RNAi- 介导的葡萄糖转运体 4 (Glut4) 沉默可抑制蝗虫的卵巢发育并增强溴氰菊酯处理的能量消耗

IF 4.2 1区 农林科学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Pesticide Biochemistry and Physiology Pub Date : 2024-07-06 DOI:10.1016/j.pestbp.2024.106014
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摘要

能量代谢对昆虫的发育、繁殖和解毒至关重要。昆虫经常重新分配能量和资源,以管理外部压力,平衡解毒和繁殖的需求。葡萄糖转运 4(Glut4)是一种葡萄糖转运体,参与葡萄糖和脂质代谢。然而,Glut4 在昆虫繁殖中的具体分子机制及其在应对杀虫剂诱导的氧化应激中的作用仍不清楚。本研究鉴定并分析了Locusta migratoria中的LmGlut4。沉默LmGlut4会显著降低脂肪体中卵黄素(Vg)的生物合成和卵母细胞对Vg的吸收,最终阻碍卵巢发育和卵母细胞成熟。敲除 LmGlut4 还会抑制关键昆虫激素的生物合成,如幼虫激素(JH)、20-羟基蜕皮激素(20E)和胰岛素。此外,LmGlut4 基因敲除会导致脂肪体和卵巢中甘油三酯(TG)和糖原含量降低,以及脂肪细胞中三卤糖的生物合成能力下降。此外,dsLmGlut4 处理的蝗虫对溴氰菊酯的敏感性增加,导致解毒过程中甘油三酯消耗增加。这项研究揭示了 LmGlut4 在卵巢中的生物功能,并为探索生物害虫管理策略提供了潜在的靶基因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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RNAi-mediated glucose transporter 4 (Glut4) silencing inhibits ovarian development and enhances deltamethrin-treated energy depletion in Locusta migratoria

Energy metabolism is essential for insect development, reproduction and detoxification. Insects often reallocate energy and resources to manage external stress, balancing the demands of detoxification and reproduction. Glucose transport 4 (Glut4), a glucose transporter, is involved in glucose and lipid metabolism. However, the specific molecular mechanism of Glut4 in insect reproduction, and its role in the response to insecticide-induced oxidative stress remain unclear. In this study, LmGlut4 was identified and analyzed in Locusta migratoria. Silencing of LmGlut4 significantly reduced vitellogenin (Vg) biosynthesis in the fat body and Vg absorption by oocytes, ultimately hindering ovarian development and oocyte maturation. Knockdown of LmGlut4 also inhibited the biosynthesis of key insect hormones, such as juvenile hormone (JH), 20-hydroxyecdysone (20E) and insulin. Furthermore, LmGlut4 knockdown led to reduced triglyceride (TG) and glycogen content in the fat body and ovary, as well as decreased capacity for trehalose biosynthesis in adipocytes. Additionally, dsLmGlut4-treated locusts showed heightened sensitivity to deltamethrin, leading to increased triglyceride depletion during detoxification. This study sheds light on the biological function of LmGlut4 in the ovary and provides potential target genes for exploring biological pest management strategies.

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来源期刊
CiteScore
7.00
自引率
8.50%
发文量
238
审稿时长
4.2 months
期刊介绍: Pesticide Biochemistry and Physiology publishes original scientific articles pertaining to the mode of action of plant protection agents such as insecticides, fungicides, herbicides, and similar compounds, including nonlethal pest control agents, biosynthesis of pheromones, hormones, and plant resistance agents. Manuscripts may include a biochemical, physiological, or molecular study for an understanding of comparative toxicology or selective toxicity of both target and nontarget organisms. Particular interest will be given to studies on the molecular biology of pest control, toxicology, and pesticide resistance. Research Areas Emphasized Include the Biochemistry and Physiology of: • Comparative toxicity • Mode of action • Pathophysiology • Plant growth regulators • Resistance • Other effects of pesticides on both parasites and hosts.
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