Al-Khayri Jameel Mohammed, Rashmi Ramakrishnan, Surya Ulhas Rutwick, Sudheer Wudali N, Banadka Akshatha, Nagella Praveen, Aldaej Mohammed Ibrahim, Rezk Adel Abdel-Sabour, Shehata Wael Fathi, Almaghasla Mustafa Ibrahim
Department of Agricultural Biotechnology, College of Agriculture and Food Sciences, King Faisal University, Al-Ahsa 31982, Saudi Arabia.
Department of Life Sciences, CHRIST (Deemed to be University), Bangalore 560 029, Karnataka, India.
Plants (Basel). 2023 Jan 7;12(2):292. doi: 10.3390/plants12020292.
In recent years, the global agricultural system has been unfavorably impacted by adverse environmental changes. These changes in the climate, in turn, have altered the abiotic conditions of plants, affecting plant growth, physiology and production. Abiotic stress in plants is one of the main obstacles to global agricultural production and food security. Therefore, there is a need for the development of novel approaches to overcome these problems and achieve sustainability. Nanotechnology has emerged as one such novel approach to improve crop production, through the utilization of nanoscale products, such as nanofertilizer, nanofungicides, nanoherbicides and nanopesticides. Their ability to cross cellular barriers makes nanoparticles suitable for their application in agriculture. Since they are easily soluble, smaller, and effective for uptake by plants, nanoparticles are widely used as a modern agricultural tool. The implementation of nanoparticles has been found to be effective in improving the qualitative and quantitative aspects of crop production under various biotic and abiotic stress conditions. This review discusses various abiotic stresses to which plants are susceptible and highlights the importance of the application of nanoparticles in combating abiotic stress, in addition to the major physiological, biochemical and molecular-induced changes that can help plants tolerate stress conditions. It also addresses the potential environmental and health impacts as a result of the extensive use of nanoparticles.
近年来,全球农业系统受到不利环境变化的负面影响。这些气候变化进而改变了植物的非生物条件,影响植物生长、生理和产量。植物非生物胁迫是全球农业生产和粮食安全的主要障碍之一。因此,需要开发新方法来克服这些问题并实现可持续性。纳米技术作为一种新方法应运而生,通过利用纳米级产品,如纳米肥料、纳米杀菌剂、纳米除草剂和纳米农药来提高作物产量。纳米颗粒穿过细胞屏障的能力使其适用于农业应用。由于纳米颗粒易溶解、体积小且易于被植物吸收,因此被广泛用作现代农业工具。已发现纳米颗粒的应用在各种生物和非生物胁迫条件下有效改善作物生产的质量和数量方面。本综述讨论了植物易受的各种非生物胁迫,并强调了纳米颗粒在对抗非生物胁迫中的应用的重要性,以及有助于植物耐受胁迫条件的主要生理、生化和分子诱导变化。它还讨论了大量使用纳米颗粒对环境和健康的潜在影响。
Front Plant Sci. 2022-11-2
Environ Sci Pollut Res Int. 2024-10
J Biotechnol. 2021-8-20
Nanomaterials (Basel). 2022-11-6
Front Plant Sci. 2022-3-23
Scientifica (Cairo). 2025-5-26
Metabolites. 2025-4-16
ACS Omega. 2025-3-14
Nanomaterials (Basel). 2022-11-6
Front Plant Sci. 2022-3-11
Physiol Plant. 2022-3
Plants (Basel). 2021-11-7