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CeO 纳米粒子提高黄瓜耐盐性与其诱导抗氧化系统早期刺激有关。

CeO nanoparticles improved cucumber salt tolerance is associated with its induced early stimulation on antioxidant system.

机构信息

MOA Key Laboratory of Crop Ecophysiology and Farming System in the Middle Reaches of the Yangtze River, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan, 430070, China.

Key Laboratory of Horticultural Plant Biology, Ministry of Education/College of Horticulture and Forestry Sciences, Huazhong Agricultural University, Wuhan, 430070, China.

出版信息

Chemosphere. 2022 Jul;299:134474. doi: 10.1016/j.chemosphere.2022.134474. Epub 2022 Mar 31.

Abstract

Salinity is a global issue limiting efficient agricultural production. Nano-enabled plant salt tolerance is a hot topic. However, the role of nanoparticles induced possible early stimulation on antioxidant system in its improved plant salt tolerance is still largely unknown. Here, poly (acrylic) acid coated nanoceria (cerium oxide nanoparticles) (PNC, 7.8 nm, -31 mV) with potent ROS (reactive oxygen species) scavenging ability are used. Compared with control, no significant difference of HO and O content, MDA (malondialdehyde) content, relative electric conductivity, and Fv/Fm was found in leaves and/or roots of cucumber before onset of salinity stress, regardless of leaf or root application of PNC. While, before onset of salinity stress, compared with control, the activities of SOD (superoxide dismutase, up to 1.8 folds change), POD (peroxidase, up to 2.5 folds change) and CAT (catalase, up to 2.3 folds change), and the content of GSH (glutathione, up to 3.0 folds change) and ASA (ascorbic acid, up to 2.4 folds change) in leaves and roots of cucumber with PNC leaf spray or root application were significantly increased. RNA seq analysis further confirmed that PNC foliar spray upregulates more genes in leaves over roots than the root application. These results showed that foliar sprayed PNC have stronger early stimulation effect on antioxidant system than the root applied one and leaf are more sensitive to PNC stimulation than root. After salt stress, cucumber plants with foliar sprayed PNC showed better improvement in salt tolerance than the root applied one. Also, plants with foliar sprayed PNC showed significant higher whole plant cerium content than the root applied one after salt stress. In summary, we showed that foliar spray of nanoceria is more optimal than root application in terms of improving cucumber salt tolerance, and this improvement is associated with better stimulation on antioxidant system in plants.

摘要

盐度是限制高效农业生产的全球性问题。纳米增强植物耐盐性是一个热门话题。然而,纳米颗粒诱导的抗氧化系统早期刺激在提高植物耐盐性中的作用在很大程度上仍然未知。在这里,使用具有强大 ROS(活性氧)清除能力的聚(丙烯酸)酸包覆的纳米氧化铈(纳米氧化铈)(PNC,7.8nm,-31mV)。与对照相比,在盐胁迫开始之前,无论是叶片还是根部应用 PNC,黄瓜叶片和/或根部均未发现 HO 和 O 含量、MDA(丙二醛)含量、相对电导率和 Fv/Fm 有显着差异。然而,在盐胁迫开始之前,与对照相比,叶片或根部应用 PNC 的黄瓜叶片和根部的 SOD(超氧化物歧化酶,高达 1.8 倍的变化)、POD(过氧化物酶,高达 2.5 倍的变化)和 CAT(过氧化氢酶,高达 2.3 倍的变化)的活性,以及 GSH(谷胱甘肽,高达 3.0 倍的变化)和 ASA(抗坏血酸,高达 2.4 倍的变化)含量均显着增加。RNA seq 分析进一步证实,PNC 叶片喷雾比根部应用更能上调叶片中的更多基因。这些结果表明,与根部应用相比,叶片喷雾 PNC 对抗氧化系统具有更强的早期刺激作用,并且叶片比根部对 PNC 刺激更敏感。盐胁迫后,叶片喷雾 PNC 的黄瓜植物在耐盐性方面表现出比根部应用更好的改善。此外,与根部应用相比,盐胁迫后叶片喷雾 PNC 的植物全株铈含量显着更高。总之,我们表明,就提高黄瓜的耐盐性而言,叶面喷施纳米氧化铈比根部应用更具优势,这种改善与植物抗氧化系统的更好刺激有关。

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