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盐胁迫和纳米颗粒:抗氧化酶抗性、信号转导和防御机制的新见解。

Salinity stress and nanoparticles: Insights into antioxidative enzymatic resistance, signaling, and defense mechanisms.

机构信息

Yerevan State University, Yerevan 0025, Armenia.

Academy of Biology and Biotechnology, Southern Federal University, Rostov-on-Don, Russia.

出版信息

Environ Res. 2023 Oct 15;235:116585. doi: 10.1016/j.envres.2023.116585. Epub 2023 Jul 10.

Abstract

Salinized land is slowly spreading across the world. Reduced crop yields and quality due to salt stress threaten the ability to feed a growing population. We discussed the mechanisms behind nano-enabled antioxidant enzyme-mediated plant tolerance, such as maintaining reactive oxygen species (ROS) homeostasis, enhancing the capacity of plants to retain K and eliminate Na, increasing the production of nitric oxide, involving signaling pathways, and lowering lipoxygenase activities to lessen oxidative damage to membranes. Frequently used techniques were highlighted like protecting cells from oxidative stress and keeping balance in ionic state. Salt tolerance in plants enabled by nanotechnology is also discussed, along with the potential role of physiobiochemical and molecular mechanisms. As a whole, the goal of this review is meant to aid researchers in fields as diverse as plant science and nanoscience in better-comprehending potential with novel solutions to addressing salinity issues for sustainable agriculture.

摘要

盐碱地正在世界范围内蔓延。由于盐胁迫导致的作物产量和质量下降,威胁到养活不断增长的人口的能力。我们讨论了纳米技术使抗氧化酶介导的植物耐受的机制,例如维持活性氧(ROS)平衡、增强植物保留钾和排出钠的能力、增加一氧化氮的产生、涉及信号通路、降低脂氧合酶的活性,以减少对膜的氧化损伤。还强调了一些常用的技术,如保护细胞免受氧化应激和保持离子状态平衡。本文还讨论了纳米技术赋予植物的耐盐性,以及生理生化和分子机制的潜在作用。总的来说,本综述的目的是帮助植物科学和纳米科学等不同领域的研究人员更好地理解利用新的解决方案解决可持续农业中的盐度问题的潜力。

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