利用纳米载体介导的dsRNA递送系统提高植物病原真菌RNAi效率以保护基于RNAi的作物的概念和考虑因素。

IF 2.1 Q3 MYCOLOGY Frontiers in fungal biology Pub Date : 2022-09-08 eCollection Date: 2022-01-01 DOI:10.3389/ffunb.2022.977502
Poonam Ray, Debashish Sahu, Raghavendra Aminedi, Divya Chandran
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引用次数: 4

摘要

现有的、新出现的和重新出现的植物病原真菌菌株对全球农业生产力构成了重大威胁。植物缺乏抗性来源或病原体通过共同进化破坏抗性,进一步加剧了这种风险。近年来,通过双链(ds)RNA介导的RNA干扰(RNAi)在宿主植物中减弱基本病原体基因,这一现象被称为宿主诱导的基因沉默,作为对抗病原体攻击的一种方式,已引起了人们的极大关注。然而,由于对转基因生物安全的担忧,针对特定国家的转基因立法限制了理想特性在植物中的实际应用。dsRNA/siRNA通过喷雾诱导基因沉默(SIGS)靶向重要真菌基因在寄主植物上的局部应用为作物保护开辟了一条无转基因的途径。然而,有几个因素影响RNAi的结果,包括但不限于植物/真菌中的RNAi机制、dsRNA/siRNA吸收效率、dsRNA/siRNA设计参数、dsRNA稳定性和递送策略、脱靶效应等。这篇综述强调了这些因素的重要性,并提出了在开阔场地条件下设计成功RNAi的计算机和体外实验时应考虑的适当措施。我们还强调,纳米颗粒有望成为在植物系统中部署RNAi分子的智能递送载体,以实现长期作物保护和生态系统兼容性。最后,我们为未来的研究提供了具体的方向,重点是将纳米技术和基于RNAi的真菌控制结合起来进行实际应用。
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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Concepts and considerations for enhancing RNAi efficiency in phytopathogenic fungi for RNAi-based crop protection using nanocarrier-mediated dsRNA delivery systems.

Existing, emerging, and reemerging strains of phytopathogenic fungi pose a significant threat to agricultural productivity globally. This risk is further exacerbated by the lack of resistance source(s) in plants or a breakdown of resistance by pathogens through co-evolution. In recent years, attenuation of essential pathogen gene(s) via double-stranded (ds) RNA-mediated RNA interference (RNAi) in host plants, a phenomenon known as host-induced gene silencing, has gained significant attention as a way to combat pathogen attack. Yet, due to biosafety concerns regarding transgenics, country-specific GMO legislation has limited the practical application of desirable attributes in plants. The topical application of dsRNA/siRNA targeting essential fungal gene(s) through spray-induced gene silencing (SIGS) on host plants has opened up a transgene-free avenue for crop protection. However, several factors influence the outcome of RNAi, including but not limited to RNAi mechanism in plant/fungi, dsRNA/siRNA uptake efficiency, dsRNA/siRNA design parameters, dsRNA stability and delivery strategy, off-target effects, etc. This review emphasizes the significance of these factors and suggests appropriate measures to consider while designing in silico and in vitro experiments for successful RNAi in open-field conditions. We also highlight prospective nanoparticles as smart delivery vehicles for deploying RNAi molecules in plant systems for long-term crop protection and ecosystem compatibility. Lastly, we provide specific directions for future investigations that focus on blending nanotechnology and RNAi-based fungal control for practical applications.

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2.70
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13 weeks
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