硝酸还原酶
氮同化
拟南芥
转基因作物
氮气
亚硝酸盐还原酶
转基因
硝酸盐
转录因子
耐旱性
拟南芥
野生型
生物
发起人
氮缺乏
植物
基因
化学
生物化学
基因表达
生态学
突变体
有机化学
作者
Li Zhong,Dandan Chen,Donghong Min,Weiwei Li,Zhao‐Shi Xu,Yongbin Zhou,Liancheng Li,Ming Chen,You‐Zhi Ma
标识
DOI:10.1016/j.bbrc.2015.01.009
摘要
To cope with environmental stress caused by global climate change and excessive nitrogen application, it is important to improve water and nitrogen use efficiencies in crop plants. It has been reported that higher nitrogen uptake could alleviate the damaging impact of drought stress. However, there is scant evidence to explain how nitrogen uptake affects drought resistance. In this study we observed that bZIP transcription factor AtTGA4 (TGACG motif-binding factor 4) was induced by both drought and low nitrogen stresses, and that overexpression of AtTGA4 simultaneously improved drought resistance and reduced nitrogen starvation in Arabidopsis. Following drought stress there were higher nitrogen and proline contents in transgenic AtTGA4 plants than in wild type controls, and activity of the key enzyme nitrite reductase (NIR) involved in nitrate assimilation processes was also higher. Expressions of the high-affinity nitrate transporter genes NRT2.1 and NRT2.2 and nitrate reductase genes NIA1 and NIA2 in transgenic plants were all higher than in wild type indicating that higher levels of nitrate transport and assimilation activity contributed to enhanced drought resistance of AtTGA4 transgenic plants. Thus genetic transformation with AtTGA4 may provide a new approach to simultaneously improve crop tolerance to drought and low nitrogen stresses.
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