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Metabolomics Unravel Contrasting Effects of Biodiversity on the Performance of Individual Plant Species

机译:代谢组学揭示了生物多样性对植物个体表现的相反影响

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摘要

In spite of evidence for positive diversity-productivity relationships increasing plant diversity has highly variable effects on the performance of individual plant species, but the mechanisms behind these differential responses are far from being understood. To gain deeper insights into the physiological responses of individual plant species to increasing plant diversity we performed systematic untargeted metabolite profiling on a number of herbs derived from a grassland biodiversity experiment (Jena Experiment). The Jena Experiment comprises plots of varying species number (1, 2, 4, 8, 16 and 60) and number and composition of functional groups (1 to 4; grasses, legumes, tall herbs, small herbs). In this study the metabolomes of two tall-growing herbs (legume: Medicago x varia; non-legume: Knautia arvensis) and three small-growing herbs (legume: Lotus corniculatus; non-legumes: Bellis perennis, Leontodon autumnalis) in plant communities of increasing diversity were analyzed. For metabolite profiling we combined gas chromatography coupled to time-of-flight mass spectrometry (GC-TOF-MS) and UPLC coupled to FT-ICR-MS (LC-FT-MS) analyses from the same sample. This resulted in several thousands of detected m/z-features. ANOVA and multivariate statistical analysis revealed 139 significantly changed metabolites (30 by GC-TOF-MS and 109 by LC-FT-MS). The small-statured plants L. autumnalis, B. perennis and L. corniculatus showed metabolic response signatures to increasing plant diversity and species richness in contrast to tall-statured plants. Key-metabolites indicated C- and N-limitation for the non-leguminous small-statured species B. perennis and L. autumnalis, while the metabolic signature of the small-statured legume L. corniculatus indicated facilitation by other legumes. Thus, metabolomic analysis provided evidence for negative effects of resource competition on the investigated small-statured herbs that might mechanistically explain their decreasing performance with increasing plant diversity. In contrast, taller species often becoming dominant in mixed plant communities did not show modified metabolite profiles in response to altered resource availability with increasing plant diversity. Taken together, our study demonstrates that metabolite profiling is a strong diagnostic tool to assess individual metabolic phenotypes in response to plant diversity and ecophysiological adjustment.
机译:尽管有证据表明存在积极的多样性-生产力关系,但植物多样性的提高对单个植物物种的表现有很大的影响,但这些差异反应背后的机制尚不清楚。为了更深入地了解单个植物物种对增加植物多样性的生理反应,我们对源自草地生物多样性实验(耶拿实验)的多种草药进行了系统的无目标代谢产物分析。耶拿实验包括不同物种数(1、2、4、8、16和60)以及功能组的数目和组成(1-4;草,豆类,高大的草药,小草药)的样地。在这项研究中,植物群落中两种高生长草药(豆科植物:Medicago x varia;非豆科植物:Knautia arvensis)和三种小生长草药(豆科植物:Lotus corniculatus;非豆类:Bellis perennis,Leontodon autumnalis)的代谢组不断增加的多样性进行了分析。对于代谢物分析,我们结合了气相色谱与飞行时间质谱联用(GC-TOF-MS)和UPLC与FT-ICR-MS(LC-FT-MS)联用的方法。这导致检测到数千个m / z特征。方差分析和多元统计分析表明,有139种代谢物发生了显着变化(GC-TOF-MS分析了30种,LC-FT-MS分析了109种)。与高矮型植物相比,小矮型植物秋枯草,多年生芽孢杆菌和角质芽孢杆菌显示出对增加植物多样性和物种丰富度的代谢反应特征。关键代谢物表明非豆科小植物B. perennis和L. autumnalis的C和N限制,而小豆科植物L. corniculatus的代谢特征表明其他豆科植物具有促进作用。因此,代谢组学分析为资源竞争对所研究的小型草药的负面影响提供了证据,这可以从机械上解释其随植物多样性增加而降低的性能。相反,在混合植物群落中通常占主导地位的高等物种并未显示出响应于随植物多样性增加而改变的资源可利用性而显示出修饰的代谢产物特征。综上所述,我们的研究表明,代谢物谱分析是一种强大的诊断工具,可根据植物多样性和生态生理调节来评估个体代谢表型。

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