数字农科院2.0

Overexpression of AtbZIP69 in transgenic wheat confers tolerance to nitrogen and drought stress

文献类型: 外文期刊

作者: Jiji Yan;Daoping Wang;Zhang He;Xin Li;Wensi Tang;Kai Chen;Yongbin Zhou;Youzhi Ma;Ming Chen

作者机构:

关键词: Abiotic stress;AtbZIP transcription factor;Drought stress;Low nitrogen;Nitrogen distribution;Yield

期刊名称: Planta

ISSN: 0032-0935

年卷期: 2025 年 261 卷 2 期

页码:

收录情况: SCIE(2025版)

摘要: Main conclusion: AtbZIP69 overexpression in wheat significantly enhanced drought and low nitrogen tolerance by modulating ABA synthesis, antioxidant activity, nitrogen allocation, and transporter gene expression, boosting yield. Abstract: In this study, we generated wheat plants with improved low nitrogen (LN) and drought tolerance by introducing AtbZIP69, a gene encoding a basic leucine zipper domain transcription factor, into the wheat cultivar Shi 4056. AtbZIP69 localized to the nucleus and activated transcription. A greenhouse study further revealed that, compared to wild type (WT) wheat, AtbZIP69 transgenic wheat exhibited significantly increased drought and LN stress tolerance. Under drought stress, the H2O2 concentration in transgenic lines decreased, whereas SOD activity and proline content increased, resulting in remarkably enhanced drought resistance. Furthermore, drought stress boosted the expression of critical abscisic acid (ABA) synthesis enzymes as well as the ABA content of transgenic plants, implying that this gene may improve wheat’s drought resistance by promoting ABA production. Additionally, during a two-year field test, the yield and the number of spikes of transgenic wheat were significantly higher than those of WT wheat under LN conditions. Mechanistically, the overexpression of AtbZIP69 altered nitrogen distribution by allocating more nitrogen to grains under LN conditions. In addition, the expression of genes encoding nitrogen transporter proteins was higher in AtbZIP69 transgenic wheat than in WT wheat under LN conditions. These findings suggest that the insertion of AtbZIP69 opens up new opportunities for wheat stress resistance breeding.

分类号:

  • 相关文献

[1]Optimizing light and nitrogen distribution in maize-soybean intercropping systems to enhance crop yield. Zhen Fan,Binbin Qiang,Xinbo Zhang,Yanrong Lin,Yulin Wu,Xining Zhao,Enke Liu,Tie Cai,Peng Zhang,Tiening Liu,Xiaolong Ren,Xiaoli Chen. 2025

[2]Pdf1.5 enhances adaptation to low nitrogen levels and cadmium stress. Zhimin Wu,Dong Liu,Ningyan Yue,Haixing Song,Jinsong Luo,Zhenhua Zhang. 2021

[3]Genetic Dissection for Leaf Correlative Traits of Rice (Oryza sativa L.)Under Drought Stress. Guo Longbiao,Qian Qian,Zeng Dali,Dong Guojun,Teng Sheng,Zhu Lihuang. 2004

[4]Isolation and functional analysis of transcription factor GmWRKY57B from soybean. Zhang Lan,Zhang ChunYi,Fan YunLiu,Wang Lei,Wang XiaoPing,Bi YingDong.

[5]Drought and heat stress on cotton genotypes suggested agro-physiological and biochemical features for climate resilience. Muhammad Mubashar Zafar,Waqas Shafqat Chattha,Azeem Iqbal Khan,Saba Zafar,Mishal Subhan,Huma Saleem,Arfan Ali,Aqsa Ijaz,Zunaira Anwar,Fei Qiao,Amir Shakeel,Mahmoud F. Seleiman,Daniel O. Wasonga,Aqsa Parvaiz,Abdul Razzaq,Jiang Xuefei. 2023

[6]Mechanisms of Microorganisms Alleviating Drought and Salt Stresses in Plants. Di Feng,Wenxiang Li,Pengfei Huang,Meiying Gu,Guangmu Tang,Yanhong Ding,Gang Cao,Wanli Xu. 2025

[7]Genetic Analysis of Carbon Isotope Discrimination and its Relation to Yield in a Wheat Doubled Haploid Population. Wu, Xianshan,Chang, Xiaoping,Jing, Ruilian. 2011

[8]PERFORMANCE OF DIVERSE WHEAT GENETIC STOCKS UNDER MOISTURE STRESS CONDITION. Seher, Misbah,Shabbir, Ghulam,Rasheed, Awais,Kazi, Alvina Gul,Mahmood, Tariq,Mujeeb-Kazi, Abdul. 2015

[9]Biological Roles of Lipids in Rice. Kun Zhou,Zhengliang Luo,Weidong Huang,Zemin Liu,Xuexue Miao,Shuhua Tao,Jiemin Wang,Jian Zhang,Shiyi Wang,Xiaoshan Zeng. 2024

