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Assessing Fish Immunotoxicity by Means of Assays: Are We There Yet?

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Journal Front Immunol
Date 2022 Mar 17
PMID 35296072
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Abstract

There is growing awareness that a range of environmental chemicals target the immune system of fish and may compromise the resistance towards infectious pathogens. Existing concepts to assess chemical hazards to fish, however, do not consider immunotoxicity. Over recent years, the application of assays for ecotoxicological hazard assessment has gained momentum, what leads to the question whether assays using piscine immune cells might be suitable to evaluate immunotoxic potentials of environmental chemicals to fish. systems using primary immune cells or immune cells lines have been established from a wide array of fish species and basically from all immune tissues, and in principal these assays should be able to detect chemical impacts on diverse immune functions. In fact, assays were found to be a valuable tool in investigating the mechanisms and modes of action through which environmental agents interfere with immune cell functions. However, at the current state of knowledge the usefulness of these assays for immunotoxicity screening in the context of chemical hazard assessment appears questionable. This is mainly due to a lack of assay standardization, and an insufficient knowledge of assay performance with respect to false positive or false negative signals for the different toxicant groups and different immune functions. Also the predictivity of the immunotoxicity assays for the immunotoxic response of fishes is uncertain. In conclusion, the currently available database is too limited to support the routine application of piscine assays as screening tool for assessing immunotoxic potentials of environmental chemicals to fish.

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References
1.
Rastgar S, Ardeshir R, Segner H, Tyler C, Peijnenburg W, Wang Y . Immunotoxic effects of metal-based nanoparticles in fish and bivalves. Nanotoxicology. 2022; 16(1):88-113. DOI: 10.1080/17435390.2022.2041756. View

2.
Tellez-Banuelos M, Ortiz-Lazareno P, Santerre A, Casas-Solis J, Bravo-Cuellar A, Zaitseva G . Effects of low concentration of endosulfan on proliferation, ERK1/2 pathway, apoptosis and senescence in Nile tilapia (Oreochromis niloticus) splenocytes. Fish Shellfish Immunol. 2011; 31(6):1291-6. DOI: 10.1016/j.fsi.2011.10.003. View

3.
Segner H, Wenger M, Moller A, Kollner B, Casanova-Nakayama A . Immunotoxic effects of environmental toxicants in fish - how to assess them?. Environ Sci Pollut Res Int. 2012; 19(7):2465-76. DOI: 10.1007/s11356-012-0978-x. View

4.
Li J, Barreda D, Zhang Y, Boshra H, Gelman A, LaPatra S . B lymphocytes from early vertebrates have potent phagocytic and microbicidal abilities. Nat Immunol. 2006; 7(10):1116-24. DOI: 10.1038/ni1389. View

5.
Whitehead A . Interactions between oil-spill pollutants and natural stressors can compound ecotoxicological effects. Integr Comp Biol. 2013; 53(4):635-47. PMC: 3895973. DOI: 10.1093/icb/ict080. View