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Endophytic entomopathogenic fungi shape herbivore behavior and plant–insect interactions: Implications for biological control

Hussien, Rana H. M., Kortsinoglou, Alexandra M., Wood, Martyn J., Kouvelis, Vassili N., Mellikeche, Wanissa, Touray, Mustapha, Tembeni, Babalwa, Alzain, Mazen, Alotaibi, Faisal, Sobhy, Islam S. ORCID: https://orcid.org/0000-0003-4984-1823, Saud, Zack, Loveridge, E. Joel, Eastwood, Daniel C. and Butt, Tariq M. 2026. Endophytic entomopathogenic fungi shape herbivore behavior and plant–insect interactions: Implications for biological control. Pathogens 15 (7) , 735. 10.3390/pathogens15070735

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Abstract

Entomopathogenic fungi (EPF) are well established as biological control agents, but their emerging role as endophytes reveals a broader and more powerful function in crop protection. By colonizing plant tissues, endophytic entomopathogenic fungi (EEPF) create a dynamic tripartite interaction between plants, fungi, and herbivores, enabling systemic, plant-mediated pest suppression. This review synthesizes current knowledge on the behavioral and ecological responses of herbivorous arthropods to EEPF-colonized plants, with an emphasis on the mechanisms and implications for integrated pest management (IPM). Growing evidence indicates that EEPF consistently modify herbivore behavior and performance across diverse crops and insect taxa. Colonization frequently alters feeding, host selection, and oviposition, often deterring pests, although mediated responses may vary among fungal species, host plants, insect taxa, and environmental conditions. These responses are driven by EEPF-induced changes in plant chemistry, including shifts in volatile organic compounds (VOCs) and defensive metabolites. In parallel, EEPF impair insect fitness by delaying development, reducing survival, and lowering fecundity, thereby suppressing pest populations. These plant-mediated and behavioral changes extend to multitrophic interactions, potentially affecting associations with natural enemies and the transmission efficiency of some insect vectors of plant viruses. Despite rapid progress, critical gaps remain in resolving the mechanistic basis of these interactions and their stability under field conditions. Advancing the application of EEPF will require integrated approaches combining microbial ecology, chemical ecology, and insect behavioral biology. Harnessing these interactions offers a compelling pathway to reduce reliance on synthetic pesticides while enhancing the resilience and sustainability of agricultural systems.

Item Type: Article
Date Type: Publication
Status: Published
Schools: Schools > Medicine
Schools > Biosciences
Publisher: MDPI
Date of First Compliant Deposit: 20 July 2026
Date of Acceptance: 10 July 2026
Last Modified: 20 Jul 2026 10:45
URI: https://orca.cardiff.ac.uk/id/eprint/188309

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