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May 17, 2026Archives of Insect Biochemistry and Physiology0 citations

Comparative Insights Into Detoxification, Regulation, and Evolution of Neonicotinoid Resistance in Three Planthoppers

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MCMinyoung ChoiMKMurtaza KhanJKJuil Kim

Key Points

  • To synthesize knowledge on the evolution and molecular mechanisms of neonicotinoid resistance in planthoppers.
  • Reviewed resistance monitoring data across different regions and species
  • Explored molecular mechanisms via transcriptomic and genetic techniques, including RNAi and genome editing
  • Analyzed regulatory networks involved in detoxification pathways
  • High levels of resistance to neonicotinoids are attributed primarily to metabolic detoxification through cytochrome P450 enzymes, particularly CYP6ER1
  • Transcriptomic analyses show that regulatory networks, such as CncC/MafK, govern overexpression of CYPs
  • Comparative evidence reveals convergent evolution of detoxification mechanisms among planthopper species.

Abstract

ABSTRACT Planthoppers, the brown planthopper (BPH, Nilaparvata lugens ), white‐backed planthopper (WBPH, Sogatella furcifera ), and small BPH (SBPH, Laodelphax striatellus ) are among the most destructive rice pests in Asia. Neonicotinoid insecticides, particularly imidacloprid, have been widely deployed for their control, but intensive use has driven rapid evolution of high‐level resistance across multiple species and regions. Long‐term monitoring reveals pronounced spatial and temporal variation in resistance levels, shaped by local selection pressure and seasonal migration dynamics. Resistance is predominantly mediated by metabolic detoxification, with cytochrome P450 monooxygenases (CYPs), especially CYP6ER1 in BPH and its orthologs in WBPH and SBPH playing a central role, as confirmed by RNAi, heterologous expression, and genome‐editing studies. Carboxylesterases, glutathione S‐transferases, UDP‐glycosyltransferases, and ATP‐binding cassette transporters contribute additional detoxification capacity, whereas target‐site mutations in nicotinic acetylcholine receptors remain comparatively minor in field populations. Transcriptomic analyses reveal that regulatory networks, including CncC/MafK, HNF4, and MAPK signaling‐govern CYP overexpression, with comparative evidence highlighting convergent evolution of detoxification pathways across species. This review synthesizes current knowledge on resistance monitoring, molecular mechanisms, and evolutionary dynamics of neonicotinoid resistance in rice planthoppers, with emphasis on the BPH–imidacloprid system and comparative insights from WBPH and SBPH. Implications for integrated resistance management and sustainable pest control, including RNAi‐based approaches, are also discussed.

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Cite This Study

Choi et al. (2026) studied this question.

synapsesocial.com/papers/6a095af37880e6d24efe0b56https://doi.org/10.1002/arch.70165
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Metabolic Reprogramming Supports Neonicotinoid Resistance in the Brown Planthopper, Nilaparvata lugens2026
  2. 2Identical threats of rice: Insights into biotypes of brown planthopper (Nilaparvata lugens stal)2025
  3. 3Sublethal Effects of Insecticides on Rice Planthoppers: Implications for Pest Management and Agricultural Sustainability2026 · 1 citations
  4. 4Silencing of CYP4C61 Disrupts Dopamine Metabolism and Impairs Adaptation to Resistant Rice in the Virulent Brown Planthopper (Nilaparvata lugens)2026
  5. 5The brown plant hopper as a recurrent danger to high-yielding rice cultivation2021