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Metabolome Analysis of Biosynthetic Mutants Reveals a Diversity of Metabolic Changes and Allows Identification of a Large Number of New Compounds in Arabidopsis1[W][OA]

机译:生物合成突变体的代谢组分析揭示了代谢变化的多样性,并允许鉴定拟南芥中的大量新化合物[W] [OA]

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摘要

Metabolomics is facing a major challenge: the lack of knowledge about metabolites present in a given biological system. Thus, large-scale discovery of metabolites is considered an essential step toward a better understanding of plant metabolism. We show here that the application of a metabolomics approach generating structural information for the analysis of Arabidopsis (Arabidopsis thaliana) mutants allows the efficient cataloging of metabolites. Fifty-six percent of the features that showed significant differences in abundance between seeds of wild-type, transparent testa4, and transparent testa5 plants could be annotated. Seventy-five compounds were structurally characterized, 21 of which could be identified. About 40 compounds had not been known from Arabidopsis before. Also, the high-resolution analysis revealed an unanticipated expansion of metabolic conversions upstream of biosynthetic blocks. Deficiency in chalcone synthase results in the increased seed-specific biosynthesis of a range of phenolic choline esters. Similarly, a lack of chalcone isomerase activity leads to the accumulation of various naringenin chalcone derivatives. Furthermore, our data provide insight into the connection between p-coumaroyl-coenzyme A-dependent pathways. Lack of flavonoid biosynthesis results in elevated synthesis not only of p-coumarate-derived choline esters but also of sinapate-derived metabolites. However, sinapoylcholine is not the only accumulating end product. Instead, we observed specific and sophisticated changes in the complex pattern of sinapate derivatives.
机译:代谢组学面临一个重大挑战:缺乏对给定生物系统中存在的代谢物的了解。因此,代谢物的大规模发现被认为是对植物代谢更好理解的重要步骤。我们在这里表明,利用代谢组学方法生成用于分析拟南芥(Arabidopsis thaliana)突变体的结构信息,可以对代谢物进行有效分类。可以注释说明有56%的特征表明野生型,透明种和透明种的种子之间的丰度有显着差异。对75种化合物进行了结构表征,其中21种可以鉴定。以前从拟南芥中不知道约40种化合物。同样,高分辨率分析显示了生物合成模块上游代谢转化的意外扩展。查尔酮合酶的缺乏导致一系列酚类胆碱酯类的种子特异性生物合成增加。类似地,缺乏查耳酮异构酶活性导致各种柚皮苷查尔酮衍生物的积累。此外,我们的数据提供了对p-香豆酰辅酶A依赖性途径之间联系的见解。缺乏类黄酮的生物合成不仅导致对香豆酸盐衍生的胆碱酯的合成增加,而且导致鼻窦酸盐衍生的代谢产物的合成增加。但是,sinapoylcholine不是唯一累积的最终产物。取而代之的是,我们观察到了芥末衍生物复杂模式的特定而复杂的变化。

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