促进全球粮食安全和生物压力管理的可持续纳米解决方案

Baisista Saha , Soumya Biswas , Sanchari Datta , Abhik Mojumdar , Soham Pal , Priti Sundar Mohanty , Mrunmay Kumar Giri
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引用次数: 0

摘要

世界人口的快速增长要求提高农业产量,以满足全球粮食需求。由于人口大幅增长,农业用地与日俱增。纳米技术在开发可持续农业技术方面取得了可喜的成果。少数纳米材料已显示出显著的特性,可作为植物的抗逆性增强剂和生长促进剂。纳米颗粒的作用取决于其理化性质、生物毒性、浓度和配方类型,如纳米凝胶、纳米乳液、纳米胶囊和纳米悬浮液。通过促进种子发芽、根和芽的生长以及生物量的整体增加,这些纳米颗粒的智能传输可促进植物生长。有几种纳米粒子已显示出它们有能力对抗植物一生中遇到的各种生物压力。这些纳米粒子通过改变病原体和杂草的基因表达、产生活性氧(ROS)和破坏各种新陈代谢过程而对其产生毒性。不同的研究工作促进了满足农业特殊要求的定制纳米粒子的开发,从而推动了可持续农业方法的采用。在本综述中,我们探讨了各类纳米粒子及其独特的特性。我们还讨论了将这些纳米粒子应用于植物的技术及其对植物生长和不同生物胁迫的后续影响,以及纳米粒子在检测各种植物病害方面的应用。
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Sustainable Nano solutions for global food security and biotic stress management

The rapid increase in world population has necessitated a rise in the agricultural production to fulfill the global food demand. Due to the substantial population growth, agricultural land is steadily diminishing with each passing day. Nanotechnology has shown promising results in the development of sustainable farming techniques. Few nanomaterials have demonstrated remarkable properties to serve as stress tolerance enhancers and growth stimulants for plants. The roles of the nanoparticles depend on their physiochemical properties, biological toxicities, concentrations, and type of formulations such as nanogels, nanoemulsion, nanoencapsulation, and nanosuspensions. Smart delivery of these nanoparticles enhances plant growth by promoting germination of seeds, root and shoot growth, and an overall increase in biomass. Several nanoparticles have shown their capability to combat the diverse biotic stresses that plants encounter during their lifetime. These nanoparticles are toxic to pathogens and weeds by modifying their gene expression, generating reactive oxygen species (ROS), and disrupting various metabolic processes. Different research endeavors have contributed to the development of customized nanoparticles that cater to the specific requirements of agriculture, leading to the adoption of sustainable agricultural methods. In this review, we have explored various categories of nanoparticles along with their distinctive characteristics. We have also discussed the techniques employed for applying these nanoparticles to plants and their subsequent effects on plant growth and different biotic stresses along with an application of nanoparticles for the detection of various plant diseases.

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