Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Vol. 13 No. sp5 (2026): Recent Advances in Agriculture

Detoxification enzyme inhibitor mediated synergism of insecticide toxicity in Spodoptera frugiperda (Lepidoptera: Noctuidae)

DOI
https://doi.org/10.14719/pst.15232
Submitted
25 April 2026
Published
12-08-2026

Abstract

Insecticide efficacy against the maize fall armyworm (FAW), Spodoptera frugiperda (J. E. Smith), is closely linked to metabolic detoxification processes that can be influenced by the use of synergists. This study assessed the effect of five selected synergists on the toxicity of five commonly used insecticides against third-instar larvae collected from 2 locations in Odisha, namely Bhubaneswar and Bhawanipatna, under laboratory conditions. In the Bhubaneswar population (BBPL), lambda-cyhalothrin exhibited the highest synergism with piperonyl butoxide (PBO) and N-(propargyloxy) phthalimide with synergistic ratios (SR) of 6.50 and 4.41 respectively. Acephate recorded the highest synergism with triphenyl phosphate (TPP) (SR = 5.85). Diethyl maleate (DEM) showed greater synergism with emamectin benzoate (SR = 3.91) and spinetoram responded notably to PBO (SR = 4.20). In contrast, the Bhawanipatna population (BPPL) showed a stronger and more consistent response to DEM with all five insecticides, with SR values of 6.71 for lambda-cyhalothrin, 6.20 for acephate, 5.10 for spinetoram and 4.76 for emamectin benzoate. Chlorantraniliprole exhibited comparatively lower synergistic responses with most synergists, although DEM produced a substantially higher synergistic ratio in BPPL (SR = 4.39). The least effective synergist was 5-nitrouracil (1.25–1.72) in both populations, indicating a minimal role of uridine diphosphate glycosyltransferases (UGTs) mediated detoxification pathways. The difference in synergistic response between populations suggests involvement of different detoxification enzymes in both populations. Cytochrome P450 monooxygenases and carboxyl esterases appear more influential in BBPL while glutathione S-transferases (GST) are more significant in BPPL. These findings highlight the potential of synergists to improve insecticide efficacy and strengthen insecticide resistance management (IRM) strategies.

