拟南芥
盐生植物
生物
拟南芥
盐度
转基因水稻
转基因作物
水稻
转基因
硝酸盐
土壤盐分
植物
发起人
作物
基因
农学
基因表达
运输机
盐(化学)
适应(眼睛)
氮气
转化(遗传学)
细胞生物学
园艺
氮气循环
水培
表型
基因家族
生物技术
作者
Ranran Liu,Chen Li,Runtai Zhao,Congcong Song,Yan Zhou,Ruxin Zhao,Na Sui,Lei Wang,Jie Song
摘要
ABSTRACT Efficient nitrogen (N) uptake is critical for crop yield, but soil salinization inhibits plant nitrogen acquisition. In this study, the nitrate (NO 3 − ) transporter gene SsNRT2.5 and its promoter from the halophyte Suaeda salsa was investigated to elucidate the functional role in NO 3 − transport under salinity and low NO 3 − –N conditions. SsNRT2.5 and its promoter were cloned and transformed into Arabidopsis thaliana and rice ( Oryza sativa L.) for functional identification, which included analyses of expression patterns, promoter cis‐ element characterisation and phenotypic assessments under salt and low NO 3 − –N conditions. SsNRT2.5 expression was significantly upregulated under salt stress and low NO 3 − –N conditions in S. salsa , which improved NO 3 − transport in trangenic Arabidopsis thaliana and rice. Its promoter contained salt‐responsive (e.g., GT‐1, DRE) and N‐related (e.g., GATABOX) elements, which drove stronger salt‐induced NRT2.5 expression than AtNRT2.5 promoter. Transgenic Arabidopsis and rice with SsNRT2.5 and its promoter showed enhanced NO 3 − accumulation, reduced Na + toxicity, and higher salt tolerance, as well as improved seed NO 3 − storage and viability compared to WT. SsNRT2.5 plays a key role in the adaptation of S. salsa to high saline and nitrogen‐limited environments, offering valuable genetic resources and theoretical insights for breeding salt‐tolerant crops and developing sustainable saline agriculture.
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