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A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density

This study aimed at discriminating with sensitivity the toxicological effects of carbon dots (CDs) with various zeta potential (ζ) and charge density (Q(ek)) in different cellular models of the human respiratory tract. One anionic and three cationic CDs were synthetized as follows: CD-COOH (ζ = −43....

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Autores principales: Arezki, Yasmin, Cornacchia, Juliette, Rapp, Mickaël, Lebeau, Luc, Pons, Françoise, Ronzani, Carole
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470030/
https://www.ncbi.nlm.nih.gov/pubmed/34564361
http://dx.doi.org/10.3390/toxics9090210
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author Arezki, Yasmin
Cornacchia, Juliette
Rapp, Mickaël
Lebeau, Luc
Pons, Françoise
Ronzani, Carole
author_facet Arezki, Yasmin
Cornacchia, Juliette
Rapp, Mickaël
Lebeau, Luc
Pons, Françoise
Ronzani, Carole
author_sort Arezki, Yasmin
collection PubMed
description This study aimed at discriminating with sensitivity the toxicological effects of carbon dots (CDs) with various zeta potential (ζ) and charge density (Q(ek)) in different cellular models of the human respiratory tract. One anionic and three cationic CDs were synthetized as follows: CD-COOH (ζ = −43.3 mV); CD-PEI600 (Q(ek) = 4.70 µmol/mg; ζ = +31.8 mV); CD-PEHA (Q(ek) = 3.30 µmol/mg; ζ = +29.2 mV) and CD-DMEDA (Q(ek) = 0.01 µmol/mg; ζ = +11.1 mV). Epithelial cells (A549) and macrophages (THP-1) were seeded alone or as co-cultures with different A549:THP-1 ratios. The obtained models were characterized, and multiple biological responses evoked by CDs were assessed in the mono-cultures and the best co-culture model. With 14% macrophages, the 2:1 ratio co-culture best mimicked the in vivo conditions and responded to lipopolysaccharides. The anionic CD did not induce any effect in the mono-cultures nor in the co-culture. Among the cationic CDs, the one with the highest charge density (CD-PEI600) induced the most pronounced responses whatever the culture model. The cationic CDs of low charge density (CD-PEHA and CD-DMEDA) evoked similar responses in the mono-cultures, whereas in the co-culture, the three cationic CDs ranked according to their charge density (CD-PEI600 > CD-PEHA > CD-DMEDA), when taking into account their inflammatory effect. Thus, the co-culture system developed in this study appears to be a sensitive model for finely discriminating the toxicological profile of cationic nanoparticles differing by the density of their surface charges.
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spelling pubmed-84700302021-09-27 A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density Arezki, Yasmin Cornacchia, Juliette Rapp, Mickaël Lebeau, Luc Pons, Françoise Ronzani, Carole Toxics Article This study aimed at discriminating with sensitivity the toxicological effects of carbon dots (CDs) with various zeta potential (ζ) and charge density (Q(ek)) in different cellular models of the human respiratory tract. One anionic and three cationic CDs were synthetized as follows: CD-COOH (ζ = −43.3 mV); CD-PEI600 (Q(ek) = 4.70 µmol/mg; ζ = +31.8 mV); CD-PEHA (Q(ek) = 3.30 µmol/mg; ζ = +29.2 mV) and CD-DMEDA (Q(ek) = 0.01 µmol/mg; ζ = +11.1 mV). Epithelial cells (A549) and macrophages (THP-1) were seeded alone or as co-cultures with different A549:THP-1 ratios. The obtained models were characterized, and multiple biological responses evoked by CDs were assessed in the mono-cultures and the best co-culture model. With 14% macrophages, the 2:1 ratio co-culture best mimicked the in vivo conditions and responded to lipopolysaccharides. The anionic CD did not induce any effect in the mono-cultures nor in the co-culture. Among the cationic CDs, the one with the highest charge density (CD-PEI600) induced the most pronounced responses whatever the culture model. The cationic CDs of low charge density (CD-PEHA and CD-DMEDA) evoked similar responses in the mono-cultures, whereas in the co-culture, the three cationic CDs ranked according to their charge density (CD-PEI600 > CD-PEHA > CD-DMEDA), when taking into account their inflammatory effect. Thus, the co-culture system developed in this study appears to be a sensitive model for finely discriminating the toxicological profile of cationic nanoparticles differing by the density of their surface charges. MDPI 2021-08-31 /pmc/articles/PMC8470030/ /pubmed/34564361 http://dx.doi.org/10.3390/toxics9090210 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Arezki, Yasmin
Cornacchia, Juliette
Rapp, Mickaël
Lebeau, Luc
Pons, Françoise
Ronzani, Carole
A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title_full A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title_fullStr A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title_full_unstemmed A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title_short A Co-Culture Model of the Human Respiratory Tract to Discriminate the Toxicological Profile of Cationic Nanoparticles According to Their Surface Charge Density
title_sort co-culture model of the human respiratory tract to discriminate the toxicological profile of cationic nanoparticles according to their surface charge density
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8470030/
https://www.ncbi.nlm.nih.gov/pubmed/34564361
http://dx.doi.org/10.3390/toxics9090210
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