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

Research Articles

Vol. 13 No. sp7 (2026): International Conference on Agricultural Sustainability

The efficacy of Fusarium spp. as an entomopathogen against Aphis gossypii (Homoptera: Aphididae) and the influence of mancozeb on Fusarium spp. in chilli (Capsicum annuum L.)

DOI
https://doi.org/10.14719/pst.14356
Submitted
4 March 2026
Published
15-09-2026

Abstract

Chilli pepper (Capsicum annuum L.) is a valuable horticultural crop whose productivity is significantly hindered by aphid infestations, particularly Aphis gossypii (Homoptera: Aphididae). This pest inflicts direct damage through sap extraction and indirectly diminishes yield by transmitting deleterious viruses, such as pepper yellow leaf curl virus (PYLCV), which can cause substantial yield losses or complete crop failure. Currently, aphid management relies predominantly on synthetic insecticides, raising concerns about environmental sustainability, human health and the development of resistance. Therefore, there is an urgent need for environmentally sustainable alternatives that are based on biological control agents. Entomopathogenic fungi represent a promising solution and Fusarium spp. have been identified as potential aphid pathogens. This study investigated the potential of Fusarium spp. as a biological control agent against A. gossypii on chilli plants and evaluated its efficacy under varying fungicide treatments and conidial concentrations. Laboratory experiments were conducted at the Laboratory of Pests and Diseases, Faculty of Agriculture, Hasanuddin University, using a completely randomised design. Six conidial concentrations (120000; 12000; 1200; 0.120; and 0.012 ppm) and a control were applied, with five replications per treatment. Aphid mortality and infection symptoms were recorded to assess pathogenicity. These results indicate that Fusarium spp. exhibited significant pathogenicity against A. gossypii, with aphid mortality increasing in a concentration-dependent manner. Fungicide exposure affects fungal efficacy, underscoring the importance of compatibility in integrated pest management systems. Overall, Fusarium spp. demonstrated strong potential as an effective biological control agent to support sustainable chilli production and enhance the quality of chilli commodities in Indonesia.

