数字农科院2.0

Effects of Exogenous Phosphorus and Hydrogen Peroxide on Wheat Root Architecture

文献类型: 外文期刊

作者: Chen, Lei;Zhou, Lei;Zhang, Yuwei;Wang, Hong

作者机构:

关键词: hydrogen peroxide;phosphorus;root;winter wheat;oxidative enzyme;fluorescence reaction

期刊名称: PLANTS-BASEL

ISSN: 2223-7747

年卷期: 2026 年 15 卷 2 期

页码:

收录情况: SCIE(2025版)

摘要: Plant root growth and architectural modifications are well-documented responses to phosphorous (P) starvation. The spatiotemporal dynamics of hydrogen peroxide (H2O2) in mediating root development under P deficiency, especially in cereal crops like wheat, remain insufficiently understood. A nutrient solution experiment was conducted to grow two varieties of wheat, including SM15 and HG35, with the treatments of 0.005 and 0.25 mmol/L P supply. Exogenous H2O2 and its scavenger ascorbic acid (AsA), and a NADPH oxidase inhibitor diphenylene iodonium (DPI) were added. The distribution of reactive oxygen species (ROS) in roots were detected by chemical staining and fluorescent probe technology. Low P supply did not change the root dry weight and total root length, while it decreased the lateral root density. The increase in the primary root and lateral root growth in P-starved wheat coincided with more ROS in the cell wall of the elongation zone. ROS production and oxidative enzyme activity of P-starved roots increased significantly. Low H2O2 induced the formation of lateral roots and significantly increased lateral root density under low P conditions. High H2O2 significantly reduced lateral root density but stimulated the nodal root formation. Exogenous AsA or DPI addition reversed the promotion of root growth imposed under the low P treatment or H2O2 addition. Furthermore, exogenous H2O2 treatment reduced the inhibitory effect of the DPI treatment on nodal root formation. It is suggested that the involvement of ROS in the regulation of wheat root system architecture under low P supply.

分类号:

  • 相关文献

[1]磷肥对苜蓿根系发育的影响. 韩雪松. 2002

[2]Long-Term Inorganic Plus Organic Fertilization I.ncreases Yield And Yield S tability Of Winter Wheat. Chen, H, Deng, AX, Zhang, WJ, Li, W, Qi, YQ, Yang, TM, Zheng, CY, Cao, CF, Chen, F. 2018

[3]Dual-mode sensing of biomarkers based on nano 3D Cu-Flo.@AuNPs-electrocatalyzed oxidation of glucose inducing in-situ H2O2-generation system. Guo J., Li S., Wang J., Wang J.. 2022

[4]Identification of quantitative trait locus of zinc and phosphorus density in wheat (Triticum aestivum L.) grain. Shi, Rongli,Zhang, Fusuo,Zou, Chunqin,Li, Hongwei,Tong, Yiping,Jing, Ruilian.

[5]Comparative Proteomic Analysis Reveals Differential Root Proteins in Medicago sativa and Medicago truncatula in Response to Salt Stress. Long, Ruicai,Zhang, Tiejun,Kang, Junmei,Cong, Lili,Gao, Yanli,Yang, Qingchuan,Li, Mingna,Sun, Yan,Liu, Fengqi. 2016

[6]Can surface residue alleviate water and heat stress?. Wang, H.,Gan, Y.,Brandt, K.,He, Y.,Qin, X.,Li, Z.. 2015

[7]De novo sequencing and analysis of root transcriptome using 454 pyrosequencing to discover putative genes associated with drought tolerance in Ammopiptanthus mongolicus. Zhou, Yijun,Gao, Fei,Liu, Ran,Feng, Jinchao,Gao, Fei,Li, Hongjie. 2012

[8]Effects of rhizobacteria on the respiration and growth of Cerasus sachalinensis Kom. seedlings. Qin, Sijun,Zhou, Wenjie,Li, Zhixia,Lyu, Deguo,Li, Zhixia. 2016

[9]A distinctive root-inhabiting denitrifying community with high N2O/(N2O+N-2) product ratio. Ai, Chao,Liang, Guoqing,Wang, Xiubin,Sun, Jingwen,He, Ping,Zhou, Wei,He, Ping.

[10]Comparative Analysis of the Brassica napus Root and Leaf Transcript Profiling in Response to Drought Stress. Liu, Chunqing,Zhang, Ka,An, Hong,Hu, Kaining,Wen, Jing,Shen, Jinxiong,Ma, Chaozhi,Yi, Bin,Tu, Jinxing,Fu, Tingdong,Zhang, Xuekun. 2015

[11]Cloning and characterization of a putative 12-oxophytodienoic acid reductase cDNA induced by osmotic stress in roots of foxtail millet. Zhang, Jin-Peng,Liu, Ting-Song,Zheng, Jun,Jin, Zheng,Zhu, Yun,Guo, Jiu-Feng,Wang, Guo-Ying.

[12]Effects of Organic Fertilizer on the Contents and Distribution of Heavy Metals in Spinach. Rui Yukui,Zheng Chuangmu,Wu Wei.

[13]iTRAQ-based quantitative proteomic analysis of wheat roots in response to salt stress. Jiang, Qiyan,Niu, Fengjuan,Sun, Xianjun,Hu, Zheng,Zhang, Hui,Li, Xiaojuan.

[14]Locating QTLs controlling several adult root traits in an elite Chinese hybrid rice. Cao, Li Yong.

[15]Responses of Wheat Roots to Exogenous Selenium Supply Under Enhanced Ultraviolet-B. Yao, Xiaoqin,Chu, Jianzhou,Ba, Chaojie,Yao, Xiaoqin. 2010

[16]Characterization of fluoride uptake by roots of tea plants (Camellia sinensis (L.) O. Kuntze). Zhang, Lei,Li, Qiong,Ma, Lifeng,Ruan, Jianyun,Zhang, Lei,Li, Qiong,Ma, Lifeng,Ruan, Jianyun.

[17]Transcriptome analysis reveals salt-stress-regulated biological processes and key pathways in roots of cotton (Gossypium hirsutum L.). Yao, Dongxia,Wang, Chunchao,Zhang, Zhenghai,Wei, Qiang,Yan, Hong,Su, Zhen,Zhang, Xueyan,Zhao, Xinhua,Liu, Chuanliang,Zhang, Chaojun,Wang, Qianhua,Li, Fuguang. 2011

[18]Root genetic research, an opportunity and challenge to rice improvement. Cheng, Shihua.

[19]Rhizobium wenxiniae sp nov., an endophytic bacterium isolated from maize root. Gao, Jun-lian,Wang, Xu-ming,Sun, Pengbo,Lv, Fan-yang,Mao, Xiao-jie,Sun, Jian-guang.

[20]Transcriptome analysis of rice root heterosis by RNA-Seq. Rongrong Zhai , Yue Feng +, Huimin Wang , Xiaodeng Zhan , Xihong Shen , Weiming Wu , Yingxin Zhang , Daibo Chen , Gaoxing Dai , Zhanlie Yang , Liyong Cao *, Shihua Cheng *. 2013

作者其他论文 更多>>