References

  1. 1. Wang M, Huang W, Dong Y, Huang Y, Zhang B, Sun G, et al. Temporal analyses of global suitability distribution for fall armyworm based on multiple factors. Ecol Indic. 2025;171:113181. https://doi.org/10.1016/j.ecolind.2025.113181
  2. 2. Kusano E, Kobori Y. Fall armyworm proliferation in mainland Southeast Asia: Government and maize farmer responses [thesis]. Japan: Japan International Research Center for Agricultural Sciences; 2025. https://doi.org/10.64096/0002000931
  3. 3. Kusano E, Poapongsakorn N, Jantarasiri U, Pantakua K, Tran CH, Tar KA, et al. Fall armyworm outbreak in mainland Southeast Asia: Spatial mapping and impact on regional maize production. CABI Agric Biosci. 2025;6(1):0030. https://doi.org/10.1079/ab.2025.0030
  4. 4. Shareef SM, Madhumathi T, Swathi M, Patibanda AK. Toxicity of some insecticides to the fall armyworm Spodoptera frugiperda. Indian J Entomol. 2022;84(3):680–2. https://doi.org/10.55446/IJE.2021.283
  5. 5. Bali R, Singh AK, Bandral RS, Singh M. Toxicity assessment of selected molecules against migratory fall armyworm Spodoptera frugiperda. Int J Adv Biochem Res. 2024;8(9):1451–4. https://doi.org/10.33545/26174693.2024.v8.i9Sr.2386
  6. 6. Mian FM, Khan I, Ullah N, Gondal AH, Ajmal MS, Qureshi MS, et al. Efficacy of insecticides against fall armyworm Spodoptera frugiperda in maize. J Bioresour Manag. 2022;9(2):133–9.
  7. 7. Aziz MFA, Saad HM, Mousa EAM. Efficacy of some insecticides against fall armyworm Spodoptera frugiperda in maize fields. Int J Entomol Res. 2024;9(8):175–9. https://doi.org/10.33545/26174693.2024.v8.i9i.2240
  8. 8. Chen HL, Hasnain A, Cheng QH, Xia LJ, Cai YH, Hu R, et al. Resistance monitoring and mechanism in fall armyworm Spodoptera frugiperda for chlorantraniliprole from Sichuan Province, China. Front Physiol. 2023;14:1180655. https://doi.org/10.3389/fphys.2023.1180655
  9. 9. Ismail SM. Temperature-dependent variation in toxicity of insecticides on fall armyworm Spodoptera frugiperda. Int J Adv Biochem Biol Res. 2025;13(3):245–53.
  10. 10. Lin JY, Deng SW, Liang W, Rana MS, Abdallah MM, Li JX, et al. Identification and functional analysis of CYP9A32, a cytochrome P450 gene associated with emamectin benzoate resistance in Spodoptera frugiperda. Insect Sci. 2025. https://doi.org/10.1111/1744-7917.70179
  11. 11. Tossou E, Tepa-Yotto GT, Goergen G, Tchigossou GM, Tchouakui M, Nguete DN, et al. Genetic variation associated with increased lambda-cyhalothrin resistance in Spodoptera frugiperda (Lepidoptera: Noctuidae) in West Africa. Sci Rep. 2025;15(1):21812. https://doi.org/10.1038/s41598-025-99196-1
  12. 12. Kranthi KR. Insecticide resistance: Monitoring, mechanisms and management manual. Nagpur: Central Institute for Cotton Research; 2005. p. 54–55.
  13. 13. Qie X, Lu W, Aioub AA, Li Y, Wu W, Hu Z. Insight into the detoxification of haedoxan A and the synergistic effects of phrymarolin I against Mythimna separata. Ind Crops Prod. 2020;158:112967. https://doi.org/10.1016/j.indcrop.2020.112967
  14. 14. Moustafa MA, El-Said NA, Alfuhaid NA, Abo-Elinin FM, Mohamed RM, Aioub AA. Monitoring and detection of insecticide resistance in Spodoptera frugiperda (Lepidoptera: Noctuidae): Evidence for field-evolved resistance in Egypt. Insects. 2024;15(9):705. https://doi.org/10.3390/insects15090705
  15. 15. Basit A, Mobarak SH, Khurshid A, Hu C, Smagghe G, Gui S, et al. Deciphering the intricacies of chlorantraniliprole, azadirachtin and uniconazole interactions with fall armyworm in maize: A comprehensive analysis through transcriptomic and metabolomic profiling. Pest Manag Sci. 2025;81:4035–50. https://doi.org/10.1002/ps.8770
  16. 16. Yang Z, Xiao T, Lu K. Contribution of UDP-glycosyltransferases to chlorpyrifos resistance in Nilaparvata lugens. Pest Biochem Physiol. 2023;190:105321. https://doi.org/10.1016/j.pestbp.2022.105321
  17. 17. Khan HA, Khan T. Toxicity and sublethal effects of fluralaner on the development of Spodoptera frugiperda (Lepidoptera: Noctuidae). Crop Prot. 2025;107475. https://doi.org/10.1016/j.cropro.2025.107475
