Effects of Artificial UVB Radiation on Growth, Survival, and Pigmentation of African Catfish (Clarias gariepinus) Fingerlings

Authors

  • Alexander Ichaver
    Joseph Sarwuan Tarka University, Makurdi
  • Alexender Aondongu Tyovenda
    Joseph Sarwuan Tarka University
  • Aisha Adullahi Mohammed
    Joseph Sarwuan Tarka University

Keywords:

Ultraviolet Radiation, Catfish, Color change, Weight, Growth, Mortality rate

Abstract

Ultraviolet radiation B (UVB) is known to be detrimental to aquatic habitat; therefore, it's critical to understand how UVB affects Clarias gariepinus, which is widely cultured in Nigeria, in order to promote healthy growth of the fish. Two hundred fingerlings of the cat fish samples were obtained and divided into four equal groups, (A, B, C, and D) and kept in artificial ponds, and were respectively exposed to different UVB conditions [UVB-L (low)] 2.4 10-7 mW/cm2, UVB-M (moderate) 6.0 10-7 mW/cm2, UVB-H (high) 1.2  10-6 mW/cm2] and group D was used as a control. The exposure period was 16 days and 51 days, respectively for the short and long term. The results of short and long-term exposure depict that UVB-L does not cause significant changes to the sample, while UVB-M rapidly increases the weight and growth but decreases mortality rate of the cat fish sampled, and UVB-H retarded weight and growth but increases mortality rate of the Clarias gariepinus. The result on color change indicated that, the control, UVB-L, and UVB-M samples maintained their dark color throughout the period of the experiment, while UVB-H sample undergoes morphological and functional changes resulting in a complete change from dark to pink color. UVB-M was found to be highly beneficial to the cat fish for both short and long terms, it can therefore, be adopted by fish farmers to improve the healthy fish growth of their farm.

Author Biography

Alexender Aondongu Tyovenda

Department of Physics, Professor of Radiation and Medical Physics

Dimensions

Alloy, M., Baxter, D., Stieglitz, J., Mager, E., Hoenig, R., Benetti, D., Grosell, M., Oris, J., & Roberts, A. (2016). Ultraviolet radiation enhances the toxicity of deepwater horizon oil to mahimahi (Coryphaena hippurus) embryos. Environmental Science and Technology, 50, 2011-2024. https://doi.org/0.1021/acs.est.5b05356.

Barnes, P. W., Robson, T. M., Robson, R. G., Zepp, J. E., Bornman, M. A. K., Jansen, R., Ossola, Q. W., Wang, S. A., Robinson, B., Foereid, A. R., Klekociuk, J. M., Abaigar, W. C., Hou, R., Mackenzie. J. F & Paul, N. D. (2023). Interactive effects of changes in UV radiation and climate on terrestrial ecosystems biochemical cycles and feedback to the climate system. Journal of Photochemistry and Photobiological Science, 22, 1049-1062.

Borgia, V. J. F., Thatheyus, A. J., Murugesan, A. G., Alexander, S. C. P., & Geetha, I. (2018). Effects of effluent from electoplating industry on the immune response in the freshwater fish, Cyprinus carpio. Fish and Shellfish Immunology, 79, 86–92. https://doi.org/10.1016/j.fsi.2018.05.010

Braun, C., Reef, R., & Siebeck, U. E. (2016). Ultraviolet absorbing compounds provide a rapid response mechanism for UV protection in some reef fish. Journal of Photochemistry and Photobiology, 160, 400-418. https://doi.org/10.1016/j.jphotobiol.2016.04.020

Cubillos, M. V. (2015). The relationship between UV-irradiance, photoprotective compounds and DNA damage in two intertidal invertebrates with contrasting mobility characteristics. Journal of Photochememistry and Photobiology B: Biology, 149, 280-296. https://doi.org/10.1016/j.jphotobiol 2015.06.001

Hader, D. P & Barnes, P. W. (2019). Comparing the impacts of climate change on the responses and linkages between terrestrial and aquatic ecosystems. Science Total Environment 682, 239-253. https://doi.org/10.1016/j.scitotenv.2019.05.024

Hader, D. P., Helbling, E. W., Williamson, C. E & Worrestd, R. C. (2015). Effects of UV radiation on aquatic ecosystems and interactions with other environmental factors. Journal of Photochemistry & Photobiology 14, 108-121. https://doi.org/10.1039/c4pp90035a

Ichaver, A., Tyovenda, A. A., Tikyaa, E. V. & Sombo, T. (2024). Effects of ultraviolet radiation (UVR) on some stages of Clarias gariespinus (catfish) growth. Radiation Science and Technology, 10(1), 1-10. https://doi.org/1011648/j.rst.40241001.11

