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Pyrolysis-molecular beam mass spectrometry to characterize soil organic matter composition in chemically isolated fractions from differing land uses

机译:热解-分子束质谱法表征不同土地用途的化学分离馏分中的土壤有机质组成

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Today's questions concerning the role of soil organic matter (SOM) in soil fertility, ecosystem functioning and global change can only be addressed through knowledge of the controls on SOM stabilization and their interactions. Pyrolysis molecular beam mass spectrometry (py-MBMS) provides a powerful and rapid means of assessing the biochemical composition of SOM. However, characterization of SOM composition alone is insufficient to predict its dynamic behavior. Chemical fractionation is frequently used to isolate more homogeneous SOM components, but the composition of fractions is frequently unknown. We characterized biochemical SOM composition in two previously studied soils from the USA, under contrasting land uses: cultivated agriculture and native vegetation. Bulk soils, as well as chemically isolated SOM fractions (humic acid, humin and non-acid hydrolysable), were analyzed using py-MBMS. Principal components analysis (PCA) showed distinct differences in the SOM composition of isolated fractions. Py-MBMS spectra and PCA loadings were dominated by low molecular weight fragments associated with peptides and other N-containing compounds. The py-MBMS spectra were similar for native whole-soil samples under different vegetation, while cultivation increased heterogeneity. An approach based on previously published data on marker signals also suggests the importance of peptides in distinguishing samples. While the approach described here represents significant progress in the characterization of changing SOM composition, a truly quantitative analysis will only be achieved using multiple internal standards and by correcting for inorganic interference during py-MBMS analysis. Overall, we have provided proof of principle that py-MBMS can be a powerful tool to understand the controls on SOM dynamics, and further method development is underway.
机译:今天有关土壤有机质(SOM)在土壤肥力,生态系统功能和全球变化中的作用的问题只能通过了解SOM稳定控制及其相互作用来解决。热解分子束质谱(py-MBMS)提供了一种强大而快速的方法来评估SOM的生化成分。但是,仅对SOM成分进行表征不足以预测其动态行为。化学分馏通常用于分离更均一的SOM组分,但是馏分的组成通常是未知的。我们在美国两种以前研究过的土壤中对生化SOM组成进行了表征,对比了土地用途:耕作的农业和本地植被。使用py-MBMS分析了大块土壤以及化学分离的SOM馏分(腐殖酸,腐殖质和非酸可水解物)。主成分分析(PCA)显示分离出的馏分的SOM组成存在明显差异。 Py-MBMS谱图和PCA负载量主要是与肽和其他含氮化合物相关的低分子量片段。在不同植被下,天然全土壤样品的py-MBMS光谱相似,而耕种增加了异质性。基于先前发布的有关标记信号的数据的方法还表明,肽在区分样品中的重要性。尽管此处描述的方法在改变SOM成分的表征方面取得了重大进展,但只有使用多个内标物并通过校正py-MBMS分析过程中的无机干扰才能实现真正的定量分析。总体而言,我们提供了原理证明,py-MBMS可以成为了解SOM动力学控制的强大工具,并且进一步的方法开发正在进行中。

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