水稻
突变体
染色体易位
铵
运输机
转录因子
开枪
生物
野生型
氮气
植物
硝酸盐
生物化学
细胞生物学
化学
基因
有机化学
生态学
作者
Kangning Li,Shunan Zhang,Shuo Tang,Jun Zhang,Hongzhang Dong,Shi-Han Yang,Hongye Qu,Wei Xuan,Mian Gu,Guohua Xu
出处
期刊:Plant Physiology
[Oxford University Press]
日期:2022-04-15
卷期号:189 (3): 1608-1624
被引量:23
标识
DOI:10.1093/plphys/kiac178
摘要
Abstract Plants adjust root architecture and nitrogen (N) transporter activity to meet the variable N demand, but their integrated regulatory mechanism remains unclear. We have previously reported that a floral factor in rice (Oryza sativa), N-mediated heading date-1 (Nhd1), regulates flowering time. Here, we show that Nhd1 can directly activate the transcription of the high-affinity ammonium (NH4+) transporter 1;3 (OsAMT1;3) and the dual affinity nitrate (NO3−) transporter 2.4 (OsNRT2.4). Knockout of Nhd1 inhibited root growth in the presence of NO3− or a low concentration of NH4+. Compared to the wild-type (WT), nhd1 and osamt1;3 mutants showed a similar decrease in root growth and N uptake under low NH4+ supply, while nhd1 and osnrt2.4 mutants showed comparable root inhibition and altered NO3− translocation in shoots. The defects of nhd1 mutants in NH4+ uptake and root growth response to various N supplies were restored by overexpression of OsAMT1;3 or OsNRT2.4. However, when grown in a paddy field with low N availability, nhd1 mutants accumulated more N and achieved a higher N uptake efficiency (NUpE) due to the delayed flowering time and prolonged growth period. Our findings reveal a molecular mechanism underlying the growth duration-dependent NUpE.
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