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首页> 外文期刊>Rapid Communications in Mass Spectrometry: RCM >Novel software for data analysis of Fourier transform ion cyclotron resonance mass spectra applied to natural organic matter
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Novel software for data analysis of Fourier transform ion cyclotron resonance mass spectra applied to natural organic matter

机译:适用于天然有机物的傅里叶变换离子回旋共振质谱数据分析的新型软件

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Natural organic matter (NOM) occurs as an extremely complex mixture of large, charged molecules that are formed by secondary synthesis reactions. Due to their nature, their full characterization is an important challenge to scientists specializing in NOM as well as analytical chemistry. Ultra-highresolution Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS) analysis enables the identification of thousands of masses in a single measurement. A major challenge in the data analysis process of NOM using the FT-ICR MS technique is the need to sort the entire data set and to present it in an accessible mode. Here we present a simple targeted algorithm called the David Mass Sort (DMS) algorithm which facilitates the detection and counting of consecutive series of masses correlated to any selected mass spacing. This program searches for specific mass differences among all of the masses in a single spectrum against all of the masses in the same spectrum. As a representative case, the current study focuses on the analysis of the well-characterized Suwannee River humic and fulvic acid (SRHA and SRFA, respectively). By applying this algorithm, we were able to find and assess the amount of singly and doubly charged molecules. In addition we present the capabilities of the program to detect any series of consecutive masses correlated to specific mass spacing, e.g. COO, H_2, OCH_2 and O_2. Under several limitations, these mass spacings may be correlated to both chemical and biochemical changes which occur simultaneously during the formation and/or degradation of large mixtures of compounds.
机译:天然有机物(NOM)是由次级合成反应形成的带电大分子的极其复杂的混合物。由于其性质,它们的全面表征对于专门研究NOM和分析化学的科学家而言是一项重要的挑战。超高分辨率傅里叶变换离子回旋共振质谱(FT-ICR MS)分析可在一次测量中识别数千种质量。使用FT-ICR MS技术进行NOM数据分析过程中的主要挑战是需要对整个数据集进行排序,并以可访问的方式进行呈现。在这里,我们提出了一种称为David Mass Sort(DMS)算法的简单目标算法,该算法有助于检测和计数与任何选定质量间隔相关的连续质量系列。该程序搜索单个质谱图中所有质谱相对于相同质谱中所有质谱的特定质量差异。作为代表性案例,当前的研究重点是对特征明确的苏万尼河腐殖酸和富里酸(分别为SRHA和SRFA)进行分析。通过应用该算法,我们能够发现和评估单电荷和双电荷分子的数量。此外,我们还提供了该程序检测与特定质量间隔相关的任何系列连续质量的功能,例如: COO,H_2,OCH_2和O_2。在几个限制下,这些质量间距可能与化合物的大混合物的形成和/或降解期间同时发生的化学和生物化学变化相关。

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