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用于昆虫抗杀虫剂的CRISPR/Cas技术

CRISPR/Cas Technology in Insect Insecticide Resistance.

作者信息

Xu Qiuchen, Wang Mingyun, Zeng Jiahui, Sun Hangzhen, Wei Xiaoqi, Jiang Hui, Shentu Xuping, Sun Dan

机构信息

Key Laboratory of Microbiological Metrology, Measurement & Bio-Product Quality Security, State Administration for Market Regulation, College of Life Science, China Jiliang University, Hangzhou 310018, China.

出版信息

Insects. 2025 Mar 26;16(4):345. doi: 10.3390/insects16040345.


DOI:10.3390/insects16040345
PMID:40332816
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12027801/
Abstract

Chemicals and biological insecticides play a crucial role as pest management strategies in modern agriculture and forestry. However, their excessive and unreasonable use inevitably leads to varying degrees of resistance among insect populations, which seriously affects the sustainability of insecticide use. One primary reason for this resistance is alterations or mutations in insect gene expression. One class of genes encodes proteins that serve as critical targets for insecticides to exert their toxic effects in insects, while another class of genes encodes proteins involved in the detoxification process of insecticides within insects. Reverse genetics has become a vital research tool for studying the molecular mechanisms underlying changes and mutations in these target genes and their impact on insect resistance. The advent of CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) and the CRISPR-associated gene Cas as gene-editing technologies has significantly advanced our understanding of how insects adapt to and resist insecticides. This article aims to provide a comprehensive and objective review of the progress made using the CRISPR/Cas system in various arthropods within the field of pest control.

摘要

化学药剂和生物杀虫剂在现代农业和林业的害虫管理策略中发挥着关键作用。然而,它们的过度和不合理使用不可避免地导致昆虫种群产生不同程度的抗性,这严重影响了杀虫剂使用的可持续性。这种抗性的一个主要原因是昆虫基因表达的改变或突变。一类基因编码的蛋白质是杀虫剂在昆虫体内发挥毒性作用的关键靶标,而另一类基因编码的蛋白质参与昆虫体内杀虫剂的解毒过程。反向遗传学已成为研究这些靶标基因变化和突变的分子机制及其对昆虫抗性影响的重要研究工具。CRISPR(成簇规律间隔短回文重复序列)和CRISPR相关基因Cas作为基因编辑技术的出现,极大地推进了我们对昆虫如何适应和抵抗杀虫剂的理解。本文旨在全面、客观地综述在害虫防治领域中,利用CRISPR/Cas系统在各种节肢动物中所取得的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c2/12027801/7db06220ba92/insects-16-00345-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c2/12027801/6eb00b317aa6/insects-16-00345-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c2/12027801/7db06220ba92/insects-16-00345-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c2/12027801/6eb00b317aa6/insects-16-00345-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92c2/12027801/7db06220ba92/insects-16-00345-g002.jpg

相似文献

[1]
CRISPR/Cas Technology in Insect Insecticide Resistance.

Insects. 2025-3-26

[2]
Progress and Prospects of CRISPR/Cas Systems in Insects and Other Arthropods.

Front Physiol. 2017-9-6

[3]
Unveiling the Genetic Symphony: Harnessing CRISPR-Cas Genome Editing for Effective Insect Pest Management.

Plants (Basel). 2023-11-24

[4]
Physiological and Molecular Mechanisms of Lepidopteran Insects: Genomic Insights and Applications of Genome Editing for Future Research.

Int J Mol Sci. 2024-11-18

[5]
[Research advances on the development and application of clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein system].

Zhonghua Shao Shang Za Zhi. 2021-7-20

[6]
Genome mapping coupled with CRISPR gene editing reveals a P450 gene confers avermectin resistance in the beet armyworm.

PLoS Genet. 2021-7

[7]
Advances in Editing Silkworms () Genome by Using the CRISPR-Cas System.

Insects. 2021-12-27

[8]
Revolutionizing Tuberculosis Management With Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)-Cas Technology: A Comprehensive Literature Review.

Cureus. 2024-10-17

[9]
A tiny sample rapid visual detection technology for imidacloprid resistance in Aphis gossypii by CRISPR/Cas12a.

Sci Total Environ. 2024-11-15

[10]
Nanomaterials for intelligent CRISPR-Cas tools: improving environment sustainability.

Environ Sci Pollut Res Int. 2024-12

引用本文的文献

[1]
Ribosomal RNA-Specific Antisense DNA and Double-Stranded DNA Trigger rRNA Biogenesis and Insecticidal Effects on the Insect Pest .

Int J Mol Sci. 2025-8-4

[2]
Perspectives of RNAi, CUADb and CRISPR/Cas as Innovative Antisense Technologies for Insect Pest Control: From Discovery to Practice.

Insects. 2025-7-21

本文引用的文献

[1]
The role of GPI-anchored membrane-bound alkaline phosphatase in the mode of action of Bt Cry1A toxins in the diamondback moth.

Fundam Res. 2024-5-27

[2]
Life-history adaptation under climate warming magnifies the agricultural footprint of a cosmopolitan insect pest.

Nat Commun. 2025-1-18

[3]
Susceptibility to organophosphate insecticides in Aedes aegypti (Diptera: Culicidae) from northern Colombia and associated resistance mechanisms.

Parasit Vectors. 2025-1-14

[4]
Spatiotemporal expansion of dengue in Brazilian Amazon between 2001 and 2021.

Sci Rep. 2025-1-6

[5]
A tiny sample rapid visual detection technology for imidacloprid resistance in Aphis gossypii by CRISPR/Cas12a.

Sci Total Environ. 2024-11-15

[6]
A midgut transcriptional regulatory loop favors an insect host to withstand a bacterial pathogen.

Innovation (Camb). 2024-7-25

[7]
A breath of fresh air: impact of insect-borne protozoan parasites on the respiratory system.

Trends Parasitol. 2024-8

[8]
Retrotransposon-mediated disruption of a chitin synthase gene confers insect resistance to Bacillus thuringiensis Vip3Aa toxin.

PLoS Biol. 2024-7

[9]
Direct parental CRISPR gene editing in the predatory bug Orius strigicollis, a biocontrol agent against small arthropods.

Pest Manag Sci. 2024-10

[10]
Eliminating malaria vectors with precision-guided sterile males.

Proc Natl Acad Sci U S A. 2024-7-2

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