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Metabolomics of four TCM herbal products: application of HPTLC analysis

机译:四种中草药产品的代谢组学:HPTLC分析的应用

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This metabolomics study involves the multivariate analysis (MVA) of the HPTLC fingerprints of non-polar phyto-chemicals in four popular medicinal herbs' dried roots ‘radix’ (Aster tataricus, Atractylodes lancea, Gentiana rigescens and Gentiana macrophylla). These herbal products have been and are still being used in traditional Chinese medicine for treating many ailments. The extraction of these non-polar phyto-chemicals was carried out using petroleum ether and analysed by HPTLC using a developing solvent mixture of toluene–ethyl acetate (15?:?1). Three main MVAs were employed for statistical data exploration: Principal Component Analysis (PCA), Partial Least Squares-Discriminant Analysis (PLS-DA) and orthogonal PLS-DA. The model score plot results showed that all three MVAs showed very good spatial distributions with clear clusters/grouping of each herb. Also, statistically, all three models had high reproducibility and predictivity values (?0.5). In conclusion, HPTLC with its simplicity and robustness should be explored in the application of MVA...
机译:这项代谢组学研究涉及对四种流行的草药干根“基数”(紫tract,白术,龙胆龙胆和龙胆龙胆)中非极性植物化学物质的HPTLC指纹图谱进行多变量分析(MVA)。这些草药产品已经并且仍在中药中用于治疗多种疾病。这些非极性植物化学物质的提取使用石油醚进行,并通过HPTLC的甲苯-乙酸​​乙酯(15?:?1)展开混合溶剂进行分析。三个主要的MVA用于统计数据探索:主成分分析(PCA),偏最小二乘判别分析(PLS-DA)和正交PLS-DA。模型得分图结果显示,所有三种MVA均显示出非常好的空间分布,每种草药的簇/分组清晰。而且,从统计学上讲,所有三个模型都具有较高的可重复性和可预测性值(?0.5)。总之,应在MVA的应用中探索HPTLC的简单性和鲁棒性。

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