Silicon ameliorates manganese toxicity by regulating manganese transport and antioxidant reactions in rice (Oryza sativa L.)

文献类型: 外文期刊

第一作者: Li, Ping

作者: Li, Ping;Song, Alin;Li, Zhaojun;Fan, Fenliang;Liang, Yongchao;Li, Ping

作者机构:

关键词: Antioxidants;High manganese;Lipid peroxidation;Mn uptake and transport;Rice;Silicon

期刊名称:PLANT AND SOIL ( 影响因子:4.192; 五年影响因子:4.712 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: This study aimed to investigate the roles of silicon (Si) in ameliorating manganese (Mn) toxicity in two rice (Oryza sativa L.) cultivars: i.e. cv. Xinxiangyou 640 (XXY), a Mn-sensitive cultivar and cv. Zhuliangyou 99 (ZLY), a Mn-tolerant cultivar. Plants were cultured in nutrient solution containing normal Mn (6.7 mu M) or high Mn (2.0 mM), both with or without Si supply at 1.5 mM Si. Plant growth was severely inhibited by high Mn in cv. XXY, but was enhanced by Si supply. In cv. XXY, Si-enhanced tolerance resulted from a restriction of Mn transport, whereas in cv. ZLY Mn uptake was depressed. In cv. XXY, high Mn significantly increased superoxide dismutase (SOD), catalase and ascorbate peroxidase activities but decreased non-protein thiols and glutathione concentrations, leading to accumulation of H2O2 and malondialdehyde. The addition of Si significantly counteracted high Mn-elevated malondialdehyde and H2O2 concentrations and enhanced plant growth. In cv. ZLY, high Mn considerably raised SOD activities and glutathione concentrations, thus leading to relatively low oxidative damage. Si-enhanced Mn tolerance was attributed mainly to restricted Mn transport in cv. XXY but to depressed Mn uptake in cv. ZLY. Silicon mainly influenced non-enzymatic antioxidants in these two rice cultivars under high Mn stress.

分类号: S15

  • 相关文献

[1]Alleviation of Chromium Toxicity by Silicon Addition in Rice Plants. Zeng Fan-rong,Qiu Bo-yin,Wu Fei-bo,Zhang Guo-ping,Zhao Fu-sheng,Ouyang You-nan. 2011

[2]Supplementation of xanthophylls increased antioxidant capacity and decreased lipid peroxidation in hens and chicks. Gao, Yu-Yun,Xie, Qing-Mei,Ma, Jing-Yun,Zhang, Xiang-Bin,Zhu, Ji-Mei,Sun, Bao-Li,Jin, Ling,Bi, Ying-Zuo,Shu, Ding-Ming,Bi, Ying-Zuo. 2013

[3]Silicon ameliorates manganese toxicity by regulating both physiological processes and expression of genes associated with photosynthesis in rice (Oryza sativa L.). Li, Ping,Song, Alin,Li, Zhaojun,Fan, Fenliang,Liang, Yongchao,Li, Ping,Liang, Yongchao.

[4]The effects of silicon fertilizer on denitrification potential and associated genes abundance in paddy soil. Song, Alin,Fan, Fenliang,Yin, Chang,Wen, Shilin,Zhang, Yalei,Fan, Xiaoping,Liang, Yongchao.

[5]In situ stabilization of heavy metals in multiple-metal contaminated paddy soil using different steel slag-based silicon fertilizer. Ning, Dongfeng,Duan, Aiwang,Liu, Zhandong,Liang, Yongchao,Song, Alin.

[6]Silicon-mediated rice plant resistance to the asiatic rice borer (Lepidoptera: Crambidae): Effects of silicon amendment and rice varietal resistance. Han, Yongqiang.

[7]Silicon-enhanced resistance to rice blast is attributed to silicon-mediated defence resistance and its role as physical barrier. Sun, Wanchun,Zhang, Jie,Fan, Qionghua,Xue, Gaofeng,Li, Zhaojun,Liang, Yongchao,Sun, Wanchun.

[8]Response of oxidative stress defense systems in rice (Oryza sativa) leaves with supplemental UV-B radiation. Dai, QJ,Yan, B,Huang, SB,Liu, XZ,Peng, SB,Miranda, MLL,Chavez, AQ,Vergara, BS,Olszyk, DM. 1997

[9]Application of silicon fertilizer affects nutritional quality of rice. Liu, Qihua,Zhou, Xuebiao,Sun, Zhaowen. 2017

[10]Importance of plant species and external silicon concentration to active silicon uptake and transport. Liang, Yongchao,Hua, Haixia,Zhu, Yong-Guan,Zhang, Jie,Cheng, Chunmei,Roemheld, Volker. 2006

[11]Effects of silicon on H+-ATPase and H+-PPase activity, fatty acid composition and fluidity of tonoplast vesicles from roots of salt-stressed barley (Hordeum vulgare L.). Liang, YC,Zhang, WH,Chen, Q,Ding, RX. 2005

[12]Effect of exogenous silicon (Si) on H+-ATPase activity, phospholipids and fluidity of plasma membrane in leaves of salt-stressed barley (Hordeum vulgare L.). Liang, Yongchao,Zhang, Wenhua,Chen, Qin,Liu, Youliang,Ding, Ruixing. 2006

[13]Role of Silicon in Alleviating Salt-Induced Toxicity in White Clover. Guo, Qiang,Meng, Lin,Mao, Peichun,Tian, Xiaoxia. 2013

[14]Mechanisms of silicon-mediated alleviation of abiotic stresses in higher plants: A review. Liang, Yongchao,Sun, Wanchun,Zhu, Yong-Guan,Christie, Peter.

[15]Silicon alleviates iron deficiency in cucumber by promoting mobilization of iron in the root apoplast. Pavlovic, Jelena,Maksimovic, Vuk,Stevic, Nenad,Nikolic, Miroslav,Samardzic, Jelena,Timotijevic, Gordana,Laursen, Kristian H.,Hansen, Thomas H.,Husted, Soren,Schjoerring, Jan K.,Liang, Yongchao.

[16]Silicon-enhanced resistance to cadmium toxicity in Brassica chinensis L. is attributed to Si-suppressed cadmium uptake and transport and Si-enhanced antioxidant defense capacity. Song, Alin,Zhang, Jie,Liang, Yongchao,Li, Zhaojun,Xue, Gaofeng,Fan, Fenliang,Liang, Yongchao,Liang, Yongchao.

[17]Effects of silicon on seed setting rate of rice intersubspecific hybrids. Li, W. -C.,Zhang, L.,Wang, J.,Wang, D.,Wang, T. -X.,Duan, C. -X.. 2015

[18]Effects of foliar- and root-applied silicon on the enhancement of induced resistance to powdery mildew in Cucumis sativus. Liang, YC,Sun, WC,Si, J,Romheld, V. 2005

[19]Silicon-mediated enhancement of cadmium tolerance in maize (Zea mays L.) grown in cadmium contaminated soil. Liang, YC,Wong, JWC,Wei, L. 2005

[20]Effects of Application of Silicon and Zeolite on Chemical Speciation of Cadmium in Soil and its Uptake by Tobacco. Li, Fan,Cai, Hailin,Hu, Qiulong,Gu, Songsong,Li, Qiang,Tan, Lin,Huang, Yanning,Zeng, Min. 2018

作者其他论文 更多>>