  18. 18. Gutiérrez-Moreno R, Mota-Sanchez D, Blanco CA, Whalon ME, Terán-Santofimio H, Rodriguez-Maciel JC, et al. Field-evolved resistance of the fall armyworm (Spodoptera frugiperda) (Lepidoptera: Noctuidae) to synthetic insecticides in Puerto Rico and Mexico. J Econ Entomol. 2019;112(2):792–802. https://doi.org/10.1093/jee/toy372
  19. 19. Zhang SK, Ren XB, Wang YC, Su J. Resistance in Cnaphalocrocis medinalis (Lepidoptera: Pyralidae) to new chemistry insecticides. J Econ Entomol. 2014;107(2):815–20. https://doi.org/10.1603/EC13506
  20. 20. Pasayat B, Tripathy MK. Enhancement of thiodicarb efficacy using synergists and role of carboxylesterase in potentiation of synergistic activity in brinjal fruit and shoot borer (Leucinodes orbonalis Guenée). Plant Sci Today. 2024. https://doi.org/10.14719/pst.6091
  21. 21. Abbott WS. A method of computing the effectiveness of an insecticide. J Econ Entomol. 1925;18(2):265–7. https://doi.org/10.1093/jee/18.2.265a
  22. 22. LeOra Software. Polo-Plus, POLO for Windows. Petaluma (CA): LeOra Software; 1994.
  23. 23. Metcalf RL. Mode of action of insecticide synergists. Annu Rev Entomol. 1967;12(1):229–56. https://doi.org/10.1146/annurev.en.12.010167.001305
  24. 24. Bernard CB, Philogène BJR. Insecticide synergists: Role, importance and perspectives. J Toxicol Environ Health A. 1993;38(2):199–223. https://doi.org/10.1080/15287399309531712
  25. 25. Liu J, Hao Z, Yang S, Lin Y, Zhong H, Jin T. Insecticide resistance and its underlying synergism in field populations of Spodoptera frugiperda (J. E. Smith) from Hainan Island, China. Phytoparasitica. 2022;50:933–45. https://doi.org/10.1007/s12600-022-01004-3
  26. 26. Muthusamy R, Vengateswari G, Kumarasamy S, Pandi R, Prasannakumar NR, Arul D, et al. Combination effect of azadirachtin and chlorantraniliprole with three synergists against a serious invasive agricultural pest Spodoptera frugiperda (Lepidoptera: Noctuidae). Biocatal Agric Biotechnol. 2024;55:102992. https://doi.org/10.1016/j.bcab.2023.102992
  27. 27. Wang JJ, Wei D, Dou W, Hu F, Liu WF, Wang JJ. Toxicities and synergistic effects of several insecticides against the oriental fruit fly (Diptera: Tephritidae). J Econ Entomol. 2013;106(2):970–8. https://doi.org/10.1603/EC12434
  28. 28. Kaur P, Kang BK. Effect of selected synergists on insecticidal toxicity of deltamethrin and biochemical mechanisms in field populations of tobacco caterpillar from Punjab, India. Phytoparasitica. 2015;43(4):565–75. https://doi.org/10.1007/s12600-015-0475-0
  29. 29. Tripathy MK, Khuntia S, Dash SS, Quadri S, Singh N. Compatibility of selected synergist with diamides and profenophos in controlling shoot and fruit borer (Leucinodes orbonalis) infesting brinjal in two localities of Odisha. J Glob Innov Agric Sci. 2023;11(3):333–40. https://doi.org/10.22194/JGIAS/11.1120
  30. 30. Sahoo BK, Pathak M, Patra S, Waseem MA, Ningthoujam K, Dutta P, et al. Compatibility and synergistic effects of insecticides with Metarhizium anisopliae for sustainable management of Nephotettix virescens in North-Eastern Himalayas. J Anim Plant Sci. 2025;35:1087–100. https://doi.org/10.36899/japs.2025.4.0093
  31. 31. Ming Q, Morrison WR III, Zhu KY, Campbell JF, Scully ED. Effects of synergists on the efficacy of long-lasting insecticide-incorporated netting against Tribolium castaneum (Coleoptera: Tenebrionidae) and Rhyzopertha dominica (Coleoptera: Bostrichidae). J Econ Entomol. 2025;118(2):948–58. https://doi.org/10.1093/jee/toaf025
  32. 32. Liu J, Chang P, Yin R, Wang D, Li R, Tian Z, et al. Synergistic boosting of insecticide efficacy by the phytochemical (−)-(S)-palasonin: A cross-class enhancement for aphid control with laboratory-field concordance. Ind Crops Prod. 2026;241:122772. https://doi.org/10.1016/j.indcrop.2026.122772
  33. 33. Ranabhat S, Quellhorst HE, Black B, Andersen J, Aguinaga B, Hetherington MC, et al. A synergist increases short-term efficacy of long-lasting insecticide-incorporated netting against pyrethroid-resistant maize weevil, Sitophilus zeamais. J Pest Sci. 2025;98(3):1529–40. https://doi.org/10.1007/s10340-025-01884-4

Downloads

Download data is not yet available.