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Updated: Jan 12, 2026

Functional Characterization of Carboxylesterases in Insecticide Resistant House Flies, Musca Domestica
Published on: August 23, 2018
Bifunctional Carboxylesterase COE52 Mediates Xanthotoxin Detoxification through Hormonal Regulation and Structural
Jun Li1, Xiaodan Huang1, Xinyu Zhao1
1Key Laboratory of Agriproducts Quality and Biosafety (Ministry of Education), Anhui Province Key Laboratory of Crop Integrated Pest Management, School of Plant Protection, Anhui Agricultural University, Hefei 230036, China.
Abstract:
Polyphagous insects utilize carboxylesterases (COEs) to defense against plant allelochemicals, though the mechanisms underlying COE-mediated detoxification remain elusive. Using the xanthotoxin-Spodoptera litura model, we reveal a detoxification framework integrating hormonal regulation and catalytic plasticity. The 20-hydroxyecdysone receptor EcR/USP coordinates stage-specific COE induction during feeding phases, as evidenced by 30.87-43.21% COE052 suppression post-RNAi and increased larval xanthotoxin susceptibility. Promoter activation assays identified EcR/USP-responsive elements, with mutagenesis revealing the critical -495/-481 regulatory sequence in COE052. Functionally, COE052 demonstrates dual functionality, achieving 31.41% xanthotoxin degradation concurrent with 44.34% ROS reduction. Structural analyses characterized three noncatalytic residues (Gly130/Thr463/His464) as an allosteric gatekeeper, whose mutations reduced metabolic efficiency (16.83-25.83%) via substrate-network destabilization. Furthermore, all mutants displayed impaired oxidative stress tolerance in prokaryotic systems, validating synergistic roles in redox maintenance. These discoveries culminate in a tripartite defense model integrating hormonal coordination, transcriptional adaptability, and structural evolution, wherein noncatalytic domains critically potentiate COE052's functional spectrum.

