Larval Eating Capacity of Indigenous Larvivorous Fishes Against Larvae of Culex Quinquefasciatus Say in Field Experimental Conditions and Its Implications for Lymphatic Filariasis Control in South-Western Republic of Benin, West Africa

Main Article Content

Habib Tamègnon
Nazaire Aïzoun
Arlette Adjatin
Thierry Agblonon
Daniel Chougourou

Abstract

Because of problems with insecticide resistance, alternative vector control methods are necessary. These methods include the use of biological control agents, such as larvivorous fishes. This study aimed to study the larval eating capacity of indigenous larvivorous fishes against larvae of Culex quinquefasciatus Say in field experimental conditions and its implications for lymphatic filariasis control in south-western Republic of Benin, West Africa. Larvae of Culex quinquefasciatus mosquitoes were collected from breeding sites using the dipping method from September to November 2024 during the small rainy season and from the March to July 2025 during the great rainy season. Alive local Clarias gariepinus fish and alive exotic fishes adapted to local life conditions Oreochromis mossambicus and Oreochromis niloticus were bought immediately once catched and carried by car from Agricultural Technical Lyceum of Adjahonmè to the Department of Sciences and Agricultural Techniques located in Dogbo district in Normal High School of Technical Teaching (ENSET) of Lokossa. Field experimental evaluation for larvivorous efficacy was conducted with unfed fishes weighed 30g, 40g and 50g respectively in swamp water and in pond water. The results showed that Clarias gariepinus fish ate more larvae of Culex quinquefasciatus than Oreochromis mossambicus and Oreochromis niloticus fishes for the different weights tested. Good results were obtained in field experimental conditions regarding the use of the larvivorous fishes against larvae of Culex quinquefasciatus in the current study.

Article Details

How to Cite
Tamègnon, H., Aïzoun, N., Adjatin, A. ., Agblonon, T. ., & Chougourou, D. (2026). Larval Eating Capacity of Indigenous Larvivorous Fishes Against Larvae of Culex Quinquefasciatus Say in Field Experimental Conditions and Its Implications for Lymphatic Filariasis Control in South-Western Republic of Benin, West Africa. International Journal of Pharmaceutical and Bio Medical Science, 6(01), 637–646. https://doi.org/10.47191/ijpbms/v6-i1-02
Section
Articles

References

I. Farajollahi, A., Fonseca, D.M., Kramer, L.D., Kilpatrick, M. (2011). “Bird biting” mosquitoes and human disease: A review of the role of Culex pipiens complex mosquitoes in epidemiology. ,Infection, Genetics and Evolution, 11(7),1577-1585.

https://doi: 10.1016/j.meegid.2011.08.013

II. Turell, M.J. (2012). Members of the Culex pipiens complex as vectors of viruses. Journal of the American Mosquito Control Association, 28(4),123-126. https://doi: 10.2987/8756-971X-28.4.123

III. Mattingly, P.F. Population increases in Culex pipiens fatigans Wiedemann. (1962). Bulletin of the World Health Organization, 27, 579-584.

IV. Barrera, R., Amador, M., Diaz, A., Smith, J., Munoz-Jordan, J.L., Rosario, Y. (2008). Unusual productivity of Aedes aegypti in septic tanks and its implications for dengue control. Medical and Veterinary Entomology, 22, 62-69.

https://doi: 10.1111/j.1365-2915.2008.00720.x

V. Burke, R., Barrera, R., Lewis, M., Kluchinsky, T., Claborn, D. (2010). Septic tanks as larval habitats for the mosquitoes Aedes aegypti and Culex quinquefasciatus in Playa-Playita, Puerto Rico. Medical and Veterinary Entomology, 24(2),117-123.https://doi:10.1111/j.1365-2915.2010.00864.x

VI. Chaves, L.F., Kitron, U.D. (2011). Weather variability impacts on oviposition dynamics of the southern house mosquito at intermediate time scales. Bulletin of Entomological Research,101(6), 633-641. https://doi: 10.1017/S0007485310000519

