) and Fe(2)O(3) displayed negligible solubility across all tested media (regardless of particle size). Lowering the initial concentration (10 mg/L vs. 100 mg/L) significantly increased the relative solubility (% of total concentration) of nano-ZnO and nano-MnO(2) in both water and DMEM. Nano-Al(2)O(3) and nano-CeO(2) were impacted differently by the two media (significantly higher % solubility at 10 mg/L in DMEM vs. water). Further evaluation of simulated interstitial lung fluid (Gamble’s solution) and phagolysosomal simulant fluid (PSF) showed that the selection of aqueous media significantly affected agglomeration and dissolution behaviour. The solubility of all investigated ENMs was significantly higher in DMEM (pH = 7.4) compared to Gamble’s (pH 7.4), attributable to the presence of amino acids and proteins in DMEM. All ENMs showed low solubility in Gamble’s (pH = 7.4) compared with PSF (pH = 4.5), attributable to the difference in pH. These observations are relevant to nanotoxicology as increased nanomaterial solubility also affects toxicity. The results demonstrated that, for the purpose of grouping and read-across efforts, the dissolution behaviour of metal-oxide ENMs should be evaluated using aqueous media representative of the exposure pathway being considered.
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spelling pubmed-98242922023-01-08 Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media Avramescu, Mary-Luyza Chénier, Marc Beauchemin, Suzanne Rasmussen, Pat Nanomaterials (Basel) Article Toxicological effects of metal-oxide-engineered nanomaterials (ENMs) are closely related to their distinct physical–chemical properties, especially solubility and surface reactivity. The present study used five metal-oxide ENMs (ZnO, MnO(2), CeO(2), Al(2)O(3), and Fe(2)O(3)) to investigate how various biologically relevant media influenced dissolution behaviour. In both water and cell culture medium (DMEM), the metal-oxide ENMs were more soluble than their bulk analogues, with the exception that bulk-MnO(2) was slightly more soluble in water than nano-MnO(2) and Fe(2)O(3) displayed negligible solubility across all tested media (regardless of particle size). Lowering the initial concentration (10 mg/L vs. 100 mg/L) significantly increased the relative solubility (% of total concentration) of nano-ZnO and nano-MnO(2) in both water and DMEM. Nano-Al(2)O(3) and nano-CeO(2) were impacted differently by the two media (significantly higher % solubility at 10 mg/L in DMEM vs. water). Further evaluation of simulated interstitial lung fluid (Gamble’s solution) and phagolysosomal simulant fluid (PSF) showed that the selection of aqueous media significantly affected agglomeration and dissolution behaviour. The solubility of all investigated ENMs was significantly higher in DMEM (pH = 7.4) compared to Gamble’s (pH 7.4), attributable to the presence of amino acids and proteins in DMEM. All ENMs showed low solubility in Gamble’s (pH = 7.4) compared with PSF (pH = 4.5), attributable to the difference in pH. These observations are relevant to nanotoxicology as increased nanomaterial solubility also affects toxicity. The results demonstrated that, for the purpose of grouping and read-across efforts, the dissolution behaviour of metal-oxide ENMs should be evaluated using aqueous media representative of the exposure pathway being considered. MDPI 2022-12-21 /pmc/articles/PMC9824292/ /pubmed/36615936 http://dx.doi.org/10.3390/nano13010026 Text en © 2022 https://creativecommons.org/licenses/by/4.0/His Majesty the King in Right of Canada as represented by the Minister of Health. 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
Avramescu, Mary-Luyza
Chénier, Marc
Beauchemin, Suzanne
Rasmussen, Pat
Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title_full Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title_fullStr Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title_full_unstemmed Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title_short Dissolution Behaviour of Metal-Oxide Nanomaterials in Various Biological Media
title_sort dissolution behaviour of metal-oxide nanomaterials in various biological media
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9824292/
https://www.ncbi.nlm.nih.gov/pubmed/36615936
http://dx.doi.org/10.3390/nano13010026
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