Efficacy and Toxicity of 20 Commercial Aerosol Insecticide Brands to Anopheles gambiae Mosquitoes in Lagos State.
Authors
Department of Zoology and Environmental Biology, Lagos State University (Nigeria)
Department of Zoology and Environmental Biology, Lagos State University (Nigeria)
Department of Zoology and Environmental Biology, Lagos State University (Nigeria)
Article Information
Publication Timeline
Submitted: 2026-04-04
Accepted: 2026-04-10
Published: 2026-04-28
Abstract
Aim: This study was conducted with a focus on assessing the susceptibility of the Anopheles gambiae mosquitoes in Lagos state to twenty commercial aerosol insecticides brands.
Study design: An entomological survey and a conventional bioassay.
Place and Duration of Study: The study was carried out between May and December 2025 in the Department of Zoology and Environmental Biology, Lagos State University, Nigeria.
Methodology: Entomological surveys were conducted in the urban and rural areas of Lagos state using 105 structured questionnaire to understand the public opinion on the use of aerosol insecticides in controlling mosquitoes. The efficacy of the twenty aerosol insecticides was assessed using a conventional bioassay on adult Anopheles gambiae by exposing twenty adult Anopheles mosquitoes to 0.5ml of each of the insecticides; after the bioassay, Probit 1.5 software was used to determine the lethal concentrations of the insecticides that can knockdown and bring about mortality of 50% and 99% of exposed insects.
Results: Findings revealed that about 96.19% residents of Lagos State prefer aerosol insecticides to other forms of vector control; while 3.81% do not use aerosol at all. The study further revealed that all aerosol insecticides marketed in Lagos State contained pyrethroids as the active ingredient, and Anopheles gambiae populations in the State remained susceptible to them, though toxicity levels varied. The most toxic was found to be Specimen A while the least toxic is V. All twenty test aerosol insecticides were able to cause 100% mortality in twenty exposed Anopheles gambiae mosquitoes after 60 minutes exposure period.
Conclusion: The study discovered that aerosol insecticides are both the first choice of Lagos State residents and is equally effective at controlling Anopheles gambiae mosquitoes. It is therefore suggested that pyrethrum based aerosol insecticides should be used in place of other toxic chemical insecticides; while putting into consideration safety precautions during and after use.
Keywords
Anopheles gambiae, Lagos state, Aerosol insecticides
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References
1. Mitra S, Rodriguez D, Vulcan J, Cordova J, Chung N, Moore E, et al. Efficacy of Active Ingredients From the EPA 25(B) List in Reducing Attraction of Aedes aegypti (Diptera: Culicidae) to Humans. Journal of medical entomology. 2020; 57(2): 477–484. https://doi.org/10.1093/jme/tjz178 [Google Scholar] [Crossref]
2. World Health Organization. World malaria report 2018. Geneva: World Health Organization; 2018. [Google Scholar] [Crossref]
3. Ekoko WE, Awono-Ambene P, Bigoga J, Mandeng S, Piameu M, Nvondo N, Toto JC, Nwane P, Patchoke S, Mbakop LR, Binyang JA. Patterns of anopheline feeding/resting behaviour and Plasmodium infections in North Cameroon, 2011–2014: implications for malaria control. Parasites & vectors. 2019 13;12(1):297 [Google Scholar] [Crossref]
4. Oduola O, Adelaja J, Aiyegbusi O, Tola M, Obembe A, Ande T, et al. Dynamics of Anopheline vector species composition and reported malaria cases during the rain and dry season in two selected communities in Kwara state. Nigeria Journal Parasitology. 2016;37(2), 158–164. [Google Scholar] [Crossref]
5. Oguttu W, Matovu B, Okumu C, Ario R, Okullo E, Opigo J, et al. Rapid reduction of malaria following introduction of vector control interventions in Tororo District, Uganda: a descriptive study. Malaria Journal. 2017;1–8. https://doi.org/10.1186/s12936-017-1871-3 [Google Scholar] [Crossref]
6. Musiime K, Smith L, Kilama M, Rek J, Arinaitwe E, Nankabirwa I, et al. Impact of vector control interventions on malaria transmission intensity, outdoor vector biting rates and Anopheles mosquito species composition in Tororo, Uganda. Malaria Journal. 2019; 1–9. https://doi.org/10.1186/s12936-019-3076-4 [Google Scholar] [Crossref]
7. Nigeria Demographic and Health Survey 2018. Abuja, Nigeria, and Rockville, Maryland, USA: NPC and ICF. Accessed 28 September 2022. Available : https://dhsprogram.com/pubs/pdf/FR359/FR359.pdf [Google Scholar] [Crossref]
