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Single and combined toxicity of polystyrene nanoplastics and copper on Platymonas helgolandica var. tsingtaoensis: Perspectives from growth inhibition, chlorophyll content and oxidative stress

The Science of The Total Environment 2022 60 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Feifei Liu, Feifei Liu, Feifei Liu, Zhi-yin Gao, Suchun Wang, Feifei Liu, Feifei Liu, Feifei Liu, Zhi-yin Gao, Suchun Wang, Zhi-yin Gao, Feifei Liu, Feifei Liu, Feifei Liu, Yuxue Zhang Feifei Liu, Yuxue Zhang Zhi-yin Gao, Zhi-yin Gao, Zhi-yin Gao, Suchun Wang, Suchun Wang, Suchun Wang, Suchun Wang, Feifei Liu, Feifei Liu, Yuxue Zhang Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Feifei Liu, Zhi-yin Gao, Feifei Liu, Zhi-yin Gao, Feifei Liu, Feifei Liu, Feifei Liu, Yuxue Zhang

Summary

Researchers investigated the single and combined toxicity of polystyrene nanoplastics and copper on the marine microalga Platymonas helgolandica. The study found that copper alone inhibited growth in a dose-dependent manner, while nanoplastics modified copper's bioavailability and altered the combined toxic response. The results suggest that the interaction between nanoplastics and heavy metals can produce complex toxicity patterns that differ from individual exposures.

Polymers

The combined toxic effects of nanoplastics and heavy metals on aquatic organisms have attracted widespread attention; however, the results are inconsistent and the mechanisms remain unclear. In this study, the single and combined toxicity effects of Cu and two types of polystyrene nanoplastics (PS-NPs; 50 nm PS and 55 nm PS-COOH) on Platymonas helgolandica var. tsingtaoensis were investigated, including growth inhibition, chlorophyll content, and oxidative stress. An adverse dose-response relationship on growth inhibition was found in the Cu treatment groups, which was related to the decrease in chlorophyll content and damage to cell membranes. The growth inhibitory effect of PS-NPs on microalgae increased with exposure time and concentration, and no significant difference was found in the two types of PS-NPs because of the negligible contribution of functional groups. A more significant increase in chlorophyll content was found in PS treatments than in PS-COOH treatments at 96 h because of the microscale aggregates formed by PS. Higher concentrations (≥ 50 mg/L) of PS-NPs caused membrane lipid peroxidation, which might be responsible for growth inhibition. In the combined exposure experiments, a synergistic effect on the growth inhibition rate was obtained using the independent action model and Abbott model. Combined exposure triggered more severe oxidative damage to the microalgae. Adsorption experiment results showed that there was no adsorption between PS-NPs and Cu, while the interaction of Cu and algal cells could be promoted due to the presence of the PS-NPs, which explained the increasing combined toxicity. This study could improve our understanding of the combined toxicity of nanoplastics and heavy metals and could provide a new explanation for the mechanism of combined toxicity.

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