Qiao Heng, Chen Jingyi, Dong Min, Shen Jie, Yan Shuo
Department of Plant Biosecurity, College of Plant Protection, China Agricultural University, Beijing 100193, China.
Nanomaterials (Basel). 2024 Nov 22;14(23):1874. doi: 10.3390/nano14231874.
The production of healthy agricultural products has increased the demand for innovative and sustainable plant protection technologies. RNA interference (RNAi), described as post-transcriptional gene silencing, offers great opportunities for developing RNA pesticides for sustainable disease and pest control. Compared with traditional synthesized pesticides, RNA pesticides possess many advantages, such as strong targeting, good environmental compatibility, and an easy development process. In this review, we systematically introduce the development of RNAi technology, highlight the advantages of RNA pesticides, and illustrate the challenges faced in developing high-efficiency RNA pesticides and the benefits of nanocarriers. Furthermore, we introduce the process and mechanism of nanocarrier-mediated RNAi technology, summarize the applications of RNA pesticides in controlling plant pathogens and pests, and finally outline the current challenges and future prospects. The current review provides theoretical guidance for the in-depth research and diversified development of RNA pesticides, which can promote the development and practice of nanocarrier-mediated RNAi.
健康农产品的生产增加了对创新和可持续植物保护技术的需求。RNA干扰(RNAi),即转录后基因沉默,为开发用于可持续病虫害防治的RNA农药提供了巨大机遇。与传统合成农药相比,RNA农药具有许多优点,如靶向性强、环境兼容性好、开发过程简便。在本综述中,我们系统介绍了RNAi技术的发展,突出了RNA农药的优势,并阐述了开发高效RNA农药所面临的挑战以及纳米载体的益处。此外,我们介绍了纳米载体介导的RNAi技术的过程和机制,总结了RNA农药在控制植物病原体和害虫方面的应用,最后概述了当前的挑战和未来的前景。本综述为RNA农药的深入研究和多样化发展提供了理论指导,可促进纳米载体介导的RNAi的发展和实践。