Microelement Research Center, College of Resources and Environment, Huazhong Agricultural University, Wuhan, Hubei, 430070, PR China.
National Navel Orange Engineering Research Center, Gannan Normal University, Ganzhou, Jiangxi, 341000, PR China.
Plant Physiol Biochem. 2016 Nov;108:121-131. doi: 10.1016/j.plaphy.2016.07.007. Epub 2016 Jul 9.
Boron (B) is a microelement required for higher plants, and B deficiency has serious negative effect on metabolic processes. We concentrated on the changes in metabolite profiles of trifoliate orange leaves and roots as a consequence of B deficiency at the initial stage of growth by gas chromatography-mass spectrometry (GC-MS)-based metabolomics. Enlargement and browning of root tips were observed in B-deficient plants, while any obvious symptom was not recorded in the leaves after 30 days of B deprivation. The distinct patterns of alterations in metabolites observed in leaves and roots due to B deficiency suggest the presence of specific organ responses to B starvation. The accumulation of soluble sugars was occurred in leaves, which may be attributed to down-regulated pentose phosphate pathway (PPP) and amino acid biosynthesis under B deficiency, while the amount of most amino acids in roots was increased, indicating that the effects of B deficiency on amino acids metabolism in trifoliate orange may be a consequence of disruptions in root tissues and decreased protein biosynthesis. Several important products of shikimate pathway were also significantly affected by B deficiency, which may be related to abnormal growth of roots induced by B deficiency. Conclusively, our results revealed a global perspective of the discriminative metabolism responses appearing between B-deprived leaves and roots and provided new insight into the relationship between B deficiency symptom in roots and the altered amino acids profiling and shikimate pathway induced by B deficiency during seedling establishment.
硼(B)是高等植物所需的微量元素,B 缺乏对代谢过程有严重的负面影响。我们通过气相色谱-质谱(GC-MS)-基于代谢组学的方法,集中研究了在生长初期缺硼对三叶橙叶片和根系代谢物谱的变化。在缺硼植物中,观察到根尖的扩大和变褐,而在缺硼 30 天后,叶片没有任何明显的症状。由于缺硼,叶片和根系中代谢物的明显变化模式表明存在特定的器官对 B 饥饿的反应。在叶片中积累了可溶性糖,这可能归因于缺硼下调戊糖磷酸途径(PPP)和氨基酸生物合成,而在根系中大多数氨基酸的含量增加,表明缺硼对三叶橙氨基酸代谢的影响可能是由于根系组织的破坏和蛋白质生物合成减少所致。几种重要的莽草酸途径产物也受到 B 缺乏的显著影响,这可能与 B 缺乏引起的根系异常生长有关。总之,我们的研究结果揭示了 B 剥夺叶片和根系之间出现的有区别的代谢反应的整体视角,并为根系 B 缺乏症状与幼苗期建立过程中 B 缺乏诱导的氨基酸图谱和莽草酸途径改变之间的关系提供了新的见解。