毛杨叶次生芳香代谢物的快速筛选。

Anne E Harman-Ware, Madhavi Z Martin, Nancy L Engle, Crissa Doeppke, Timothy J Tschaplinski
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摘要

背景:高通量代谢组学分析方法需要用于生物能源相关原料如杨树(Populus sp.)的种群规模研究。本文报道了利用热解-分子束质谱(pym - mbms)快速测定毛杨叶片中可提取芳香代谢物的相对丰度。对杨树叶片进行了分析,并通过GC/MS对提取物进行了验证,以确定关键的光谱特征,用于建立PLS模型来预测杨树全叶中可提取的芳香代谢物的相对组成。结果:基于GC/MS分析和pyy -MBMS分析的相对丰度排序的Pearson相关系数为0.86,R2 = 0.76,基于MBMS光谱选择离子的简化预测方法。在Clatskanie集合中,对y- mbms光谱特征影响最大的代谢物包括以下化合物:儿茶酚、水杨皮素、水杨酸- coumaryl - gluco苷缀合物、α-水杨酸水杨酸、tremulacin,以及其他水杨酸、trichocarpin、水杨酸和各种水杨酸缀合物。通过GC/MS分析发现,py-MBMS光谱中与可提取芳香族代谢物丰度相关性最高的离子包括m/z 68、71、77、91、94、105、107、108和122,这些离子可用于开发无需PLS模型或先验测量的简化预测方法。结论:简化的ppy - mbms方法能够快速筛选叶片组织中相对丰富的可提取芳香族次生代谢物,从而在需要全面代谢组学的大群体中对样品进行优先排序,最终为植物系统生物学模型提供信息,并推进可再生燃料和化学品优化生物质原料的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Rapid screening of secondary aromatic metabolites in Populus trichocarpa leaves.

Background: High-throughput metabolomics analytical methodology is needed for population-scale studies of bioenergy-relevant feedstocks such as poplar (Populus sp.). Here, the authors report the relative abundance of extractable aromatic metabolites in Populus trichocarpa leaves rapidly estimated using pyrolysis-molecular beam mass spectrometry (py-MBMS). Poplar leaves were analyzed in conjunction with and validated by GC/MS analysis of extracts to determine key spectral features used to build PLS models to predict the relative composition of extractable aromatic metabolites in whole poplar leaves.

Results: The Pearson correlation coefficient for the relative abundance of extractable aromatic metabolites based on ranking between GC/MS analysis and py-MBMS analysis of the Boardman leaf set was 0.86 with R2 = 0.76 using a simplified prediction approach from select ions in MBMS spectra. Metabolites most influential to py-MBMS spectral features in the Clatskanie set included the following compounds: catechol, salicortin, salicyloyl-coumaroyl-glucoside conjugates, α-salicyloylsalicin, tremulacin, as well as other salicylates, trichocarpin, salicylic acid, and various tremuloidin conjugates. Ions in py-MBMS spectra with the highest correlation to the abundance of extractable aromatic metabolites as determined by GC/MS analysis of extracts, included m/z 68, 71, 77, 91, 94, 105, 107, 108, and 122, and were used to develop the simplified prediction approach without PLS models or a priori measurements.

Conclusions: The simplified py-MBMS method is capable of rapidly screening leaf tissue for relative abundance of extractable aromatic secondary metabolites to enable prioritization of samples in large populations requiring comprehensive metabolomics that will ultimately inform plant systems biology models and advance the development of optimized biomass feedstocks for renewable fuels and chemicals.

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