Kazerouni, E. G., Franklin, C. E., & Seebacher, F. (2016). Parental exposure modulates the effects of UV-B on offspring in guppies. Functional Ecology 31: 1082-1099. https://doi.org/10.111/1365-2435.12817

Khan, A. Q., Aldosari, F., & Hussain, S. M. (2018). Fish consumption behavior and fish farming attitude in Kingdom of Saudi Arabia (KSA). Journal of Saudi Society of Agricultural Science, 17, 195–199. https://doi.org/10.1016/j.jssas.2016.04.003

Lara, S. G., Carlos, M. D., & Susana, A. (2020). Impact of UV radiation on plankton net community production: responses in Western Australian estuarine and coastal waters. The University of Western Australia Oceans Institute, 651: 45-57.

Luke, M. H., Andrew, M. R., Betsy, B., Nick, A. P & Molly, A. H. (2014). Effects of Ultraviolet-B Radiation on Woundfin Embryos and Larvae with Application to Conservation Propagation. Journal of Fish and Wildlife Management, 5, 87-103. https://doi.org/10.3996/042013-JFMW-030

Megan, K. W., Adam, W. S., Amber, L. L., Stephen, J., Timothy, M. F., Katie, L., Micah, K., Kemba, M., & Mark, M. (2014). Evaluating the Clinical and Physiological Effects of Long Term Ultraviolet B Radiation on Guinea Pigs (Cavia procellus) Public Library of Science ONE, 9:142-150. e114413. https://doi.org/10.1371/journal.pone.0114413

Overmans, S., and Agustí, S. (2019). Latitudinal gradient of UV attenuation along the highly transparent red sea basin. Photochemistry and Photobiology, 95, 1267–1279. https://doi.org/10.1111/php.13112

Ravinder, G., Brijender, B., Ankit, G., Ajay, B., & Pawitar, D. (2020). Non-Ionizing Radiation and Human Health. International Journal of Science and Advanced Research in Technology, 6, 130-146.

Ricardo, N. A & Susana, A. (2020). Effect of ultraviolet radiation (UVR) on the life stages of fish. Reviews in Fish Biology and Fisheries, 30, 335-347. https://doi.org/10.1007/s11160-020-09603-1

Ricardo, N. A., Asaad, H. M., Jorge, F. A., Abdulaziz, A. S & Susana, A. (2020). Adverse Effects of Ultraviolet Radiation on Growth, Behavior, Skin Condition, Physiology, and/ Immune Function in Gilthead Seabream (Sparus aurata). Frontiers in Marine Science, 7(306), 1-20. https://doi.org/10fmars202000306

Sayed, A. E & Mitani, H. (2016). The notochord curvature in medaka (Oryzias latipes) embryos as a response to Ultra-Violet A irradiation. Journal of Photochemistry and Photobiology B, 164, 132-148. https://doi.org/10.1016/j.jphotobiol.2016.09.023

Sherri, F., Pucherelli, I., & Renata, C. (2017). Assessment of the effects of ultra-violet light treatment on quagga mussel settlement and veliger survival at Davis Dam. Journal of Photochemmistry and Photobiology Sciences 8, 301-319.

Studer, A., Lamare, M. D., & Poulin, R. (2012). Effects of ultraviolet radiation on the transmission process of an intertidal trematode parasite. Parasitology, 139, 537-553.

Vitt, S., Rahn, A. K., Drolshagen, L., Bakker, T. C. M., Scharsack, J. P., & Rick, I. P. (2017). Enhanced ambient UVB light affects growth, body condition and the investment in innate and adaptive immunity in three-spined sticklebacks (Gasterosteus aculeatus). Aquatic. Ecology, 51, 499–509. https://doi.org/10.1007/s10452-017- 9632-9635

Williamson, C. E., Hargreaves, B. R., Orr, P. S. & Lovera P. A. (2019). Does UV play a role in changes in predation and zooplankton community structure in acidified lakes, Limnology Oceanography, 44, 774-782. https://doi.org/10.1039/C8Pp90062K

Published

2026-01-08

How to Cite

Ichaver, A., Tyovenda, A. A., & Mohammed, A. A. (2026). Effects of Artificial UVB Radiation on Growth, Survival, and Pigmentation of African Catfish (Clarias gariepinus) Fingerlings. Nigerian Journal of Physics, 35(1), 101-107. https://doi.org/10.62292/njp.v35i1.2026.463

How to Cite

Ichaver, A., Tyovenda, A. A., & Mohammed, A. A. (2026). Effects of Artificial UVB Radiation on Growth, Survival, and Pigmentation of African Catfish (Clarias gariepinus) Fingerlings. Nigerian Journal of Physics, 35(1), 101-107. https://doi.org/10.62292/njp.v35i1.2026.463