基于工程细菌和纳米材料的蜜蜂菌落RNAi基因调控

IF 1.9 4区 农林科学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jinqiong Shan, Qi Xu, Ruiyi Cheng, Yujie Duan, Chao Chen
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引用次数: 0

摘要

蜜蜂作为不可缺少的传粉者,可以促进农业生产,维持生态平衡。由于蜜蜂的群居性,研究蜜蜂群体具有重要的意义。RNA干扰(RNAi)已成为蜜蜂研究的有力工具。然而,RNAi在蜜蜂群体中的应用经常受到与dsRNA的高效传递和大量合成相关的挑战的阻碍。本研究利用pET28-BL21(DE3) RNase III-体系合成的纳米材料包封dsRNA (SPc-loaded dsRNA),建立了一种新颖的现场RNAi方法。首先,我们证明了蜜蜂更喜欢含有超声波破坏大肠杆菌的蜂蜜溶液。其次,我们发现SPc不仅可以有效地保护dsRNA不被蜜蜂肠道液降解,还可以提高RNAi的效率。最后,我们观察到在配备自动喂食器的小型蜂箱中实施RNAi后,通过在野外环境中递送装载spc的dsRNA,靶基因表达水平显著降低。这是一种在野外以大肠杆菌和SPc为基础对蜂群实施RNAi的创新方法。该方法为蜜蜂的dsRNA合成和RNAi在蜜蜂群体中的实现提供了有价值的见解。这种方法有望促进蜂群水平的蜜蜂研究,最终为生态平衡和生物多样性做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gene Regulation by RNAi on Apis mellifera ligustica Colonies Based on Engineering Bacteria and Nanomaterials

Gene Regulation by RNAi on Apis mellifera ligustica Colonies Based on Engineering Bacteria and Nanomaterials

Honey bees, as indispensable pollinators, can promote agricultural production and maintain ecological balance. Because of honey bees' eusociality, studying honeybee colonies is of great importance. RNA interference (RNAi) has emerged as a powerful tool for honey bee research. However, the application of RNAi in honey bee colonies is frequently impeded by challenges related to the efficient delivery and mass synthesis of dsRNA. In this study, we developed a novel field-based RNAi method for Apis mellifera ligustica Spinola (Hymenoptera: Apidae) colonies by feeding them nanomaterial-encapsulated dsRNA (SPc-loaded dsRNA) synthesized using the pET28-BL21(DE3) RNase III- system. Firstly, we demonstrated that A. mellifera preferred honey solutions containing ultrasonically disrupted E. coli to the original solutions. Secondly, we found that SPc not only effectively protected dsRNA from degradation by honey bee intestinal fluids but also enhanced RNAi efficiency. Finally, we observed a significant reduction in target gene expression levels after implementing RNAi in small hives equipped with automatic feeders, by delivering SPc-loaded dsRNA in a field setting. This is an innovative method to implement RNAi on honey bee colonies based on E. coli and the SPc in the field. The approach provides valuable insights into dsRNA synthesis for honey bees and RNAi implementation in honey bee colonies. This approach holds promise for promoting honey bee research on colony level, ultimately contributing to ecological balance and biodiversity.

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来源期刊
CiteScore
4.30
自引率
4.50%
发文量
115
审稿时长
12 months
期刊介绍: Archives of Insect Biochemistry and Physiology is an international journal that publishes articles in English that are of interest to insect biochemists and physiologists. Generally these articles will be in, or related to, one of the following subject areas: Behavior, Bioinformatics, Carbohydrates, Cell Line Development, Cell Signalling, Development, Drug Discovery, Endocrinology, Enzymes, Lipids, Molecular Biology, Neurobiology, Nucleic Acids, Nutrition, Peptides, Pharmacology, Pollinators, Proteins, Toxicology. Archives will publish only original articles. Articles that are confirmatory in nature or deal with analytical methods previously described will not be accepted.
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