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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Comparison of two algorithmic data processing strategies for metabolic fingerprinting by comprehensive two-dimensional gas chromatography-time-of-flight mass spectrometry
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Comparison of two algorithmic data processing strategies for metabolic fingerprinting by comprehensive two-dimensional gas chromatography-time-of-flight mass spectrometry

机译:综合二维气相色谱-飞行时间质谱法比较代谢指纹图谱的两种算法数据处理策略

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The alignment algorithm Statistical Compare (SC) developed by LECO Corporation for the processing of comprehensive two-dimensional gas chromatography-time-of-flight mass spectrometry (GC × GC-TOFMS) data was validated and compared to the in-house developed retention time correction and data alignment tool INCA (Integrative Normalization and Comparative Analysis) by a spike-in experiment and the comparative metabolic fingerprinting of a wild type versus a double mutant strain of Escherichia coli (E. coli). Starting with the same peak lists generated by LECO's ChromaTOF software, the accuracy of peak alignment and detection of 1.1- to 4-fold changes in metabolite concentration was assessed by spiking 20 standard compounds into an aqueous methanol extract of E. coli. To provide the same quality input signals for both alignment routines, the universal m/z 73 trace of the trimethylsilyl (TMS) group was used as a quantitative measure for all features. The performance of data processing and alignment was evaluated and illustrated by ROC curves. Statistical Compare performed marginally better at the lower fold changes, while INCA did so at the higher fold changes. Using SC, quantitative precision could be improved substantially by exploiting the signal intensities of metabolite-specific unique (U) m/z ion traces rather than the universal m/z 73 trace. A list of 56 features that distinguished the two E. coli strains was obtained by the SC alignment using m/z U with an estimated false discovery rate (FDR) of <0.05. Ultimately, 23 metabolites could be identified, one additional and five less than with INCA due to the failure of SC to extract unitized m/z U's across all fingerprints with suitable spectral intensities for the latter metabolites.
机译:验证了LECO Corporation开发的用于处理二维二维气相色谱-飞行时间质谱(GC×GC-TOFMS)数据的比对算法统计比较(SC),并将其与内部开发的保留时间进行了比较校正和数据对齐工具INCA(整合归一化和比较分析),通过加标实验以及野生型与双突变型大肠杆菌(大肠杆菌)的比较代谢指纹图谱进行比较。从LECO的ChromaTOF软件生成的相同峰列表开始,通过将20种标准化合物掺入大肠杆菌的甲醇水溶液中来评估峰比对和检测代谢物浓度的1.1至4倍变化的准确性。为了为两个对齐例程提供相同质量的输入信号,三甲基硅烷基(TMS)组的通用m / z 73迹线被用作所有功能的定量度量。通过ROC曲线评估和说明了数据处理和对齐的性能。统计比较在较低的倍数变化处表现略好,而INCA在较高的倍数变化处表现较好。使用SC,通过利用代谢物特定的唯一(U)m / z离子迹线而不是通用m / z 73迹线的信号强度,可以大大提高定量精度。使用m / z U通过SC比对获得了区分这两种大肠杆菌菌株的56个特征列表,估计的错误发现率(FDR)<0.05。最终,可以鉴定出23种代谢物,这比INCA少1种,少5种,这是因为SC无法在所有指纹上提取具有合适光谱强度的统一指纹m / zU。

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