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Quality Evaluation of Mahonia bealei (Fort.) Carr. Using Supercritical Fluid Chromatography with Chemical Pattern Recognition

机译:Mahonia Bealei(Fort.)Carr的质量评价。使用超临界流体色谱法与化学模式识别

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摘要

Mahonia bealei (Fort.) Carr. (M. bealei) plays an important role in the treatment of many diseases. In the present study, a comprehensive method combining supercritical fluid chromatography (SFC) fingerprints and chemical pattern recognition (CPR) for quality evaluation of M. bealei was developed. Similarity analysis, hierarchical cluster analysis (HCA), principal component analysis (PCA) were applied to classify and evaluate the samples of wild M. bealei, cultivated M. bealei and its substitutes according to the peak area of 11 components but an accurate classification could not be achieved. PLS-DA was then adopted to select the characteristic variables based on variable importance in projection (VIP) values that responsible for accurate classification. Six characteristics peaks with higher VIP values (≥1) were selected for building the CPR model. Based on the six variables, three types of samples were accurately classified into three related clusters. The model was further validated by a testing set samples and predication set samples. The results indicated the model was successfully established and predictive ability was also verified satisfactory. The established model demonstrated that the developed SFC coupled with PLS-DA method showed a great potential application for quality assessment of M. bealei.
机译:Mahonia Beallei(堡垒)Carr。 (M. Beallei)在治疗许多疾病中起着重要作用。在本研究中,开发了一种结合超临界流体色谱(SFC)指纹和化学模式识别(CPR)的综合方法,用于M. Bealei的质量评估。相似性分析,分层聚类分析(HCA),主要成分分析(PCA)用于分类和评估野生M. Beali的样品,根据11个组分的峰面积,但是准确的分类可以不实现。然后采用PLS-DA基于对负责准确分类的投影(VIP)值的可变重要性来选择特征变量。选择具有较高VIP值(≥1)的六个特征峰用于构建CPR模型。基于六个变量,将三种类型的样品精确分为三种相关的簇。通过测试集样本和预测集样本进一步验证该模型。结果表明该模型成功建立,预测能力也核实令人满意。所建立的模型表明,与PLS-DA的开发的SFC耦合的方法显示出对M. Beali的质量评估的巨大潜在应用。

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