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基于RNA干扰的纳米制剂的进展:革新农业中的作物保护和胁迫耐受性

Advances in RNAi-based nanoformulations: revolutionizing crop protection and stress tolerance in agriculture.

作者信息

Mathur Shivangi, Chaturvedi Ambika, Ranjan Rajiv

机构信息

Plant Molecular Biology Lab, Department of Botany, Dayalbagh Educational Institute Dayalbagh Agra 282005 India

出版信息

Nanoscale Adv. 2025 Mar 4;7(7):1768-1783. doi: 10.1039/d5na00044k. eCollection 2025 Mar 25.

DOI:10.1039/d5na00044k
PMID:40046252
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11877354/
Abstract

Nucleic acid-based therapeutics have the ability to tackle a wide range of diseases and stress tolerance that present significant obstacles for conventional approaches in agriculture. RNA-based medicines have become a promising approach, using nanoformulation treatments to specifically target certain diseases. Nanoformulations offer numerous benefits in comparison to alternative treatment methods, such as precise administration, minimal toxicity, and medication loading compatibility due to their bioactivity. There are a variety of nanoformulations available today, such as liposomes, polymeric nanoparticles (NPs), magnetic NPs, nanogels, and solid lipid nanoparticles (SLNs). RNA-based therapy employs intracellular gene nanoparticles containing messenger RNA (mRNA), which play an important role in stress management and pest as well as disease control. The adoption of mRNA-based technology paves the way for future technological progress. This review focuses on elucidating the process underlying the development of RNA interference (RNAi) and the diverse array of nanocarriers employed for the transportation of RNAi. Currently, this technique is being employed in the field of crop protection to combat diseases, pests, and environmental stress. The article highlights the benefits of RNAi mediated nanoformulations and discusses the significant obstacles that must be overcome to improve the viability of this technology for future applications.

摘要

基于核酸的疗法有能力应对多种疾病以及胁迫耐受性,而这些对于农业中的传统方法来说是重大障碍。基于RNA的药物已成为一种很有前景的方法,即使用纳米制剂疗法来特异性地靶向某些疾病。与其他治疗方法相比,纳米制剂具有诸多优势,比如给药精准、毒性极小,并且由于其生物活性而具有药物负载兼容性。如今有多种纳米制剂,如脂质体、聚合物纳米颗粒(NPs)、磁性纳米颗粒、纳米凝胶和固体脂质纳米颗粒(SLNs)。基于RNA的疗法采用含有信使RNA(mRNA)的细胞内基因纳米颗粒,这些纳米颗粒在胁迫管理以及病虫害和疾病控制中发挥着重要作用。基于mRNA的技术的采用为未来的技术进步铺平了道路。本综述着重阐明RNA干扰(RNAi)发展背后的过程以及用于运输RNAi的各种纳米载体。目前,这项技术正在作物保护领域用于对抗疾病、害虫和环境胁迫。本文强调了RNAi介导的纳米制剂的优势,并讨论了为提高该技术在未来应用中的可行性必须克服的重大障碍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd10/11934413/764fc89e2ebd/d5na00044k-p3.jpg
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本文引用的文献

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Size variations of mesoporous silica nanoparticle control uptake efficiency and delivery of AC2-derived dsRNA for protection against tomato leaf curl New Delhi virus.
介孔硅纳米颗粒粒径的变化控制着 AC2 衍生双链 RNA 的摄取效率和递送,从而实现对番茄曲叶病毒的保护。
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Intracellular delivery of virus-like particles using a sheddable linker.利用可脱落接头实现病毒样颗粒的细胞内递送。
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A Combinatorial Nanobased Spray-Induced Gene Silencing Technique for Crop Protection and Improvement.一种基于组合纳米的喷雾诱导基因沉默技术用于作物保护与改良。
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