Podgórska Anna, Burian Maria, Rychter Anna M, Rasmusson Allan G, Szal Bożena
Institute of Experimental Plant Biology and Biotechnology, Faculty of Biology, University of Warsaw, Warsaw, 02-096, Poland.
Department of Biology, Lund University, Lund, SE-223 62, Sweden.
Physiol Plant. 2017 May;160(1):65-83. doi: 10.1111/ppl.12538. Epub 2017 Feb 14.
Plants can assimilate nitrogen from soil pools of both ammonium and nitrate, and the relative levels of these two nitrogen sources are highly variable in soil. Long-term ammonium nutrition is known to cause damage to Arabidopsis that has been linked to mitochondrial oxidative stress. Using hydroponic cultures, we analysed the consequences of rapid shifts between nitrate and ammonium nutrition. This did not induce growth retardation, showing that Arabidopsis can compensate for the changes in redox metabolism associated with the variations in nitrogen redox status. During the first 3 h of ammonium treatment, we observed distinct transient shifts in reactive oxygen species (ROS), low-mass antioxidants, ROS-scavenging enzymes, and mitochondrial alternative electron transport pathways, indicating rapid but temporally separated changes in chloroplastic, mitochondrial and cytosolic ROS metabolism. The fast induction of antioxidant defences significantly lowered intracellular H O levels, and thus protected Arabidopsis leaves from oxidative stress. On the other hand elevated extracellular ROS production in response to ammonium supply may be involved in signalling. The response pattern displays an intricate plasticity of Arabidopsis redox metabolism to minimise stress in responses to nutrient changes.
植物能够从土壤中的铵态氮和硝态氮库中吸收氮,这两种氮源在土壤中的相对含量变化很大。长期铵营养已知会对拟南芥造成损害,这与线粒体氧化应激有关。我们利用水培培养分析了硝酸盐和铵营养之间快速转换的后果。这并未导致生长迟缓,表明拟南芥能够补偿与氮氧化还原状态变化相关的氧化还原代谢变化。在铵处理的最初3小时内,我们观察到活性氧(ROS)、低分子量抗氧化剂、ROS清除酶和线粒体交替电子传递途径有明显的瞬时变化,表明叶绿体、线粒体和细胞质ROS代谢有快速但时间上分离的变化。抗氧化防御的快速诱导显著降低了细胞内H₂O水平,从而保护拟南芥叶片免受氧化应激。另一方面,响应铵供应而升高的细胞外ROS产生可能参与信号传导。这种响应模式显示了拟南芥氧化还原代谢的复杂可塑性,以在对养分变化的响应中最小化应激。