Behavioural Changes and Gill Histopathological Alterations of Red Hybrid Tilapia (Oreochromis sp.) Exposed to Glyphosate Herbicide
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 33219
Behavioural Changes and Gill Histopathological Alterations of Red Hybrid Tilapia (Oreochromis sp.) Exposed to Glyphosate Herbicide

Authors: Abubakar Muhammad Umar, Nur Adeela Yasid, Hassan Mohd Daud, Mohd Yunus Abd Shukor

Abstract:

Glyphosate [N-(phosphonomethyl) glycine] is among the most broadly and generally recognised broad-spectrum herbicides used in agriculture due to its low cost and effectiveness in weed management. The pollution of glyphosate in the aquatic environment can be via water run-off from agricultural lands, or by spray drift, aerial spraying or due to industrial discharge, which may be seen as a threat to aquatic biota. Fish is one of the best organisms to study the toxicological aspects of glyphosate. A 49 days experiment was conducted under laboratory conditions to ascertain the effects of technical grade glyphosate on behaviour and histopathological conditions in the gills of red hybrid tilapia using a light inverted microscope. Air gasping, erratic swimming, fin movement, mucus secretion, haemorrhages, and loss of scales were observed as behavioural changes in the exposed fish. There was no histopathological complication observed in the gill of the control fish, but various levels of alterations were seen in the gills of the fish exposed to glyphosate herbicide. These include lifting of primary lamella, congestion of secondary lamella, as well as hyperplasia in both primary and secondary gill lamella, and hypertrophy of secondary gill lamella. Based on the findings of this study, glyphosate herbicide exerts behavioural and histopathological changes in the gill of red hybrid tilapia, and therefore, the fish is considered a good bioindicator in aquatic environment monitoring. Excessive usage of glyphosate herbicide near aquatic habitats should be discouraged.

Keywords: Fish Behaviour, gill histopathology, Oreochromis niloticus, glyphosate.

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 24

References:


[1] Gholami-Seyedkolaei, S. J., Mirvaghe, A., Farahmand, H., and Asghar, A. (2013). Effect of a glyphosate-based herbicide in Cyprinus carpio : Assessment of acetylcholinesterase activity, hematological responses and serum biochemical parameters. Ecotoxicology and Environmental Safety, 98(2013), 135–141. https://doi.org/10.1016/j.ecoenv.2013.09.011
[2] Yancheva, V., Velcheva, I., Stoyanova, S., and Georgieva, E. (2016). Histological biomarkers in fish as a tool in ecological risk assessment and monitoring programs: A review. Applied Ecology and Environmental Research, 14(1), 47–75.
[3] Samanta, P., and Pal, S. (2016). Effects of Almix® herbicide on oxidative stress parameters in three freshwater teleostean fishes in natural condition. Biochemistry & Pharmacology: Open Access, 5(3). https://doi.org/10.4172/2167-0501.1000209
[4] World Ecology Report. (2019). Special Focus: Global Pesticide Use: Weighing the risk and benefits (Vol. XXIX).
[5] Sihtmäe, M., Blinova, I., Künnis-Beres, K., Kanarbik, L., Heinlaan, M., and Kahru, A. (2013). Ecotoxicological effects of different glyphosate formulations. Applied Soil Ecology, 72(2013), 215–224. https://doi.org/10.1016/j.apsoil.2013.07.005.
[6] U. S. EPA. (2012). Data requirements for Pesticides Registration. Washington DC.
[7] Ladipo, M. K., Doherty, V. F., and Oyebadejo, S. A. (2011). Acute Toxicity, Behavioural Changes and Histopathological Effect of Paraquat Dichloride on Tissues of Catfish (Clarias gariepinus). International Journal of Biology, 3(2), 67–74. https://doi.org/10.5539/ijb.v3n2p67.
[8] Md Faruque Ahmad, Fakhruddin Ali Ahmad, Abdulrahman A. Alsayegh, Md. Zeyaullah, Abdullah M. AlShahrani, Khursheed Muzammil, Abdullah Ali Saati, Shadma Wahab, Ehab Y. Elbendary, Nahla Kambal, Mohamed H. Abdelrahman, Sohail Hussain (2024). Pesticides impacts on human health and the environment with their mechanisms of action and possible countermeasures. Heliyon 10 (2024) e29128.
[9] Sani, A., and Idris, M. K. (2016). Acute toxicity of herbicide (glyphosate) in Clarias gariepinus juveniles. Toxicology Reports, 3(August), 513–515.
[10] Sanaa Abdulaziz Mustafa, Abdulmotalib Jasim Al-Rudainy and Noor Mohammad Salman (2024). Effect of environmental pollutants on fish health: An overview. The Egyptian Journal of Aquatic Research. Vol 50, 225-233.
[11] Ayumi, C., Harayashiki, Y., Sergio, A., Junior, V., Abel, A., Machado, D. S., and Dahl, C. (2013). Toxic effects of the herbicide Roundup in the guppy Poecilia vivipara acclimated to fresh water. Aquatic Toxicology, 142–143(2013), 176–184.
[12] Cerqueira, C. C. C., and Fernandes, M. N. (2002). Gill tissue recovery after copper exposure and blood parameter responses in the tropical fish Prochilodus scrofa. Ecotoxicology and Environmental Safety, 52(2), 83–91. https://doi.org/10.1006/eesa.2002.2164.
[13] Hashemi, S. A., Ghorbani, R., Kymaram, F., Hossini, S. A., Eskandari, G., and Hedayati, A. (2015). Fish species composition, distribution and abundance in Shadegan Wetland. Fisheries and Aquaculture Journal, 06(02), 1–8. https://doi.org/10.4172/2150-3508.1000128.
[14] Mdegela, R. H., Mosha, R. D., Sandvik, M., and Skaare, J. U. (2010). Assessment of acetylcholinesterase activity in Clarias gariepinus as a biomarker of organophosphate and carbamate exposure. Ecotoxicology, 19(5), 855–863. https://doi.org/10.1007/s10646-010-0466-3.
[15] Neelima, P., Rao, K. G., Rao, G. S., Rao, N. G., and Rao, J. C. S. (2016). Biomarkers of Cypermethrin (Synthetic Pyrethroid) Toxicity - Biochemical alterations in Cyprinus carpio, a freshwater edible fish. International Journal of Biological and Medical Reseach, 6(2), 5574–5581.
[16] Tabassum, H., Dawood, A. Q., Sharma, P., Khan, J., Raisuddin, S., and Parvez, S. (2016). Multi-organ toxicological impact of fungicide propiconazole on biochemical and histological profile of freshwater fish Channa punctata Bloch. Ecological Indicators, 63, 359–365. https://doi.org/10.1016/j.ecolind.2015.11.052.
[17] Ghanbahadur, A. G., Ghanbahadur, G. R., Ganeshwade, R. M., and Wagh, S. B. (2015). Histopathological effect of organochloride endosulfan on gills of larvivorous fish Rasbora daniconius. Bioscience Discovery, 6(2), 121–124.
[18] Ayoola, S. O. (2008). Histopathological Effects of Glyphosate on Juvenile African Catfish (Clarias gariepinus). American-Eurasian Journal of Agricultural & Environmental Sciences, 4(3), 362–367.
[19] Zhang, S., Xu, J., Kuang, X., Li, S., Li, X., Chen, D., and Feng, X. (2017). Biological impacts of glyphosate on morphology, embryo biomechanics and larval behavior in zebrafish (Danio rerio). Chemosphere, 181, 270–280.
[20] Zuberi, A., Ullah, S., Ullah, I., and Dawar, F. U. (2014). Cypermethrin induced behavioral and biochemical changes in mahseer, Tor putitora. The Journal of Toxicological Sciences, 39(6), 829–836.
[21] Thanomsit, C., and Wattanakornsiri, A. (2016). Effect of glyphosate on fish behavior and histological alteration of gills in Asian sea bass (Lates calcarifer). Journal of Burapha University, 21(2), 204–215.
[22] Dogan, D., and Can, C. (2011). Hematological, biochemical, and behavioral responses of Oncorhynchus mykiss to dimethoate. Fish Physiology and Biochemistry, 37(4), 951–958. https://doi.org/10.1007/s10695-011-9492-1