[10]Biological Roles of Lipids in Rice. Kun Zhou,Zhengliang Luo,Weidong Huang,Zemin Liu,Xuexue Miao,Shuhua Tao,Jiemin Wang,Jian Zhang,Shiyi Wang,Xiaoshan Zeng. 2025

[11]Decades' progress and prospects on maize functional genomics and molecular breeding. Li, Qing,Lai, Jinsheng,Chen, Jian,Li, Lin,Song, Weibin,Xin, Beibei,Zhao, Hainan,Xiao, Yingjie,Tian, Feng,Li, Gang,Liang, Yameng,Liu, Lei,Tan, Baocai,Wang, Baobao,Wu, Yongrui,Yang, Xiaohong,Di, Hong,Ma, Zeyang,Song, Rentao,Zhan, Junpeng,Zhang, Xuan,Qin, Feng,Chen, Yifang,Dai, Mingqiu,Jiang, Caifu,Shi, Yiting,Wang, Yi,Wu, Qi,Yang, Shuhua,Yuan, Lixing,Zhang, Mei,Zhao, Han,Xu, Mingliang,Chen, Jiafa,Ding, Junqiang,Duan, Canxing,Gao, Xiquan,Gou, Mingyue,Lai, Zhibing,Li, Peijin,Wang, Guan-Feng,Weng, Jianfeng,Wu, Jianyu,Wu, Liuji,Yang, Qin,Zhang, Yan,Zhao, Haiming,Zhou, Yu,Wan, Xiangyuan,An, Xueli,Huang, Wei,Jin, Weiwei,Wu, Suowei,Wang, Haiyang,Chen, Huabang,Tang, Jihua,Zhang, Zhaogui,Xie, Chuanxiao,Chen, Shaojiang,Liu, Chenxu,Qi, Xiantao,Wang, Hai,Wang, Xiangfeng,Yan, Jun,Yan, Jianbing. 2025

[12]Optimal nitrogen distribution in maize canopy can synergistically improve maize yield and nitrogen utilization efficiency while reduce environmental risks. Xiaoxia Guo,Wanmao Liu,Yunshan Yang,Guangzhou Liu,Bo Ming,Ruizhi Xie,Keru Wang,Shaokun Li,Peng Hou. 2025

[13]Elevating crop productivity and sustainability: The role of organic fertilizers in shaping wheat's nitrogen economy and photosynthetic response. Binbin Qiang,Zinan Yan,Xinbo Zhang,Mengwei Cheng,Yulin Wu,Ni Tang,Benjie C. Timbang,Tie Cai,Enke Liu,Xining Zhao,Xiaolong Ren,Xiaoli Chen. 2025

[14]Identification of active VQ motif-containing genes and the expression patterns under low nitrogen treatment in soybean. Wang, Xiaobo,Zhang, Haowei,Sun, Genlou,Jin, Yuan,Qiu, LiJuan,Qiu, LiJuan,Sun, Genlou.

[15]CO2 enhances low-nitrogen adaption by promoting amino acid metabolism in Brassica napus. Zhenhua Zhang,Zhimin Wu. 2023

[16]Overexpression of MYB-like transcription factor SiMYB30 from foxtail millet (Setaria italica L.) confers tolerance to low nitrogen stress in transgenic rice. Yuewei Zhang,Zhang He,Xin Qi,Maomao Li,Jin Liu,Si Le,Kai Chen,Chunxiao Wang,Yongbin Zhou,Zhaoshi Xu,Jun Chen,Changhong Guo,Wensi Tang,Youzhi Ma,Ming Chen. 2023

[17]Integrated physiological, transcriptomic, and metabolomic analyses reveal that low-nitrogen conditions improve the accumulation of flavonoids in snow chrysanthemum. Zhiyuan Li,Hong Jiang,Xiumei Jiang,Lifang Zhang,Yong Qin. 2023

[18]Genome-Wide and Transcriptome Analysis of Autophagy-Related ATG Gene Family and Their Response to Low-Nitrogen Stress in Sugar Beet. Rongli Jia,Ruxin Zhou,Yue Chang,Lei Wei,Liuxi Yi,Binjie Ma,Shude Shi. 2024

[19]Draft Genome Analysis Offers Insights I.nto The Mechanism By W hich Streptomyces Chartreusis Wzs021 Increases Drought Tolerance In Sugarcane. Wang, Zhen,Solanki, Manoj Kumar,Yang, Li-Tao,Solanki, Manoj Kumar,Solanki, Manoj Kumar,Li, Yang-Rui,Yu, Zhuo-Xin,An, Qian-Li,Li, Yang-Rui,Dong, Deng-Feng,Li, Yang-Rui. 2019

[20]Foliar Application Of Betaine Improves W.ater-Deficit Stress Tolerance In B arley (Hordeum Vulgare L.). Wang, Nanbo,Richmond, Marvin Eusi Ambrose,Cao, Fangbin,Wu, Feibo,Qiu, Chengwei. 2019

作者其他论文 更多>>