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纳米颗粒在作物保护和可持续农业中的抗菌功效。

Antimicrobial efficacy of nano-particles for crop protection and sustainable agriculture.

作者信息

Jali Pallavi, Acharya Srinivas, Mahalik Gyanranjan

机构信息

Department of Botany, Utkal University, Vani Vihar, Bhubaneswar, Odisha, India.

Department of Environmental Science, Government Autonomous College, Phulbani, Odisha, India.

出版信息

Discov Nano. 2024 Jul 15;19(1):117. doi: 10.1186/s11671-024-04059-9.

Abstract

Plant diseases cause colossal crop loss worldwide and are the major yield constraining component in agriculture. Nanotechnology, which has the possible to revolutionize numerous fields of science, innovation, drug, and agriculture. Nanotechnology can be utilized for combating the plant infectious diseases and nano-materials can be utilized as transporter of dynamic elements of pesticides, host defense etc. to the pathogens. The analysis of diseases, finding of pathogens may turn out to be substantially more precise and fast with the utilization of nanosensors. As worldwide demand for food production raises against an evolving atmosphere, nanotechnology could reasonably alleviate numerous challenges in disease managing by diminishing chemical inputs and advancing quick recognition of pathogens. The major goal of this review is to increase growth and productivity using supplements with nanoparticles. (i.e., metals, metal oxides, and carbon) to treat crop diseases and make agricultural practices more productive and sustainable. Prominently, this improved crop may not only be straight connected to the diminished occurrence of pathogenic microorganisms, yet in might possibly add nutritional benefits of the nanoparticles themselves, particularly for the micronutrients important for generating host resistance.

摘要

植物病害在全球范围内造成巨大的作物损失,是农业产量的主要限制因素。纳米技术有可能彻底改变科学、创新、药物和农业等众多领域。纳米技术可用于对抗植物传染病,纳米材料可作为农药、宿主防御等活性成分向病原体的转运载体。利用纳米传感器,疾病分析和病原体检测可能会变得更加精确和快速。随着全球对粮食生产的需求在不断变化的环境中增加,纳米技术可以通过减少化学投入和促进病原体的快速识别,合理缓解疾病管理中的诸多挑战。本综述的主要目标是使用纳米颗粒(即金属、金属氧化物和碳)补充剂来促进生长和提高生产力,以治疗作物病害,使农业生产更高效、更可持续。值得注意的是,这种改良作物不仅可能直接与致病微生物发生率的降低有关,而且可能还会增加纳米颗粒本身的营养益处,特别是对于产生宿主抗性至关重要的微量营养素。

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