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Enhanced hydrolysis of β-cypermethrin caused by deletions in the glycin-rich region of carboxylesterase 001G from Helicoverpa armigera. | LitMetric

AI Article Synopsis

  • - The enzyme Carboxylesterase (CarE), specifically the CarE001G variant found in Helicoverpa armigera, plays a crucial role in detoxifying pesticides like β-cypermethrin, commonly used to control lepidopteran pests.
  • - Researchers created four mutant versions of CarE001G with deletions in a specific glycine-rich region, finding that these variants exhibited increased metabolic efficiency against α-naphthyl acetate and enhanced activity against β-cypermethrin.
  • - The study concludes that mutations in the glycine-rich region can qualitatively alter CarE's ability to detoxify β-cypermethrin, potentially leading to resistance in H. armigera in the future

Article Abstract

Background: Carboxylesterase (CarE) is a major class of enzyme involved in the detoxification of toxic xenobiotics in various insect species. Previous work has shown that the carboxylesterase gene CarE001G found in Helicoverpa armigera is more active and can metabolize synthesized pyrethroids, such as β-cypermethrin, one of the commonly used commercial insecticides for lepidopteran pest control. In addition, CarE001G is very special as it has a very specific glycine-rich region located adjacent to its C-terminal. But whether mutations in this unique sequence can change the biochemistry and function of CarE001G are unknown.

Results: In this study, four variants of CarE001G with different deletions in the glycine-rich region were obtained and functionally expressed in Escherichia coli. The recombinant proteins were purified and confirmed by Western blot and mass spectrometry analyses. These mutant enzymes showed high catalytic efficiency toward the model substrate α-naphthyl acetate. Inhibition study showed that β-cypermethrin had relatively strong inhibition on CarE activities. In vitro metabolism assay showed that the mutant enzymes significantly enhanced their metabolic activities toward β-cypermethrin with specific activities between 4.0 and 5.6 nmol L min mg protein. Molecular docking analyses consistently demonstrated that deletion mutations in the glycine-rich region may facilitate the anchoring of the β-cypermethrin molecule in the active binding pocket of the mutant enzymes.

Conclusion: The data show that deletion mutations can cause qualitative change in the capacity of CarEs in the detoxification of β-cypermethrin. This indicates that deletion mutations in the glycine-rich region may have the potential to cause synthesized pyrethroid (SP) resistance in H. armigera in the future. © 2020 Society of Chemical Industry.

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Source
http://dx.doi.org/10.1002/ps.6242DOI Listing

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