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Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish

The increasing engineering of biomedical devices and the design of drug-delivery platforms enriched by graphene-based components demand careful investigations of the impact of graphene-related materials (GRMs) on the nervous system. In addition, the enhanced diffusion of GRM-based products and techn...

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Autores principales: Di Mauro, Giuseppe, Rauti, Rossana, Casani, Raffaele, Chimowa, George, Galibert, Anne Marie, Flahaut, Emmanuel, Cellot, Giada, Ballerini, Laura
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468975/
https://www.ncbi.nlm.nih.gov/pubmed/34578477
http://dx.doi.org/10.3390/nano11092161
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author Di Mauro, Giuseppe
Rauti, Rossana
Casani, Raffaele
Chimowa, George
Galibert, Anne Marie
Flahaut, Emmanuel
Cellot, Giada
Ballerini, Laura
author_facet Di Mauro, Giuseppe
Rauti, Rossana
Casani, Raffaele
Chimowa, George
Galibert, Anne Marie
Flahaut, Emmanuel
Cellot, Giada
Ballerini, Laura
author_sort Di Mauro, Giuseppe
collection PubMed
description The increasing engineering of biomedical devices and the design of drug-delivery platforms enriched by graphene-based components demand careful investigations of the impact of graphene-related materials (GRMs) on the nervous system. In addition, the enhanced diffusion of GRM-based products and technologies that might favor the dispersion in the environment of GRMs nanoparticles urgently requires the potential neurotoxicity of these compounds to be addressed. One of the challenges in providing definite evidence supporting the harmful or safe use of GRMs is addressing the variety of this family of materials, with GRMs differing for size and chemistry. Such a diversity impairs reaching a unique and predictive picture of the effects of GRMs on the nervous system. Here, by exploiting the thermal reduction of graphene oxide nanoflakes (GO) to generate materials with different oxygen/carbon ratios, we used a high-throughput analysis of early-stage zebrafish locomotor behavior to investigate if modifications of a specific GRM chemical property influenced how these nanomaterials affect vertebrate sensory-motor neurophysiology—exposing zebrafish to GO downregulated their swimming performance. Conversely, reduced GO (rGO) treatments boosted locomotor activity. We concluded that the tuning of single GRM chemical properties is sufficient to produce differential effects on nervous system physiology, likely interfering with different signaling pathways.
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spelling pubmed-84689752021-09-27 Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish Di Mauro, Giuseppe Rauti, Rossana Casani, Raffaele Chimowa, George Galibert, Anne Marie Flahaut, Emmanuel Cellot, Giada Ballerini, Laura Nanomaterials (Basel) Article The increasing engineering of biomedical devices and the design of drug-delivery platforms enriched by graphene-based components demand careful investigations of the impact of graphene-related materials (GRMs) on the nervous system. In addition, the enhanced diffusion of GRM-based products and technologies that might favor the dispersion in the environment of GRMs nanoparticles urgently requires the potential neurotoxicity of these compounds to be addressed. One of the challenges in providing definite evidence supporting the harmful or safe use of GRMs is addressing the variety of this family of materials, with GRMs differing for size and chemistry. Such a diversity impairs reaching a unique and predictive picture of the effects of GRMs on the nervous system. Here, by exploiting the thermal reduction of graphene oxide nanoflakes (GO) to generate materials with different oxygen/carbon ratios, we used a high-throughput analysis of early-stage zebrafish locomotor behavior to investigate if modifications of a specific GRM chemical property influenced how these nanomaterials affect vertebrate sensory-motor neurophysiology—exposing zebrafish to GO downregulated their swimming performance. Conversely, reduced GO (rGO) treatments boosted locomotor activity. We concluded that the tuning of single GRM chemical properties is sufficient to produce differential effects on nervous system physiology, likely interfering with different signaling pathways. MDPI 2021-08-24 /pmc/articles/PMC8468975/ /pubmed/34578477 http://dx.doi.org/10.3390/nano11092161 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
Di Mauro, Giuseppe
Rauti, Rossana
Casani, Raffaele
Chimowa, George
Galibert, Anne Marie
Flahaut, Emmanuel
Cellot, Giada
Ballerini, Laura
Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title_full Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title_fullStr Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title_full_unstemmed Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title_short Tuning the Reduction of Graphene Oxide Nanoflakes Differently Affects Neuronal Networks in the Zebrafish
title_sort tuning the reduction of graphene oxide nanoflakes differently affects neuronal networks in the zebrafish
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468975/
https://www.ncbi.nlm.nih.gov/pubmed/34578477
http://dx.doi.org/10.3390/nano11092161
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