4.7 Article

Modulation mechanism of phytotoxicity on Ipomoea aquatica Forssk. by surface coating-modified copper oxide nanoparticles and its health risk assessment

期刊

ENVIRONMENTAL POLLUTION
卷 314, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2022.120288

关键词

CuO NPs; Nanotoxicology; Translocation; Vascular system; Antioxidant defense; Risk assessment

资金

  1. National Natural Science Foundation of China [21876044]
  2. Priority Academic Program Development of Jiangsu Higher Education Institutions of China

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This study evaluated the influence of surface coatings on the uptake of nano-fertilizers by crops, their phytotoxicity, and the health risk to Chinese adults. It was found that the coatings played a significant role in the migration efficiency of nanoparticles and their phytotoxicity. Additionally, the study highlighted potential health risks associated with the consumption of crops fertilized with CuO NPs.
To evaluate the influence of surface coatings on nano-fertilizers uptake and their phytotoxicity to crops and its health risk to Chinese adults, trisodium citrate (TC) and polyethylene glycol (PEG) coatings were prepared on the surface of copper oxide nanoparticles (CuO NPs), respectively, with 100 and 500 mg/L of bare CuO NPs, TC-CuO NPs, and PEG-CuO NPs were exposed to soil-grown Ipomoea aquatica Forssk. Combined bio-transmission electron microscopy and micro-CT observed cellular migration of coated CuO NPs in symplastic and apoplastic pathways, as well as nanoparticles transported through vascular tissues to the above-ground parts. Since TC-CuO NPs had less inhibition on vascular phylogeny of I. aquatica roots which was determined by RT-qPCR, their migration in plants was more efficient, thus exhibiting greater phytotoxicity to shoots. Meanwhile, coatings significantly reduced the phytotoxicity of CuO NPs by stimulating plant antioxidant defense. The risk of CuO nano-fertilizers on human dietary safety was evaluated, the HQ > 1 in the 500 mg/L CuO NPs treatment indicated a potential health risk to Chinese adults, which was reduced by the coatings. This work explored for the first time the mechanism of coating effects on nanoparticles migration efficiency and phytotoxicity at the molecular level and demonstrated that the migration of nanoparticles between tissues could have an impact on phytotoxicity. It implied that coating can be tailored to target nanoparticles to specific regions of the plant. In addition, this study highlights the potential health risks associated with the consumption of I. aquatica fertilized with CuO NPs and provides valuable insights into the environmental applications of nano-fertilizers.

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