SDR112C1 与朱砂蝇(Boisduval)耐杀灭菊酯相关的功能分析

IF 2.9 1区 农林科学 Q1 ENTOMOLOGY
Insect Science Pub Date : 2025-04-01 Epub Date: 2024-06-26 DOI:10.1111/1744-7917.13408
Jinhang Li, Jialu Liu, Lishu Peng, Jingui Liu, Lin Xu, Junfeng He, Longjiang Sun, Guangmao Shen, Lin He
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引用次数: 0

摘要

短链脱氢酶/还原酶(SDRs)广泛分布于各种生物体内,在各种物质(包括药物)的生长、内源和外源代谢过程中发挥着关键作用。据报道,对苯丙菊酯(FEN)有抗性(FeR)的朱砂蝇(Tetranychus cinnabarinus)菌株中 SDR 基因的表达水平上调。然而,这些 SDR 基因在杀螨剂耐受性中的功能仍不明确。本研究发现,与朱砂绢蝇的易感株系(SS)相比,FeR 株系的 SDR 活性明显更高(2.26 倍)。一个名为 SDR112C1 的特定上调 SDR 基因在 FeR 群体中比在 SS 群体中表现出明显的过表达(3.13 倍)。此外,在对 FEN 诱导的反应中,SDR112C1 的表达也显著增加。此外,敲除 SDR112C1 基因会导致 SDR 活性降低和螨虫对 FEN 的活力下降。重要的是,异源表达和体外孵育试验证实,重组 SDR112C1 能有效消耗 FEN。此外,在黑腹果蝇中过表达 SDR112C1 基因可显著降低 FEN 对转基因果蝇的毒性。这些发现表明,SDR SDR112C1 基因的过表达是朱砂蝇耐受 FEN 的一个关键因素。这一发现不仅加深了我们对 SDR 介导的杀螨剂耐受性的理解,而且在细胞色素 P450s、羧基/胆碱酯酶和谷胱甘肽 S 转移酶之外,引入了一个新的解毒酶家族,供我们在实践中考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Functional analysis of SDR112C1 associated with fenpropathrin tolerance in Tetranychus cinnabarinus (Boisduval).

Short-chain dehydrogenases/reductases (SDRs) are ubiquitously distributed across diverse organisms and play pivotal roles in the growth, as well as endogenous and exogenous metabolism of various substances, including drugs. The expression levels of SDR genes are reportedly upregulated in the fenpropathrin (FEN)-resistant (FeR) strain of Tetranychus cinnabarinus. However, the functions of these SDR genes in acaricide tolerance remain elusive. In this study, the activity of SDRs was found to be significantly higher (2.26-fold) in the FeR strain compared to the susceptible strain (SS) of T. cinnabarinus. A specific upregulated SDR gene, named SDR112C1, exhibited significant overexpression (3.13-fold) in the FeR population compared with that in the SS population. Furthermore, the expression of SDR112C1 showed a significant increase in the response to FEN induction. Additionally, knockdown of the SDR112C1 gene resulted in decreased SDR activity and reduced mite viability against FEN. Importantly, heterologous expression and in vitro incubation assays confirmed that recombinant SDR112C1 could effectively deplete FEN. Moreover, the overexpression of the SDR112C1 gene in Drosophila melanogaster significantly decreased the toxicity of FEN to transgenic fruit flies. These findings suggest that the overexpression of SDR SDR112C1 is a crucial factor contributing to FEN tolerance in T. cinnabarinus. This discovery not only enhances our understanding of SDR-mediated acaricide tolerance but also introduces a new family of detoxification enzymes to consider in practice, beyond cytochrome P450s, carboxyl/choline esterases and glutathione S-transferases.

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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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