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Metabolomics Reveals Distinct Carbon and Nitrogen Metabolic Responses to Magnesium Deficiency in Leaves and Roots of Soybean Glycine max (Linn.) Merr.

机译:代谢组学揭示了大豆叶片和根中镁缺乏对碳和氮代谢的不同响应Glycine max(Linn。)Merr。

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摘要

Magnesium (Mg) deficiency, a widespread yet overlooked problem in agriculture, has been reported to retard plant growth and development, through affecting key metabolic pathways. However, the metabolic responses of plant to Mg deficiency is still not fully understood. Here we report a metabolomic study to evaluate the metabolic responses to Mg deficiency in soybean leaves and roots. Hydroponic grown soybean were exposed to Mg starvation for 4 and 8 days, respectively. Metabolic changes in the first mature trifoliolate leaves and roots were quantified by conducting GC-TOF-MS based metabolomic analysis. Principal component analysis (PCA) showed that Mg deficient plants became distinguishable from controls at 4 days after stress (DAS) at metabolic level, and were clearly discriminated at 8 DAS. Mg deficiency could cause large metabolite alterations on carbon and nitrogen metabolism. At 8 DAS, carbon allocation from shoot to root is decreased by Mg deficiency. Remarkably, most amino acids (such as phenylalanine, asparagine, leucine, isoleucine, glycine, glutamine, and serine) showed pronounced accumulation in the leaves, while most organic acids (including pyruvic acid, citric acid, 2-keto-glutaric acid, succinic acid, fumaric acid, and malic acid) were significantly decreased in the roots. Our study shows that the carbon and nitrogen metabolic responses are distinct in leaves and roots under Mg deficiency.
机译:据报道,镁缺乏症是农业中一个普遍但仍被忽视的问题,它通过影响关键的代谢途径而阻碍植物的生长发育。但是,植物对镁缺乏的代谢反应仍未完全了解。在这里,我们报告了一项代谢组学研究,以评估大豆叶片和根部对镁缺乏症的代谢反应。将水培大豆分别暴露于镁饥饿4天和8天。通过进行基于GC-TOF-MS的代谢组学分析,定量分析了第一成熟的三叶草叶和根中的代谢变化。主成分分析(PCA)显示,缺镁植物在代谢后应激(DAS)4天后在代谢水平上与对照区分开,并在8 DAS时得到明显区分。镁缺乏可能导致碳和氮代谢的代谢产物发生重大变化。在8 DAS下,缺镁会降低从茎到根的碳分配。值得注意的是,大多数氨基酸(例如苯丙氨酸,天冬酰胺,亮氨酸,异亮氨酸,甘氨酸,谷氨酰胺和丝氨酸)在叶片中显示出明显的积累,而大多数有机酸(包括丙酮酸,柠檬酸,2-酮-戊二酸,琥珀酸)酸,富马酸和苹果酸)在根部显着减少。我们的研究表明,在缺镁条件下,叶片和根部的碳和氮代谢反应是不同的。

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