纳米压力智能农业:纳米技术能提供干旱和盐碱智能作物吗?

Ali Raza, Sidra Charagh, Hajar Salehi, Saghir Abbas, Faisal Saeed, Gérrard E. J. Poinern, Kadambot H. M. Siddique, Rajeev K. Varshney
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引用次数: 11

摘要

盐碱和干旱胁迫大大降低了作物产量和优势,直接威胁到满足不断增长的总人口日益增长的粮食需求所需的粮食供应。纳米技术是朝着提高农业产量和耐压力性迈出的一步,它通过靶向递送、控制释放、增强溶解性和粘附性来提高农业投入的效力,同时减少重大损害。纳米颗粒/纳米材料的直接应用可以提高植物在胁迫条件下的物理、生物化学和分子机制的性能和有效性,从而提高植物的抗逆性。因此,我们介绍了植物对胁迫条件的影响和反应,还探索了纳米材料在改善农业系统方面的潜力,并讨论了在不同发育阶段应用纳米材料以减轻盐度和干旱胁迫的负面影响的优势。此外,我们还介绍了最先进的纳米生物技术的最新创新,特别是通过CRISPR/Cas系统进行NP介导的基因组编辑,以开发胁迫智能作物。然而,还需要进一步的研究来揭示纳米生物技术在应对现代农业系统中气候变化挑战方面的作用。我们建议,将纳米生物技术、基因组编辑和快速育种技术相结合,可以设计气候智能型品种(特别是育种或转基因植物品种),以满足不断增长的世界人口的粮食安全需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nano-enabled stress-smart agriculture: Can nanotechnology deliver drought and salinity-smart crops?

Nano-enabled stress-smart agriculture: Can nanotechnology deliver drought and salinity-smart crops?

Salinity and drought stress substantially decrease crop yield and superiority, directly threatening the food supply needed to meet the rising food needs of the growing total population. Nanotechnology is a step towards improving agricultural output and stress tolerance by improving the efficacy of inputs in agriculture via targeted delivery, controlled release, and enhanced solubility and adhesion while also reducing significant damage. The direct application of nanoparticles (NPs)/nanomaterials can boost the performance and effectiveness of physio-biochemical and molecular mechanisms in plants under stress conditions, leading to advanced stress tolerance. Therefore, we presented the effects and plant responses to stress conditions, and also explored the potential of nanomaterials for improving agricultural systems, and discussed the advantages of applying NPs at various developmental stages to alleviate the negative effects of salinity and drought stress. Moreover, we feature the recent innovations in state-of-the-art nanobiotechnology, specifically NP-mediated genome editing via CRISPR/Cas system, to develop stress-smart crops. However, further investigations are needed to unravel the role of nanobiotechnology in addressing climate change challenges in modern agricultural systems. We propose that combining nanobiotechnology, genome editing and speed breeding techniques could enable the designing of climate-smart cultivars (particularly bred or genetically modified plant varieties) to meet the food security needs of the rising world population.

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