The tomato leafminer, Tuta absoluta, poses a severe threat to tomato production in China, yet regional resistance patterns remain poorly characterized. This study investigates the insecticide resistance status and underlying molecular mechanisms in field populations of T. absoluta across major tomato-producing regions in China. Ten populations were evaluated for susceptibility to seven commonly used insecticides using standardized bioassays, alongside screening for resistance-associated target-site mutations in key genes. The results indicate that most populations remain susceptible to spinetoram, abamectin, and indoxacarb, supporting their continued effectiveness in field control. However, moderate resistance to emamectin benzoate was detected in several populations, with resistance ratios reaching up to 75.09 fold. Additionally, low to moderate resistance to Bacillus thuringiensis (Bt) and broflanilide was observed in certain regions. Although resistance ratios to bifenthrin were relatively low, consistently high LC50 values suggest a widespread reduction in baseline susceptibility. Molecular analyses revealed that the L1014F mutation in the voltage-gated sodium channel (VGSC) gene was fixed across all populations, while M918T and T929I mutations occurred at high frequencies. Notably, no significant correlation was found between these mutations and phenotypic resistance levels, and no resistance-associated mutations were detected in the nAChR gene. These findings highlight the complex and potentially multifactorial nature of resistance in Chinese T. absoluta populations and provide important guidance for optimizing insecticide rotation and resistance management strategies.
Feichen Ming, Shou-Yin Hu, Nan Gu et al.· Insect Science· 0 citations
Neonicotinoid insecticides are widely used to control sap-feeding pests, but their effectiveness is increasingly limited by cytochrome P450-mediated metabolic resistance. Here, we investigated the role of CYP4C64 in nitenpyram (NIT) detoxification in Bemisia tabaci through expression analyses, bioassays, heterologous expression, and in vitro metabolism assays. CYP4C64 was functionally expressed in insect cells using a Bac-to-Bac baculovirus system. UPLC–MS analysis showed that CYP4C64 catalyzed the conversion of NIT to IM-1-4, the major metabolite identified under the experimental conditions, which exhibited substantially lower toxicity than the parent compound. Enzyme kinetic analysis further confirmed the metabolic activity of CYP4C64 toward NIT. These findings provide direct biochemical evidence that CYP4C64 contributes to nitenpyram detoxification in B. tabaci and demonstrate that the Bac-to-Bac expression system is an effective platform for functional characterization of insect P450 enzymes involved in insecticide metabolism.
Wenhan Cheng, Hantang Lu, Chengjia Zhang et al.· Journal of Agricultural and...· 0 citations
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