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首页> 外文期刊>Plant Physiology and Biochemistry >Uptake and metabolism of ammonium and nitrate in response to drought stress in Malus prunifolia
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Uptake and metabolism of ammonium and nitrate in response to drought stress in Malus prunifolia

机译:铵的摄取和代谢和硝酸盐响应干旱胁迫在Malus prunifolia

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摘要

Using a hydroponics culture system, we monitored morphological, physiological, and molecular changes in Malus prunifolia seedlings when drought conditions induced by 5% polyethylene glycol (PEG) were combined with a low or normal supply of N (0.05 mM or 1 mM NH4NO3, respectively). Under either nutrient level, drought stress negatively inhibited seedling performance, as manifested by reduced photosynthesis and biomass production, decreased accumulations of total N, and inhibited root growth. Concentrations of NO3- and NH4+ and the activities of enzymes involved in N metabolism (nitrate reductase, glutamine synthetase, and glutamate synthase) were also significantly decreased under drought stress. The net influx of NO3- at the surface of the fine roots declined while that of NH4+ rose markedly, suggesting that the latter may play a more important role in improving drought tolerance in M. prunifolia. Consistently, two ammonium transporters (AMT1;2 and AMT4;2) were notably up-regulated in response to drought stress, whereas most genes related to nitrate uptake, reduction, and N metabolism were down-regulated. At the normal N level, PEG-treated plants showed higher values for biomass production, root growth, and N uptake/reduction when compared with plants exposed to the lower N supply. These results suggest that the negative effect of drought stress on M. prunifolia may be alleviated when more nitrogen is available.
机译:使用水培培养系统,当用5%聚乙二醇(PEG)诱导的干旱条件与N(0.05mM或1mM NH 4 NH 4 NH 4 NH 4 NH 4 NH 4 NO 3的低或正常供应,我们监测了Malus Prunifolia幼苗的形态学,生理和分子变化。 )。在营养水平下,干旱胁迫对幼苗性能产生负面抑制,如减少的光合作用和生物质生产,含量降低,抑制根生长。在干旱胁迫下,NO 3和NH4 +的浓度和参与N代谢(硝酸还原酶,谷氨酰胺合成酶和谷氨酸合酶)的酶活性也显着降低。 NO3-在细根表面的净流量下降,而NH4 +显着上升,表明后者可能在改善普鲁尼糖中的耐旱性方面发挥更重要的作用。始终如一地,响应干旱胁迫,显着上调两种铵转运蛋白(AMT1; 2和AMT4; 2),而大多数与硝酸盐摄取,减少和N代谢有关的基因。在正常的N级,PEG处理的植物表现出较高的生物质生产,根本生长和N的吸收/减少,与暴露于N较低的电源的植物相比。这些结果表明,当可获得更多的氮气时,可能会减轻干旱胁迫对M. prunifolia的负面影响。

著录项

  • 来源
    《Plant Physiology and Biochemistry》 |2018年第2018期|共9页
  • 作者单位

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Hort State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物生理学;植物生物化学;
  • 关键词

    Ammonium; Drought stress; Malus; Nitrate; Nitrogen uptake; Non-invasive micro-test technique;

    机译:铵;干旱胁迫;Malus;硝酸盐;氮素吸收;非侵入性微型测试技术;

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