8. Adelaja O, Oduola A, Omotayo A, Obembe A, Adeogun A. Spatial toxicity of selected insecticidal plant oils against Anopheles gambiae Giles (Diptera: Culicidae). Research Square. 2022; 10.21203/rs.3.rs-1334833/v1. [Google Scholar] [Crossref]
9. Talom D, Tchuinkam T, Zeukeng F, Demano M, Kuate A, Lehman G, et al. Susceptibility of Anopheles gambiae to pyrethroid insecticides in vegetable farms in the city of Yaoundé, Cameroon. Journal of Entomology and Zoology Studies 2020; 8(5): 1851-1858. [Google Scholar] [Crossref]
10. Yoon J, An H, Kim N, Tak H. Efficacy of seven commercial household aerosol insecticides and formulation-dependent toxicity against Asian tiger mosquito (Diptera: Culicidae), Journal of Medical Entomology. 2020;57(5): 1560-1566, doi: 10.1093/jme/tjaa070 [Google Scholar] [Crossref]
11. World Health Organization. World malaria report 2016. Geneva: World Health Organization; 2016. [Google Scholar] [Crossref]
12. Kuri-Morales A, Correa-Morales F, González-Acosta C, MorenoGarcia M, Dávalos-Becerril E, Benitez-Alva J, et al. Efficacy of 13 commercial household aerosol insecticides against Aedes aegypti (Diptera: Culicidae) from Morelos, Mexico. Journal of Medical Entomology 2018;55: 417–422. [Google Scholar] [Crossref]
13. Chemutai F, Kisakye J, Kabbale F, Egeru A. Susceptibility of Anopheles Mosquitoes to Insecticides Used In Busia and Tororo Districts, Eastern Uganda. Research Square. 2022; [https://doi.org/10.21203/rs.3.rs-1638330/v1] [Google Scholar] [Crossref]
14. Scheff D, Campbell J, Arthur F, Zhu K. Effects of Aerosol Insecticide Application Location on the Patterns of Residual Efficacy Against Tribolium confusum (Coleoptera: Tenebrionidae) Larvae, Journal of Economic Entomology. 2020;113(4):2007–2015. https://doi.org/10.1093/jee/toaa103 [Google Scholar] [Crossref]
15. Campbell J, Arthur H, and Zhu Y. Spatial pattern in aerosol insecticide deposition inside a flour mill. Journal of Economic . Entomology. 2014;107: 440–454. [Google Scholar] [Crossref]
16. Makworo NK, Ochieng VO, Ogoyi DO, Mukabana RW. Knock down efficacy of commercially available insecticides against Anopheles gambiae. Journal of Applied Biology and Biotechnology. 2017; 5:77-84. Dagg K, Irish S, Wiegand E, Shililu J, Yewhalaw D, Messenger A. Evaluation of toxicity of clothianidin (neonicotinoid) and chlorfenapyr (pyrrole) insecticides and cross-resistance to other public health insecticides in Anopheles arabiensis from Ethiopia. Malaria journal. 2019;18(1), 49. https://doi.org/10.1186/s12936-019-2685-2 [Google Scholar] [Crossref]
17. Gray L, Florez D, Barreiro A, Vadillo-Sánchez J, González-Olvera G, Lenhart A, Manrique-Saide P, Vazquez-Prokopec G. Experimental evaluation of the impact of household aerosolized insecticides on pyrethroid resistant Aedes aegypti. Sci. Rep. 2018;8: 12535. DOI:10.1038/s41598-018-30968-8 [Google Scholar] [Crossref]
18. Ebere N, Atting I, Ekerette I, Nioking, A. Assessment of Level of Susceptibility of Anopheles gambiae S.L to Public Health Insecticides in a Malaria Vector Sentinel Site, Rivers State, Nigeria. Annual Research & Review in Biology. 2019;32(1): 1-10. [Google Scholar] [Crossref]
19. World Health Organization. World malaria report 2017. Geneva: World Health Organization; 2017. [Google Scholar] [Crossref]
20. Okia M, Hoel F, Kirunda J, Rwakimari B, Mpeka B, Ambayo D, et al. Insecticide resistance status of the malaria mosquitoes: Anopheles gambiae and Anopheles funestus in eastern and northern Uganda. Malaria Journal. 2018;1–12. https://doi.org/10.1186/s12936-018-2293-6 Fardisi M, Gondhalekar A, Ashbrook A, Scharf E. Rapid evolutionary responses to insecticide resistance management interventions by the German cockroach (Blattella germanica L.). Sci. Rep. 2019;9: 8292. [Google Scholar] [Crossref]
21. Ayorinde A, Oboh B, Oduola A, Otubanjo O. The Insecticide Susceptibility Status of Aedes aegypti (Diptera: Culicidae) in Farm and Nonfarm Sites of Lagos State, Nigeria. Journal of insect science (Online). 2015;15(1), 75. https://doi.org/10.1093/jisesa/iev045 [Google Scholar] [Crossref]
22. Kemabonta A, Anikwe C, Adaezeobiora I. Bio efficacy of skeetar in Anopheles gambiae and Aedes aegypti mosquitoes from insecticides resistance areas in Lagos and Oyo State. Biol. Agric. HealthCare. 2013;3: 122–135. [Google Scholar] [Crossref]
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