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Comparative investigation for raw and processed Aconiti Lateralis Radix using chemical UPLC-MS profiling and multivariate classification techniques

机译:使用化学UPLC-MS分析和多元分类技术对生和加工后的乌头草进行比较研究

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A strategy combining chemical UPLC-MS profiling and multivariate classification techniques has been used for the comparison of raw and processed Aconiti Lateralis Radix. UPLC-MS was used to identify 18 characteristic compounds, which were selected for discrimination of the raw and two processed products (Heishunpian and Baifupian). Chemometric analyses, including the combination of a heat map and hierarchical cluster analysis (HCA) and principal component analysis (PCA), were used to visualize the discrimination of raw and two processed products. HCA and PCA provided a clear discrimination of raw Aconiti Lateralis Radix, Heishunpian and Baifupian. Finally, the counter-propagation artificial neural network (CP-ANN) was applied to confirm the results of HCA, PCA and to explore the effect of 18 compounds on samples differentiation and the rationality of processing. The results showed that this strategy could be successfully used for comparison of raw and two processed products of Aconiti Lateralis Radix, which could be used as a general procedure to compare herbal medicines and related processed products to elaborate the rationality of processing from the perspective of chemical composition.
机译:结合化学UPLC-MS分析和多元分类技术的策略已用于比较原始和加工后的乌头菜根。使用UPLC-MS鉴定了18种特征化合物,这些化合物被选择用于区分生产品和两种加工产品(黑顺片和百富片)。化学计量学分析(包括热图和层次聚类分析(HCA)和主成分分析(PCA)的组合)用于可视化对原料和两种加工产品的区分。 HCA和PCA对生附子,黑春片和白附片进行了明显的区分。最后,使用反向传播人工神经网络(CP-ANN)确认HCA,PCA的结果,并探索18种化合物对样品分化和处理合理性的影响。结果表明,该策略可成功地用于比较乌头草的生鲜和两种加工产品,可作为比较草药和相关加工产品的通用程序,从化学角度阐述加工的合理性。组成。

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