[23] Far, M. S., Roodsari, H. V., Zamini, A., Mirrasooli, E., and Kazemi, R. (2012). The effects of Diazinon on behavior and some hematological parameters of fry rainbow trout (Oncorhynchus mykiss). World Journal of Fish and Marine Sciences, 4(4), 369–375. https://doi.org/10.5829/idosi.wjfms.2012.04.04.61167.
[24] Thophon, S., Kruatrachue, M., and Upatham, E. S. (2003). Histopathological alterations of white seabass, Lates calcarifer, in acute and subchronic cadmium exposure. Environmental Pollution 121, 121(2003), 307–320.
[25] Samanta, P., Sandipan, P., Mukherjee, A. K., Senapati, T., and Ghosh, A. R. (2016). Histopathological and ultrastructural alterations in Anabas testudineus exposed to Glyphosate-based herbicide, Excel Mera 71 under field and laboratory conditions. Journal of Aquaculture Research & Development, 07(7), 1–6.
[26] Sabullah, M. K., Ahmad, S. A., Hussin, J., Gansau, A. J., and Sulaiman, M. R. (2014). Acute effect of copper on Puntius javanicus survival and a current opinion for future biomarker development. Journal of Environmental Bioremediation and Toxicology, 2(1),28–32.
[27] Oluwatoyin, V. E., Duku, G. L., and Kayode, E. V. (2015). Hematological, organic and behavioral changes in Oreochromis niloticus (Linne 1757) adolescents presented to Paraquat herbicide. International Journal of Environmental Biology Research, 2(4), 106–115.
[28] Mumford, S., Heidel, J., Smith, C., Morrison, J., MacConnell, B., and Blazer, V. (2007). Fish histology and histopathology: Processing tissues for histology. U. S. Fish and wildlife service.
[29] Michelle, P., Adele, K., and Steve, P. (2004). The histology guide: Making histological sections for the light microscope.
[30] Sandun, K. V, Bandara, N., and Amarasinghe, U. S. (2015). Effect of glyphosate-based herbicide, Roundup TM on territory deference of male Oreochromis mossambicus (Osteichthyes, Cichlidae) associated with mating behaviour. Sri Lanka Journal of Aquatic Science, 20(1), 1–10.
[31] Bridi, D., Altenhofen, S., Gonzalez, J. B., Reolon, G. K., and Denise, C. (2017). Glyphosate and Roundup® alter morphology and behavior in zebra fish. Toxicology, 392(2017), 32–39. https://doi.org/10.1016/j.tox.2017.10.007
[32] Kaur, R., and Dua, A. (2015). 96h LC50, behavioural alterations and histopathological effects due to wastewater toxicity in a freshwater fish Channa punctatus. Environmental Science and Pollution Research, 22(7), 5100–5110. https://doi.org/10.1007/s11356-014-3710-1
[33] Tiwari, S., and Singh, A. (2004). Toxic and sub-lethal effects of oleandrin on biochemical parameters of fresh water air breathing murrel, Channa punctatus (Bloch.). Indian Journal of Experimental Biology, 42(April), 413–418.
[34] Okayi, R. G., Annune, P. A., Tachia, M. U., and Oshoke, O. J. (2010). Acute Toxicity of Glyphosate on Clarias gariepinus Fingerlings. Journal of Research in Forestry, Wildlife and Environment, 2(2), 150–155.
[35] Jiraungkoorskul, W., Upatham, E. S., Kruatrachue, M., Sahaphong, S., Vichasri-Grams, S., and Pokethitiyook, P. (2003). Biochemical and histopathological effects of glyphosate herbicide on nile tilapia (Oreochromis niloticus). Environmental Toxicology, 18(4), 260–267. https://doi.org/10.1002/tox.10123
[36] Shiogiri, N. S., Paulino, M. G., Carraschi, Silvia, P., Baraldi, F. G., da Cruz, C., and Narciso, M. F. (2012). Acute exposure of a glyphosate-based herbicide affects the gills and liver of the Neotropical fish, Piaractus mesopotamicus. Environmental Toxicology and Pharmacology, 34(2), 388–396. https://doi.org/10.1016/j.etap.2012.05.007
[37] Figueiredo-Fernandes, A., Ferreira-Cardoso, J. V., Garcia-Santos, S., Monteiro, S. M., Carrola, J., Matos, P., and Fontaínhas-Fernandes, A. (2007). Histopathological changes in liver and gill epithelium of Nile tilapia, Oreochromis niloticus, exposed to waterborne copper. Pesquisa Veterinaria Brasileira, 27(3), 103–109. https://doi.org/10.1590/S0100-736X2007000300004
[38] Rai, M. K., and Mishra, A. P. (2014). Histopathological alteration in gill of Channa gachua exposed to an organophosphate. The Asian Journal of Animal Science, 9(2), 169–173.
[39] Camargo, M. M. P., and Martinez, C. B. R. (2007). Histopathology of gills, kidney and liver of a Neotropical fish caged in an urban stream. Neotropical Ichthyology, 5(3), 327–336.
[40] Jayachandran, K., and Pugazhendy, K. (2009). Histopathological changes in the gill of Labeo rohita (Hamilton) fingerlings exposed to Atrazine. American-Eurasian Journal of Scientific Research, 4(3), 219–221.
[41] Naeemi, A., Jamili, S., Shabanipour, N., Mashinchian, A., and Shariati Feizabadi, S. (2013). Histopathological changes of gill, liver and kidney in Caspian kutum exposed to Linear Alkylbenzene Sulfonate. Iranian Journal of Fisheries Sciences, 12(4), 887–897.
[42] Santos, D. M. S., Melo, M. R. S., Mendes, D. C. S., Rocha, I. K. B. S., Silva, J. P. L., Cantanhêde, S. M., and Meletti, P. C. (2014). Histological changes in gills of two fish species as indicators of water Quality in Jansen Lagoon (Sao Luis, Maranhao State, Brazil). International Journal of Environmental Research and Public Health, 11(12), 12927–12937. https://doi.org/10.3390/ijerph111212927
[43] Velmurugan, B., Selvanayagam, M., Cengiz, E. I., and Unlu, E. (2009). Histopathological changes in the gill and liver tissues of freshwater fish, Cirrhinus mrigala exposed to dichlorvos. Brazilian Archives of Biology and Technology, 52(5), 1291–1296. https://doi.org/10.1590/S1516-89132009000500029.