References

  1. 1. Tai S, Tang Z, Li B, Wang S, Guo X. Intelligent recognition and automated production of chili peppers: a review addressing varietal diversity and technological requirements. Agriculture. 2025;15(11):1200. https://doi.org/10.3390/agriculture15111200
  2. 2. Syah RF, Mawandha HG, Afroda H, Yonglie W. Increasing the growth and production of chili plants (Capsicum annuum var. longum) by administering various concentrations and doses of JAKABA biofertilizer. J Agron Tanam Trop (Juatika). 2025;7(2):417–22. https://doi.org/10.36378/juatika.v7i2.4272
  3. 3. Olatunji TL, Afolayan AJ. The suitability of chilli pepper (Capsicum annuum L.) for alleviating human micronutrient dietary deficiencies: a review. Food Sci Nutr. 2018;6(8):2239–51. https://doi.org/10.1002/fsn3.790
  4. 4. Biebersteinia B. Natural products, traditional uses and pharmacological activities of the genus Biebersteinia. J Ethnopharmacol. 2020;258:112907.
  5. 5. Alghamdi M, Rathinasabapathy T, Komarnytsky S. Capsaicinoid profiles, phenolic content and antioxidant properties of chilli peppers grown in urban settings. Int J Mol Sci. 2025;26(10):4916. https://doi.org/10.3390/ijms26104916
  6. 6. Saptana S, Ariningsih E, Ashari A, Gunawan E, Perwita AD, Sukmaya SG, et al. Competitiveness and impact of government policy on chilli in Indonesia. Open Agric. 2022;7(1):226–37. https://doi.org/10.1515/opag-2022-0083
  7. 7. Bui DK. Biological control of Aphis gossypii on red chilli pepper using locally isolated Beauveria bassiana and Metarhizium anisopliae. J Proteksi Tanam. 2025;9(2):95–107. https://doi.org/10.25077/jpt.9.2.95-107.2025
  8. 8. Sharma L, Marques G. Fusarium, an entomopathogen—a myth or reality? Pathogens. 2018;7(4):93. https://doi.org/10.3390/pathogens7040093
  9. 9. Srivastava R. Fusarium pallidoroseum: a potential entomopathogenic agent for the biological management of Aphis gossypii. J Appl Nat Sci. 2021;13(2):941–46. https://doi.org/10.31018/jans.v13i2.2687
  10. 10. Undang U, Hartini E, Fauziah W, Sundari RS, Ahmad F. Optimizing frass and PGPR on the growth and yield of kailan (Brassica oleracea). J Agron Indones. 2025;53(2):245–56. https://doi.org/10.24831/jai.v53i2.63095
  11. 11. Akimoto YL, Akimoto SI. Evaluation of an aphid-rearing method using excised leaves and agar medium. Hokkaido Univ Collect Sch Acad Pap HUSCAP. 2018.
  12. 12. Spence EL, Chandler D, Edgington S, Berry SD, Martin G, O’Sullivan C, et al. A standardised bioassay method using a bench-top spray tower to evaluate entomopathogenic fungi for control of the greenhouse whitefly, Trialeurodes vaporariorum. Pest Manag Sci. 2020;76(9):3045–53. https://doi.org/10.1002/ps.5794
  13. 13. Slowik AR, Hesketh H, Sait SM, Licht HHDF. A rapid method for measuring in vitro growth in entomopathogenic fungi. Insects. 2023;14(8):703. https://doi.org/10.3390/insects14080703
  14. 14. Cheng J, Shao Z, Zhu Z, Wang S, Gong D, Xu C, et al. An agar–water-assisted OD650 calibration model for standardised quantification of Beauveria bassiana conidia in biopesticide quality control and bioassay applications. J Fungi (Basel). 2026;12(6):396. https://doi.org/10.3390/jof12060396
  15. 15. Portilla M, Zhang M, Glover JP, Reddy GVP, Johnson C. Lethal concentration and sporulation by contact and direct spray of the entomopathogenic fungus Beauveria bassiana on different stages of Nezara viridula (Heteroptera: Pentatomidae). J Fungi (Basel). 2022;8(11):1164. https://doi.org/10.3390/jof8111164
  16. 16. Islam MA, Nurul Amin SM, Brown CL, Juraimi AS, Uddin MK, Arshad A. Determination of median lethal concentration (LC50) for endosulfan, heptachlor and dieldrin pesticides to African catfish, Clarias gariepinus and their impact on its behavioural patterns and histopathological responses. Toxics. 2021;9(12):340. https://doi.org/10.3390/toxics9120340
  17. 17. Rodríguez-González Á, Guerra M, Ramírez-Lozano D, Casquero PA, Gutiérrez S. Germination and agronomic traits of Phaseolus vulgaris L. beans sprayed with Trichoderma strains and attacked by Acanthoscelides obtectus. Agronomy. 2021;11(11):2130. https://doi.org/10.3390/agronomy11112130
  18. 18. Gerin D, Pollastro S, Raguseo C, Angelini RMDM, Faretra F. A ready-to-use single- and duplex-TaqMan qPCR assay to detect and quantify the biocontrol agents Trichoderma asperellum and Trichoderma gamsii. Front Microbiol. 2018;9:2073. https://doi.org/10.3389/fmicb.2018.02073
  19. 19. Zeng ZY, Liu ZQ, Yang AL, Li YX, Wang YL. Lethal effects of phyllosphere fungi associated with local plants on invasive plant Ageratina adenophora seedlings. Microorganisms. 2025;13(1):29.
  20. 20. Janli D, Purwanto MGM, Artadana IB. Extraction and toxicity assay of mycotoxin from entomopathogenic fungi isolate of Kusuma Agrowisata Orchard, Batu, Jawa Timur, Indonesia. KnE Life Sci. 2017;3(5):63–74. https://doi.org/10.18502/kls.v3i5.979
  21. 21. Banu N, Sharada MS. Inhibitory effects of mancozeb on growth and stimulation of resistance against Fusarium wilt of brinjal. Bioscan. 2018;13(1):285–90. https://doi.org/10.13140/RG.2.2.20824.16649
  22. 22. Walia A, Mehta P, Guleria S, Chauhan A, Shirkot CK. Impact of fungicide mancozeb at different application rates on soil microbial populations, soil biological processes and enzyme activities in soil. Appl Microbiol Biotechnol. 2014;2014:702909. https://doi.org/10.1155/2014/702909
  23. 23. Carla A, Gonçalves A, Tiago PV, Oliveira NT. Entomopathogenic Fusarium species: a review of their potential for the biological control of insects, implications and prospects. J Fungi (Basel). 2019;5(2):33.
  24. 24. Sahid A, Akhsan N, Sundari F. Fusarium keratoplasticum TKKS-1: a potential native entomopathogenic fungus to control armyworm, Spodoptera litura Fabricius (Lepidoptera: Noctuidae), on mustard plants. J Hama Penyakit Tumbuh Trop. 2026;12(6):23–30. https://doi.org/10.23960/jhptt.12623-30

Downloads

Download data is not yet available.