A bacterial symbiont and a plant virus enhance insect fitness by inducing physical defenses against fungal parasites
Бактериальный симбионт и растительный вирус повышают приспособленность насекомого, индуцируя физические защиты против грибковых паразитов
2026-06-16
SCID: 54.1/k2dysmsc
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Beauveria bassianaBemisia tabaciRickettsiabegomoviruscuticle reinforcement
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Abstract (AI)
Defensive symbioses in which beneficial microbes protect hosts from natural enemies are ubiquitous across animals and plants, but the underlying mechanisms remain poorly understood. Field surveys and laboratory assays revealed that infection of the invasive whitefly Bemisia tabaci by the bacterial symbiont Rickettsia and plant begomovirus were positively correlated with each other but each negatively correlated with a parasitic fungal infection ( Beauveria bassiana ) in the host. We show that begomovirus conferred whitefly’s resistance to the parasitic fungus by triggering the expression of chitin synthesis pathway genes in whiteflies, reinforcing the cuticle by promoting chitin production. The facultative symbiont Rickettsia facilitated cuticle formation and thereby induced physical defense against entomopathogenic fungus via metabolic cooperation with the obligate symbiont Portiera for the synthesis of phenylalanine and tyrosine in whiteflies, which is used to generate cuticular proteins and pigments. Mutation of chitinase and protease genes in B . bassiana impaired fungal infection of whiteflies. Inhibiting whitefly cuticle formation by repressing chitin and phenylalanine synthesis facilitated fungal infection. Thus, begomovirus and Rickettsia have convergent effects on cuticle defense in whiteflies by impacting distinct molecular pathways. Such defensive symbioses apparently contribute to B . tabaci fitness in the field and our findings reveal that interactions among the host, beneficial microbes, and pathogens have important implications for insect ecology and evolution. This study suggests avenues for pest management by leveraging defensive microbes and targeting the host cuticle.
Key Findings
1
Begomovirus and Rickettsia are positively correlated with each other in field whitefly populations and each is negatively correlated with fungal parasitic infection prevalence.
2
Begomovirus infection in Bemisia tabaci increases resistance to the entomopathogenic fungus Beauveria bassiana by upregulating chitin synthesis pathway genes and reinforcing the cuticle.
3
Convergent effects of begomovirus and Rickettsia on cuticle defenses contribute to B. tabaci fitness in the field and suggest pest management strategies targeting host cuticle or defensive microbes.
4
Experimental inhibition of whitefly cuticle formation by repressing chitin and phenylalanine synthesis increases susceptibility to fungal infection, showing cuticle-mediated defenses are causal for protection.
5
Mutation of fungal chitinase and protease genes impairs B. bassiana infection of whiteflies, indicating fungal enzymes are required to breach cuticular defenses.
6
The bacterial symbiont Rickettsia enhances whitefly cuticle formation and physical defense against B. bassiana via metabolic cooperation with obligate symbiont Portiera to synthesize phenylalanine and tyrosine for cuticular proteins and pigments.
Research Object
Bemisia tabaci whitefly and its associated microbes (begomovirus, Rickettsia, Portiera) in relation to infection by the entomopathogenic fungus Beauveria bassiana
Research Subject
How begomovirus and the bacterial symbiont Rickettsia enhance whitefly fitness by inducing cuticle-based physical defenses against the parasitic fungus Beauveria bassiana via chitin synthesis pathway activation and metabolic cooperation for phenylalanine/tyrosine-mediated cuticle formation
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2026-06-16
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