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首页> 外文期刊>Chromatographia >The Short and Long of it: Shorter Chromatographic Analysis Suffice for Sample Classification During UHPLC-MS-Based Metabolic Fingerprinting
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The Short and Long of it: Shorter Chromatographic Analysis Suffice for Sample Classification During UHPLC-MS-Based Metabolic Fingerprinting

机译:它的长短:基于UHPLC-MS的代谢指纹图谱中用于样品分类的更短的色谱分析就足够了

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Ultra high-performance liquid chromatography hyphenated to mass spectrometry (UHPLC-MS) technologies has been widely applied in metabolomics, and the high resolution and peak capacity thereof are only some of the key aspects that are exploited in such and related fields. In the current study, we investigated if low resolution chromatography, with the aid of multivariate data analyses, could be sufficient for a metabolic fingerprinting study that aims at discriminating between samples of different biological status or origin. UHPLC-MS data from chemically-treated Arabidopsis thaliana plants were used and chromatograms with different gradient lengths were compared. MarkerLynx™ technology was employed for data mining, followed by principal component analysis (PCA) and orthogonal projections to latent structure discriminant analysis (OPLS-DA) as multivariate statistical interpretations. The results showed that, despite the congestion in low resolution chromatograms (of 5 and 10 min), samples could be classified based on their respective biological background in a similar manner as when using chromatograms with better resolution (of 20 and 40 min). This paper thus underlines that, in a metabolic fingerprinting study, low resolution chromatography together with multivariate data analyses suffice for biological classification of samples. The results also suggest that, depending on the initial objective of the undertaken study, optimisation in chromatographic resolution prior to full scale metabolomics studies is mandatory.
机译:超高效液相色谱-质谱联用技术(UHPLC-MS)已广泛应用于代谢组学研究中,其高分辨率和峰容量只是该领域和相关领域开发的一些关键方面。在当前研究中,我们调查了借助多变量数据分析进行的低分辨率色谱法是否足以进行旨在区分不同生物学状态或来源的样本的代谢指纹研究。使用化学处理过的拟南芥植物的UHPLC-MS数据,并比较了不同梯度长度的色谱图。 MarkerLynx™技术用于数据挖掘,然后进行主成分分析(PCA)和对潜在结构判别分析的正交投影(OPLS-DA)作为多变量统计解释。结果表明,尽管低分辨率色谱图(5分钟和10分钟)出现拥塞,但仍可以根据其各自的生物学背景对样品进行分类,方法与使用分辨率更高(20分钟和40分钟的色谱图)时相似。因此,本文强调,在代谢指纹图谱研究中,低分辨率色谱和多变量数据分析足以满足样品的生物学分类要求。结果还表明,根据所进行研究的最初目标,在大规模代谢组学研究之前,色谱分离度的优化是强制性的。

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