4.7 Article

Toxicity of nickel and cobalt in Japanese flounder

期刊

ENVIRONMENTAL POLLUTION
卷 263, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2020.114516

关键词

Paralichthys olivaceous; Lethal concentration; Oxidative stress; Transcriptome; Ferroptosis

资金

  1. Nature Science Foundation of Hebei [C2018107006]
  2. China Agriculture Research System [CARS-47]
  3. Central Public-Interest Scientific Institution Basal Research Fund, CAFS: Chinese Academy of Fishery Sciences [2016HY-JC0309]

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Nickel and cobalt are essential elements that become toxic at high concentrations. Little is known about nickel and cobalt toxicity in aquatic animals. This study aimed to investigate acute and chronic toxicity of nickel and cobalt in Japanese flounder (Paralichthys olivaceous), with emphasis on oxidative stress reactions, histopathological changes, and differences in gene expression. The lethal concentration for 50% mortality (LC50) in 3 and 8 cm Japanese flounder exposed to nickel for 96 h was found to be 86.2 +/- 0.018 and 151.3 +/- 0.039 mg/L; for cobalt exposure, LC50 was 47.5 +/- 0.015 and 180.4 +/- 0.034 mg/L, respectively. Chronic nickel and cobalt exposure caused different degrees of oxidative enzyme activity changes in gill, liver, and muscle tissues. Erythrocyte deformations were detected after acute or chronic exposure to nickel and cobalt. the nickel and cobalt exposure also caused pathological changes such as spherical swelling over other gill patches, rod-like proliferations in the gill patch epithelial cell layer, and disorder in hepatocyte arrangement, cell swelling, and cytoplasm loosening. RNA-Seq indicated that there were 184 upregulated and 185 downregulated genes in the liver of Japanese flounder exposed to 15 mg/L nickel for 28 d. For cobalt, 920 upregulated and 457 downregulated genes were detected. Among these differentially expressed genes, 162 were shared by both nickel and cobalt exposure. In both nickel and cobalt, pathways including fatty acid elongation, steroid biosynthesis, unsaturated fatty acid biosynthesis, fatty acid metabolism, PPAR signaling, and ferroptosis were significantly enriched. Taken together, these results aided our understanding of the toxicity of nickel and cobalt in aquatic animals. (C) 2020 Elsevier Ltd. All rights reserved.

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