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Comparative metabolomic profiling in the roots and leaves in contrasting genotypes reveals complex mechanisms involved in post-anthesis drought tolerance in wheat

机译:根和叶中不同基因型的比较代谢组学分析揭示了小麦花后耐旱性涉及的复杂机制

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摘要

Understanding the contrasting biochemical changes in different plant parts in response to drought can help to formulate smart strategies to develop drought tolerant genotypes. The current study used metabolomics and physiological approaches to understand the differential biochemical changes coupled with physiological adjustments in leaves and roots to cope with drought stress in two wheat genotypes, LA754 (drought tolerant) and AGS2038 (drought sensitive). The gas chromatography-mass spectrometry (GC-MS) analysis and physiological trait estimation were performed in the roots and leaves after drought imposition. Drought induced reduction was observed in all physiological and yield related traits. In LA754, higher numbers of metabolites were altered in leaves (45) compared to roots (20) which indicates that plants allocated more resources to leaves in tolerant genotype. In addition, the metabolic components of the root were less affected by the stress which supports the idea that the roots are more drought tolerant than the leaf or shoot. In AGS2038, thirty and twenty eight metabolites were altered in the leaves and roots, respectively. This indicates that the sensitive genotype compromised resource allocation to leaves, rather allocated more towards roots. Tryptophan, valine, citric acid, fumaric acid, and malic acid showed higher accumulation in leaf in LA754, but decreased in the root, while glyceric acid was highly accumulated in the root, but not in the leaf. The results demonstrated that the roots and shoots have a different metabolic composition, and shoot metabolome is more variable than the root metabolome. Though the present study demonstrated that the metabolic response of shoots to drought contrasts with that of roots, some growth metabolites (protein, sugar, etc) showed a mirror increase in both parts. Protein synthesis and energy cycle was active in both organs, and the organs were metabolically activated to enhance water uptake and maintain growth to mitigate the effect of drought.
机译:了解不同植物部分响应干旱的不同生化变化可以帮助制定聪明的策略来开发耐旱基因型。当前的研究使用代谢组学和生理学方法来了解不同的生化变化以及叶片和根部的生理调节,以应对两种基因型小麦LA754(耐旱)和AGS2038(干旱敏感)的干旱胁迫。干旱后,对根和叶进行了气相色谱-质谱(GC-MS)分析和生理性状估计。在所有生理和产量相关性状中均观察到干旱引起的减少。在LA754中,与根部(20)相比,叶片(45)中代谢产物的改变量更高,这表明植物在耐性基因型上为叶片分配了更多的资源。此外,根部的代谢成分受压力影响较小,这支持了以下观点:根部比叶或苗更耐旱。在AGS2038中,叶片和根部分别改变了38和28种代谢物。这表明敏感基因型损害了对叶子的资源分配,而更多地分配给了根。色氨酸,缬氨酸,柠檬酸,富马酸和苹果酸在LA754的叶片中显示较高的积累,但在根部下降,而甘油酸在根部而不是在叶片中高度积累。结果表明,根和芽具有不同的代谢组成,并且芽的代谢组比根的代谢组更具可变性。尽管本研究表明芽对干旱的代谢反应与根部相反,但一些生长代谢产物(蛋白质,糖等)在这两个部分均显示出类似的增长。蛋白质的合成和能量循环在两个器官中都活跃,并且这些器官被代谢激活以增强水分吸收并维持生长以减轻干旱的影响。

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