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纳米材料在具有挑战性环境下植物中的作用。

Role of nanomaterials in plants under challenging environments.

作者信息

Khan M Nasir, Mobin M, Abbas Zahid Khorshid, AlMutairi Khalid A, Siddiqui Zahid H

机构信息

Department of Biology, Faculty of Science, University of Tabuk, Tabuk 71491, Saudi Arabia.

Department of Biology, Faculty of Science, University of Tabuk, Tabuk 71491, Saudi Arabia.

出版信息

Plant Physiol Biochem. 2017 Jan;110:194-209. doi: 10.1016/j.plaphy.2016.05.038. Epub 2016 May 27.

Abstract

The application of nanostructured materials, designed for sustainable crop production, reduces nutrient losses, suppresses disease and enhances the yields. Nanomaterials (NMs), with a particle size less than 100 nm, influence key life events of the plants that include seed germination, seedling vigor, root initiation, growth and photosynthesis to flowering. Additionally, NMs have been implicated in the protection of plants against oxidative stress as they mimic the role of antioxidative enzymes such as superoxide dismutase (SOD), catalase (CAT) and peroxidase (POX). However, besides their beneficial effects on plants, applications of NMs have been proved to be phytotoxic too as they enhance the generation of reactive oxygen species (ROS). The elevated level of ROS may damage the cellular membranes, proteins and nucleic acids. Therefore, in such a conflicting and ambiguous nature of NMs in plants, it is necessary to decipher the mechanism of cellular, biochemical and molecular protection render by NMs under stressful environmental conditions. This review systematically summarizes the role of NMs in plants under abiotic stresses such as drought, salt, temperature, metal, UV-B radiation and flooding. Furthermore, suitable strategies adopted by plants in presence of NMs under challenging environments are also being presented.

摘要

为可持续作物生产设计的纳米结构材料的应用可减少养分流失、抑制病害并提高产量。粒径小于100纳米的纳米材料会影响植物的关键生命活动,包括种子萌发、幼苗活力、根系起始、生长以及从光合作用到开花的过程。此外,纳米材料在保护植物免受氧化应激方面发挥作用,因为它们模拟了超氧化物歧化酶(SOD)、过氧化氢酶(CAT)和过氧化物酶(POX)等抗氧化酶的作用。然而,除了对植物的有益影响外,纳米材料的应用也被证明具有植物毒性,因为它们会增加活性氧(ROS)的产生。ROS水平升高可能会损害细胞膜、蛋白质和核酸。因此,鉴于纳米材料在植物中具有这种相互矛盾且不明确的性质,有必要解读纳米材料在应激环境条件下提供细胞、生化和分子保护的机制。本综述系统地总结了纳米材料在干旱、盐、温度、金属、UV-B辐射和洪涝等非生物胁迫下在植物中的作用。此外,还介绍了在具有挑战性的环境中植物在纳米材料存在下所采取的合适策略。

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