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Acute Aquatic Toxicity to Zebrafish and Bioaccumulation in Marine Mussels of Antimony Tin Oxide Nanoparticles

Nanomaterials 2023 8 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Ivone Pinheiro, Monica Quarato, Antonio Moreda–Piñeiro, Ana Vieira, V. Serin, David Neumeyer, Nicolas Ratel‐Ramond, S. Joulié, A. Claverie, Miguel Spuch‐Calvar, Miguel A. Correa‐Duarte, Alexandre Campos, José Martins, Pilar Bermejo–Barrera, Marisa P. Sárria, Laura Rodríguez‐Lorenzo, Begoña Espiña

Summary

Researchers studied the toxicity and bioaccumulation of antimony tin oxide nanoparticles in zebrafish and marine mussels, finding low acute toxicity in zebrafish but measurable bioaccumulation in mussel tissues, highlighting potential risks in aquatic food chains.

Antimony tin oxide (Sb2O5/SnO2) is effective in the absorption of infrared radiation for applications, such as skylights. As a nanoparticle (NP), it can be incorporated into films or sheets providing infrared radiation attenuation while allowing for a transparent final product. The acute toxicity exerted by commercial Sb2O5/SnO2 (ATO) NPs was studied in adults and embryos of zebrafish (Danio rerio). Our results suggest that these NPs do not induce an acute toxicity in zebrafish, either adults or embryos. However, some sub-lethal parameters were altered: heart rate and spontaneous movements. Finally, the possible bioaccumulation of these NPs in the aquacultured marine mussel Mytilus sp. was studied. A quantitative analysis was performed using single particle inductively coupled plasma mass spectrometry (sp-ICP-MS). The results indicated that, despite being scarce (2.31 × 106 ± 9.05 × 105 NPs/g), there is some accumulation of the ATO NPs in the mussel. In conclusion, commercial ATO NPs seem to be quite innocuous to aquatic organisms; however, the fact that some of the developmental parameters in zebrafish embryos are altered should be considered for further investigation. More in-depth analysis of these NPs transformations in the digestive tract of humans is needed to assess whether their accumulation in mussels presents an actual risk to humans.

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