The symbiont Wolbachia alleviates pesticide susceptibility in the two-spotted spider mite Tetranychus urticae through enhanced host detoxification pathways.

IF 2.9 1区 农林科学 Q1 ENTOMOLOGY
Insect Science Pub Date : 2024-12-01 Epub Date: 2024-02-22 DOI:10.1111/1744-7917.13341
Qing-Tong Ye, Xue Gong, Huan-Huan Liu, Bing-Xuan Wu, Chang-Wu Peng, Xiao-Yue Hong, Xiao-Li Bing
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Abstract

The two-spotted spider mite (Tetranychus urticae) is one of the most well-known pesticide-resistant agricultural pests, with resistance often attributed to changes such as target-site mutations and detoxification activation. Recent studies show that pesticide resistance can also be influenced by symbionts, but their involvement in this process in spider mites remains uncertain. Here, we found that infection with Wolbachia, a well-known bacterial reproductive manipulator, significantly increased mite survival after exposure to the insecticides abamectin, cyflumetofen, and pyridaben. Wolbachia-infected (WI) mites showed higher expression of detoxification genes such as P450, glutathione-S-transferase (GST), ABC transporters, and carboxyl/cholinesterases. RNA interference experiments confirmed the role of the two above-mentioned detoxification genes, TuCYP392D2 and TuGSTd05, in pesticide resistance. Increased GST activities were also observed in abamectin-treated WI mites. In addition, when wild populations were treated with abamectin, WI mites generally showed better survival than uninfected mites. However, genetically homogeneous mites with different Wolbachia strains showed similar survival. Finally, abamectin treatment increased Wolbachia abundance without altering the mite's bacterial community. This finding highlights the role of Wolbachia in orchestrating pesticide resistance by modulating host detoxification. By unraveling the intricate interplay between symbionts and pesticide resistance, our study lays the groundwork for pioneering strategies to combat agricultural pests.

Abstract Image

Wolbachia 共生体通过增强宿主的解毒途径减轻二斑蜘蛛螨对杀虫剂的敏感性。
二斑蜘蛛螨(Tetranychus urticae)是最著名的抗杀虫剂农业害虫之一,其抗药性通常归因于靶点突变和解毒激活等变化。最近的研究表明,杀虫剂抗性也会受到共生体的影响,但共生体在蜘蛛螨虫抗性过程中的参与程度仍不确定。在这里,我们发现,在暴露于阿维菌素、氟虫腈和哒螨灵等杀虫剂后,感染沃尔巴克氏体(一种著名的细菌繁殖操纵因子)会显著提高螨虫的存活率。沃尔巴克氏菌感染(WI)的螨虫表现出较高的解毒基因表达量,如 P450、谷胱甘肽-S-转移酶(GST)、ABC 转运体和羧基/胆碱酯酶。RNA 干扰实验证实了上述两个解毒基因(TuCYP392D2 和 TuGSTd05)在农药抗性中的作用。在阿维菌素处理过的 WI 螨虫体内也观察到了 GST 活性的增加。此外,用阿维菌素处理野生种群时,WI 螨虫的存活率通常高于未感染的螨虫。然而,具有不同沃尔巴克氏体菌株的同种螨的存活率相似。最后,阿维菌素处理在不改变螨虫细菌群落的情况下增加了沃尔巴克氏体的丰度。这一发现凸显了沃尔巴克氏菌通过调节宿主解毒功能在协调杀虫剂抗药性方面的作用。通过揭示共生体与农药抗性之间错综复杂的相互作用,我们的研究为开创防治农业害虫的策略奠定了基础。
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来源期刊
Insect Science
Insect Science 生物-昆虫学
CiteScore
7.80
自引率
5.00%
发文量
1379
审稿时长
6.0 months
期刊介绍: Insect Science is an English-language journal, which publishes original research articles dealing with all fields of research in into insects and other terrestrial arthropods. Papers in any of the following fields will be considered: ecology, behavior, biogeography, physiology, biochemistry, sociobiology, phylogeny, pest management, and exotic incursions. The emphasis of the journal is on the adaptation and evolutionary biology of insects from the molecular to the ecosystem level. Reviews, mini reviews and letters to the editor, book reviews, and information about academic activities of the society are also published.
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