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Single and combined toxicity of amino-functionalized polystyrene nanoparticles with potassium dichromate and copper sulfate on brine shrimp Artemia franciscana larvae

Environmental Science and Pollution Research 2021 24 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Antônio Júdson Targino Machado, Bianca Mataribu, Catarina Serrão, Leanderson da Silva Silvestre, Davi Felipe Farias, Elisa Bergami, Ilaria Corsi, Luís Fernando Marques‐Santos

Summary

Researchers tested the acute toxicity of amino-functionalized polystyrene nanoplastics on brine shrimp (Artemia franciscana) larvae alone and in combination with heavy metal toxicants, finding that nanoplastics generally enhanced the toxicity of chromium and copper co-exposures, demonstrating that realistic multi-contaminant scenarios pose greater risk to zooplankton than single-chemical assessments suggest.

The increasing use and disposal of plastics has become a persistent problem in the marine environment, calling for studies that refer to realistic scenarios to understand their effects on biota. Particularly, the understanding about the effects of co-exposure with nanoplastic particles and metals on aquatic organisms is still limited. The present work aimed to investigate the acute toxicity of amino-functionalized polystyrene nanoparticles (PS-NH; 50 nm) as proxy for nanoplastics on brine shrimp Artemia franciscana larvae under different culture conditions and at different stages of development, as well as the combined effect with two reference toxicants - potassium dichromate (KCrO) and copper sulfate (CuSO). Nauplii (instar II or III larval stages) were exposed to different concentrations of PS-NH (0.005 to 5 μg mL) for up to 48 h, with or without agitation in order to mimic a more realistic environmental scenario. Larval mobility and PS-NH accumulation were monitored under microscopy. PS-NH alone showed toxicity only at the highest concentration tested (5 μg mL) regardless the incubation method used (61.2 + 3.1% and 65.0 + 4.5% with and without agitation, respectively). Moreover, instar III stage was the most sensitive to PS-NH exposure (38.2% immobility in 24 h of exposure; 5 μg mL). Evidence of PS-NH retention in the gastrointestinal tract in a concentration- and time-dependent manner was also obtained. Mixtures of PS-NH (0.005 and 5 μg mL) with different concentrations of KCrO increased the immobilization rate of the larvae after 48 h of exposure, when compared to the KCrO alone. Similar results were observed for CuSO in the co-exposure conditions at different concentrations. However, exposing nauplii to a mixture of PS-NH (0.005 μg mL) and CuSO decreased immobilization rate, in comparison to the group exposed to CuSO alone. The present work highlights the potential risk posed by nanoplastics to zooplanktonic species through their interaction with other toxicants.

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