Effects of acute ammonia nitrogen exposure on metabolic and immunological responses in the Hong Kong oyster Crassostrea hongkongensis

Ammonia nitrogen, a major oxygen-consuming pollutant in the environment, can adversely affect aquatic organisms such as fish, bivalves, and crustaceans. We investigated the toxic effects of ammonia nitrogen on the Hong Kong oyster, Crassostrea hongkongensis, using flow cytometry and 1H nuclear magne...

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Veröffentlicht in:Ecotoxicology and environmental safety 2022-06, Vol.237, p.113518-113518, Article 113518
Hauptverfasser: Lu, Jie, Yao, Tuo, Shi, Shaokun, Ye, Lingtong
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Sprache:eng
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Zusammenfassung:Ammonia nitrogen, a major oxygen-consuming pollutant in the environment, can adversely affect aquatic organisms such as fish, bivalves, and crustaceans. We investigated the toxic effects of ammonia nitrogen on the Hong Kong oyster, Crassostrea hongkongensis, using flow cytometry and 1H nuclear magnetic resonance metabolomics. Exposure to ammonia nitrogen caused time- and concentration-dependent alterations in various immune parameters in hemocytes and impaired the metabolic profiles of the gills. We observed changes in the rate of apoptosis, esterase activity, lysosomal mass, hemocyte counts, phagocytic activity, and mitochondrial mass. Exposure affected metabolic pathways involved in energy metabolism, osmotic balance, and oxidative stress. We concluded that ammonia nitrogen induces metabolic and hematological dysfunction in C. hongkongensis, and our findings provide insights into the biochemical defense strategies of bivalves exposed to acute high-concentration ammonia nitrogen. [Display omitted] •The toxic effects of ammonia nitrogen on Crassostrea hongkongensis were studied.•Ammonia nitrogen induces metabolic and hematological dysfunction.•Immune parameters in hemocytes were time- and concentration-dependent altered.•Gill metabolic profiles were altered time- and concentration-specifically.•No sex-specific effects were found.
ISSN:0147-6513
1090-2414
DOI:10.1016/j.ecoenv.2022.113518