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Mass spectrometric characterization of amino sugar aldononitrile acetate derivatives used for isotope enrichment assessment of microbial residues

机译:用于微生物残留同位素富集评估的乙酸氨基糖醛醇腈衍生物的质谱表征

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Identifying the transformation of amino sugars in soils is essential in understanding microbial contribution to soil organic matter turnover and sequestration. Using a recently developed method, combining gas chromatograph/mass spectrometry (GC/MS) with laboratory incubation of substrates containing 13C or 15N isotopes, we were able to trace isotopic changes in amino sugar compounds. This allows us to quantitatively evaluate C or N enrichment in amino sugars during transformation in soils using the fragment (F) abundance ratio of m/z F + n to F (n is original skeleton atom number in each fragment). However, there is still lack of detail structural and substitutional information for each ion fragment. In order to improve the interpretation and increase our ability to study amino sugar turnover, we grew labeled amino sugars in lab-cultured organisms. We spectrometrically investigated the ion structures and original skeleton C number (mass shift n) in major ion fragments based on applying multiple representative isotope labels. Our results categorically confirm that previously made assumptions were correct regarding the substitutional number n of the glucosamine (He et al., 2006). Our study also added valuable structural information for aldononitrile acetate derivatized glucosamine and muramic acid upon electron impact ionization in MS.
机译:识别土壤中氨基糖的转化对于理解微生物对土壤有机质转化和固存的贡献至关重要。使用最新开发的方法,将气相色谱/质谱(GC / MS)与包含13C或15N同位素的底物的实验室培养相结合,我们能够追踪氨基糖化合物的同位素变化。这使我们能够使用m / z F + n与F的片段(F)丰度比(n是每个片段中的原始骨架原子数)来定量评估土壤转化过程中氨基糖中C或N的富集程度。但是,仍然缺少每个离子片段的详细结构和取代信息。为了改善解释并提高我们研究氨基糖周转率的能力,我们在实验室培养的生物中种植了标记的氨基糖。我们通过应用多个代表性的同位素标记,对主要离子碎片中的离子结构和原始骨架C数(质量位移n)进行了光谱分析。我们的研究结果明确证实,先前做出的关于葡萄糖胺取代数n的假设是正确的(He等,2006)。我们的研究还为MS中电子碰撞电离时乙酸戊醛腈衍生的葡糖胺和山梨酸增加了有价值的结构信息。

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