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Systems Rebalancing of Metabolism in Response to Sulfur Deprivation as Revealed by Metabolome Analysis of Arabidopsis Plants

机译:拟南芥植物的代谢组分析揭示了对硫缺乏反应的代谢系统的重新平衡

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摘要

Sulfur is an essential macroelement in plant and animal nutrition. Plants assimilate inorganic sulfate into two sulfur-containing amino acids, cysteine and methionine. Low supply of sulfate leads to decreased sulfur pools within plant tissues. As sulfur-related metabolites represent an integral part of plant metabolism with multiple interactions, sulfur deficiency stress induces a number of adaptive responses, which must be coordinated. To reveal the coordinating network of adaptations to sulfur deficiency, metabolite profiling of Arabidopsis has been undertaken. Gas chromatography-mass spectrometry and liquid chromatography-mass spectrometry techniques revealed the response patterns of 6,023 peaks of nonredundant ion traces and relative concentration levels of 134 nonredundant compounds of known chemical structure. Here, we provide a catalogue of the detected metabolic changes and reconstruct the coordinating network of their mutual influences. The observed decrease in biomass, as well as in levels of proteins, chlorophylls, and total RNA, gives evidence for a general reduction of metabolic activity under conditions of depleted sulfur supply. This is achieved by a systemic adjustment of metabolism involving the major metabolic pathways. Sulfur/carbonitrogen are partitioned by accumulation of metabolites along the pathway O-acetylserine to serine to glycine, and are further channeled together with the nitrogen-rich compound glutamine into allantoin. Mutual influences between sulfur assimilation, nitrogen imbalance, lipid breakdown, purine metabolism, and enhanced photorespiration associated with sulfur-deficiency stress are revealed in this study. These responses may be assembled into a global scheme of metabolic regulation induced by sulfur nutritional stress, which optimizes resources for seed production.
机译:硫是动植​​物营养中不可或缺的重要元素。植物将无机硫酸盐吸收为两个含硫氨基酸,半胱氨酸和蛋氨酸。硫酸盐的低供应导致植物组织中硫的减少。由于与硫有关的代谢产物是植物代谢中不可或缺的组成部分,具有多种相互作用,因此,硫缺乏胁迫会诱导许多适应性反应,必须加以协调。为了揭示适应硫缺乏症的协调网络,已对拟南芥进行了代谢产物分析。气相色谱-质谱和液相色谱-质谱技术揭示了非冗余离子痕量的6,023个峰的响应模式以及已知化学结构的134种非冗余化合物的相对浓度水平。在这里,我们提供了检测到的代谢变化的目录,并重建了它们相互影响的协调网络。观察到的生物量以及蛋白质,叶绿素和总RNA含量的下降,为硫供应不足的条件下代谢活性普遍下降提供了证据。这是通过涉及主要代谢途径的新陈代谢的系统性调节来实现的。硫/碳/氮通过沿着O-乙酰基丝氨酸到丝氨酸到甘氨酸的代谢产物的积累而被分配,并与富氮化合物谷氨酰胺一起被引导到尿囊素中。在这项研究中揭示了硫同化,氮失衡,脂质分解,嘌呤代谢以及与硫缺乏胁迫相关的光呼吸增强之间的相互影响。这些反应可以被组合成由硫营养胁迫引起的代谢调节的全局方案,其优化了种子生产的资源。

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