Screening and functional validation of the core detoxification genes conferring broad‐spectrum response to insecticides in Spodoptera frugiperda

Author:

Lu Zhihui1ORCID,Lu Kai2ORCID,Li Yahong3,Xiao Tianxiang2,Zhou Zhonglin1,Chen Yaping1,Liu Jianhui4,Sun Zhongxiang1ORCID,Gui Furong1ORCID

Affiliation:

1. State Key Laboratory of Conservation and Utilization of Biological Resources of Yunnan, College of Plant Protection, Yunnan Agricultural University Kunming China

2. Anhui Province Key Laboratory of Crop Integrated Pest Management, Anhui Province Engineering Laboratory for Green Pesticide Development and Application, School of Plant Protection Anhui Agricultural University Hefei China

3. Yunnan Plant Protection and Quarantine Station Kunming China

4. Yuxi Plant Protection and Quarantine Station in Yunnan Yuxi China

Abstract

AbstractBackgroundFall armyworm, Spodoptera frugiperda, a formidable agricultural pest, has developed resistance to various synthetic insecticides. However, how S. frugiperda utilizes its limited energy and resources to deal with various insecticides remains largely unexplored.ResultsWe utilized transcriptome sequencing to decipher the broad‐spectrum adaptation mechanism of S. frugiperda to eight insecticides with distinct modes‐of‐action. Analysis of the Venn diagram revealed that 1014 upregulated genes and 778 downregulated genes were present in S. frugiperda treated with at least five different insecticides, compared to the control group. Exposure to various insecticides led to the significant upregulation of eight cytochrome P450 monooxygenases (P450s), four UDP glucosyltransferases (UGTs), two glutathione‐S‐transferases (GSTs) and two ATP‐binding cassette transporters (ABCs). Among them, the sfCYP340AD3 and sfCYP4G74 genes were demonstrated to respond to stress from six different insecticides in S. frugiperda, as evidenced by RNA interference and toxicity bioassays. Furthermore, homology modeling and molecular docking analyses showed that sfCYP340AD3 and sfCYP4G74 possess strong binding affinities to a variety of insecticides.ConclusionCollectively, these findings showed that S. frugiperda utilizes a battery of core detoxification genes to cope with the exposure of synthetic insecticides. This study also sheds light on the identification of efficient insecticidal targets gene and the development of resistance management strategies in S. frugiperda, thereby facilitating the sustainable control of this serious pest. © 2024 Society of Chemical Industry.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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