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Effect of post-silking drought on nitrogen partitioning and gene expression patterns of glutamine synthetase and asparagine synthetase in two maize (Zea mays L.) varieties

机译:干旱后干旱对两个玉米品种氮素分配和谷氨酰胺合成酶和天冬酰胺合成酶基因表达模式的影响

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Glutamine synthetase (GS) and asparagine synthetase (AS) are proposed to have important function in plant nitrogen (N) remobilization, but their roles under drought stress are not well defined. In this study, the expression dynamics of GS and AS genes were analyzed in two maize varieties (ZD958 and NH101) in relation to post-silking drought stress induced nitrogen partitioning. ZD958 was a 'stay-green' variety with 5% nitrogen harvest index (NHI) lower than NH101. From silking to maturity, the amount of nitrogen remobilized from ear-leaves in ZD958 was evidently lower than NH101, and post-silking drought stress increased the nitrogen remobilization for both varieties. In ear-leaves, the expression of ZmGln1-3 was enhanced under drought stress. Three AS genes (ZmAS1, ZmAS2 and ZmAS3) were differentially regulated by post-silking drought treatment, of which the expression of ZmAS3 was stimulated at late stage of leaf senescence. In NH101, the expression level of ZmAS3 was markedly higher than that in ZD958. In developing grains, there were no significant differences in expression patterns of GS and AS genes between well water and drought treated plants. Drought stress altered maize N partitioning at the whole plant level, and the up-regulation of GS and AS genes may contribute to the higher leaf nitrogen remobilization when exposed to drought treatments. (C) 2016 Published by Elsevier Masson SAS.
机译:谷氨酰胺合成酶(GS)和天冬酰胺合成酶(AS)被认为在植物氮(N)的迁移中具有重要作用,但它们在干旱胁迫下的作用尚未明确。在这项研究中,分析了两个玉米品种(ZD958和NH101)中的GS和AS基因表达动态,这些变化与干旱后干旱引起的氮分配有关。 ZD958是“常绿”品种,氮收获指数(NHI)比NH101低5%。从silk丝到成熟,ZD958中从耳叶中转运的氮含量明显低于NH101,而sil粉后的干旱胁迫增加了两个品种的氮转运。在干旱胁迫下,耳叶中ZmGln1-3的表达增强。沉默后干旱处理对3个AS基因(ZmAS1,ZmAS2和ZmAS3)进行差异调节,其中ZmAS3的表达在叶片衰老后期受到刺激。在NH101中,ZmAS3的表达水平明显高于在ZD958中的表达水平。在发育中的谷物中,水和干旱处理过的植物之间GS和AS基因的表达方式没有显着差异。干旱胁迫改变了整个植物水平上玉米N的分配,而GS和AS基因的上调可能在暴露于干旱条件下有助于更高的叶面氮转运。 (C)2016由Elsevier Masson SAS发布。

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