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Eco-Metabolomics and Metabolic Modeling: Making the Leap From Model Systems in the Lab to Native Populations in the Field

机译:生态代谢组学和代谢建模:从实验室中的模型系统飞跃到野外原生种群

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摘要

Experimental high-throughput analysis of molecular networks is a central approach to characterize the adaptation of plant metabolism to the environment. However, recent studies have demonstrated that it is hardly possible to predict in situ metabolic phenotypes from experiments under controlled conditions, such as growth chambers or greenhouses. This is particularly due to the high molecular variance of in situ samples induced by environmental fluctuations. An approach of functional metabolome interpretation of field samples would be desirable in order to be able to identify and trace back the impact of environmental changes on plant metabolism. To test the applicability of metabolomics studies for a characterization of plant populations in the field, we have identified and analyzed in situ samples of nearby grown natural populations of Arabidopsis thaliana in Austria. A. thaliana is the primary molecular biological model system in plant biology with one of the best functionally annotated genomes representing a reference system for all other plant genome projects. The genomes of these novel natural populations were sequenced and phylogenetically compared to a comprehensive genome database of A. thaliana ecotypes. Experimental results on primary and secondary metabolite profiling and genotypic variation were functionally integrated by a data mining strategy, which combines statistical output of metabolomics data with genome-derived biochemical pathway reconstruction and metabolic modeling. Correlations of biochemical model predictions and population-specific genetic variation indicated varying strategies of metabolic regulation on a population level which enabled the direct comparison, differentiation, and prediction of metabolic adaptation of the same species to different habitats. These differences were most pronounced at organic and amino acid metabolism as well as at the interface of primary and secondary metabolism and allowed for the direct classification of population-specific metabolic phenotypes within geographically contiguous sampling sites.
机译:分子网络的实验高通量分析是表征植物新陈代谢适应环境的主要方法。但是,最近的研究表明,在受控条件下(例如生长室或温室),很难通过实验来预测原位代谢表型。这尤其是由于环境波动引起的原位样品的高分子变异。为了能够识别和追溯环境变化对植物代谢的影响,将需要一种对田间样品进行功能代谢组学解释的方法。为了测试代谢组学研究对田间植物种群表征的适用性,我们已经确定并分析了奥地利拟南芥附近自然种群的原位样品。拟南芥是植物生物学中的主要分子生物学模型系统,具有最佳功能注释的基因组之一,代表所有其他植物基因组计划的参考系统。对这些新的自然种群的基因组进行测序,并与拟南芥生态型的综合基因组数据库进行系统发育比较。通过数据挖掘策略在功能上整合了一级和二级代谢物谱和基因型变异的实验结果,该策略将代谢组学数据的统计输出与基因组衍生的生化途径重建和代谢建模相结合。生化模型预测与特定种群遗传变异的相关性表明,在种群水平上代谢调控的策略不同,从而可以直接比较,区分和预测同一物种对不同生境的代谢适应性。这些差异在有机和氨基酸代谢以及主要和次要代谢的界面上最为明显,并允许在地理上连续的采样位点内对群体特异性代谢表型进行直接分类。

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