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Correcting for the effects of natural abundance in stable isotope resolved metabolomics experiments involving ultra-high resolution mass spectrometry

机译:在涉及超高分辨率质谱的稳定同位素分解代谢组学实验中校正自然丰度的影响

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Background Stable isotope tracing with ultra-high resolution Fourier transform-ion cyclotron resonance-mass spectrometry (FT-ICR-MS) can provide simultaneous determination of hundreds to thousands of metabolite isotopologue species without the need for chromatographic separation. Therefore, this experimental metabolomics methodology may allow the tracing of metabolic pathways starting from stable-isotope-enriched precursors, which can improve our mechanistic understanding of cellular metabolism. However, contributions to the observed intensities arising from the stable isotope's natural abundance must be subtracted (deisotoped) from the raw isotopologue peaks before interpretation. Previously posed deisotoping problems are sidestepped due to the isotopic resolution and identification of individual isotopologue peaks. This peak resolution and identification come from the very high mass resolution and accuracy of FT-ICR-MS and present an analytically solvable deisotoping problem, even in the context of stable-isotope enrichment. Results We present both a computationally feasible analytical solution and an algorithm to this newly posed deisotoping problem, which both work with any amount of 13C or 15N stable-isotope enrichment. We demonstrate this algorithm and correct for the effects of 13C natural abundance on a set of raw isotopologue intensities for a specific phosphatidylcholine lipid metabolite derived from a 13C-tracing experiment. Conclusions Correction for the effects of 13C natural abundance on a set of raw isotopologue intensities is computationally feasible when the raw isotopologues are isotopically resolved and identified. Such correction makes qualitative interpretation of stable isotope tracing easier and is required before attempting a more rigorous quantitative interpretation of the isotopologue data. The presented implementation is very robust with increasing metabolite size. Error analysis of the algorithm will be straightforward due to low relative error from the implementation itself. Furthermore, the algorithm may serve as an independent quality control measure for a set of observed isotopologue intensities.
机译:背景技术利用超高分辨率傅里叶变换离子回旋加速器共振质谱(FT-ICR-MS)进行稳定的同位素示踪,可同时测定数百至数千种代谢物的同位素,无需进行色谱分离。因此,这种实验性的代谢组学方法学可以追踪从富含稳定同位素的前体开始的代谢途径,从而可以提高我们对细胞代谢的机理理解。但是,在解释之前,必须从原始同位素同位素峰中减去(去同位素)稳定同位素自然丰度对观测强度的贡献。由于同位素拆分和单个同位素同位素峰的识别,先前提出的脱同位素问题得以避免。该峰的分离度和鉴定来自于FT-ICR-MS的极高的质量分离度和准确性,即使在稳定同位素富集的情况下,也存在可解析解决的脱同位素问题。结果我们针对此新提出的脱同位素问题提供了计算上可行的解析解和算法,它们均可在任意数量的 13 C或 15 N稳定同位素富集下工作。我们演示了该算法,并针对 13 C示踪实验衍生的特定磷脂酰胆碱脂质代谢产物,校正了 13 C天然丰度对一组原始同位素同位素强度的影响。结论同位素分解和鉴定原始同位素后,对 13 C自然丰度对一组原始同位素同位素强度的影响进行校正在计算上是可行的。这种校正使对稳定同位素示踪的定性解释更加容易,并且在尝试对同位素同位素数据进行更严格的定量解释之前需要进行这种校正。所提出的实施方案随着代谢物尺寸的增加而非常稳健。由于实现本身的相对误差较小,因此该算法的误差分析将很简单。此外,该算法可以用作一组观察到的同位素同位素强度的独立质量控制量度。

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