VII. Correia, J.C., Barbosa, R.M., Oliveira, C.M., Albuquerque, C.M. (2012). Residential characteristics aggravating infestation by Culex quinquefasciatus in a region of Northeastern Brazil. Revista de Saúde Pública, 46(6), 935-941.

https://doi: 10.1590/s0034-89102013005000010

VIII. Mackay, A.J., Amador, M., Diaz, A., Smith, J., Barrera, R. (2009) .Dynamics of Aedes aegypti and Culex quinquefasciatus (Diptera: Culicidae) in septic tanks in Southern Puerto Rico. Journal of the American Mosquito Control Association, 25(4), 409-416. https://doi: 10.2987/09-5888.1

IX. Barrera, R., Felix, F., Acevedo, A., Amador, M., Rodriguez, D., Rivera, L., Gonzalez, O., Nazario, N., Ortiz, M., Muñoz, J.L., Waterman, S., Hemme, R.R. (2019). Impacts of hurricanes Irma and Maria on Aedes aegypti populations, aquatic habitats, and mosquito infections with dengue, chikungunya, and Zika viruses in Puerto Rico. American Journal of Tropical Medicine and Hygiene,100(6),1413-1420. https://doi:10.4269/ajtmh.19-0015

X. Ng, K.C., Chaves, L.F., Tsai, K.H., Chuang, T.W. (2018). Increased adult Aedes aegypti and Culex quinquefasciatus (Diptera: Culicidae) abundance in a dengue transmission hot spot, compared to a cold spot, within Kaohsiung city, Taiwan. Insects, 9(3), 98. https://doi: 10.3390/insects9030098

XI. Smith, J., Amador, M., Barrera, R. (2009). Seasonal and habitat effects on dengue and West Nile virus vectors in San Juan, Puerto Rico. Journal of the American Mosquito Control Association, 25 (1), 38-46. https://doi: 10.2987/08-5782.1

XII. Gerberich, J.B., Laird, M. (1968). A bibliography of papers relating to the control of mosquitoes by the use of fish: an annotated bibliography for the years 1901-1966. FAO Fisheries Technical Paper,75,70.

XIII. Sitaraman, N.L., Mahadevan, S., Asamidas, S. (1976). Biological control of An. stephensi larvae in wells by Poecilia reticulata in Greater Hyderabad city. Journal of Communicable Diseases, 8,315-319.

XIV. Chand, S.K., Yadav, R.S.(1994). Use of Oreochromis mossambicus (Peters) in controlling mosquito breeding in cow dung pits. In: Sharma VP, Ghosh A, editors. Larvivorous fishes of inland ecosystems. Proceedings of the MRC-CICFRI workshop, New Delhi 27–28 September 1989. Delhi: Malaria Research Centre (ICMR), 115-120.

XV. Prasad, R.N., Das, M.K., Virk, K.J., Haq, S. (1994). Use of Gambusia affinis on large scale for control of malaria vector: An overview. In: Sharma VP, Ghosh A, editors. Larvivorous fishes of inland ecosystems. Proceedings of the MRC-CICFRI workshop, New Delhi 27–28 September 1989. Delhi: Malaria Research Centre (ICMR), 69-81.

XVI. Hulbert, S.H., Zedier, J., Fairbanks, D. (1972).Ecosystem alteration by mosquito fish (Gambusia affinis) predation. Science,175, 639-641.

https://doi: 10.1126/science.175.4022.639

XVII. O’Malley.(1995).Seven ways to a succesful dipping carrer. Wing beats, 6, 23-24.

XVIII. Bhattacharjee, I., Aditya, G., Chandra, G. (2009). Laboratory and field assessment of the potential of larvivorous, air-breathing fishes as predators of culicine mosquitoes. Biological Control, 49(2),126-133. https://10.1016/j.biocontrol.2008.12.014