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GC-MS Fingerprinting Combined with Chemometric Methods Reveals Key Bioactive Components in Acori Tatarinowii Rhizoma

机译:GC-MS指纹图谱与化学计量学方法相结合揭示了阿科里Ta草中的关键生物活性成分

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摘要

This present study aims to identify the key bioactive components in acorus tatarinowii rhizoma (ATR), a traditional Chinese medicine (TCM) with various bioactivities. Partial least squares regression (PLSR) was employed to describe the relationship between the radical scavenging activity and the volatile components. The PLSR model was improved by outlier elimination and variable selection and was evaluated by 10-fold cross-validation and external validation in this study. Based on the PLSR model, eleven chemical components were identified as the key bioactive components by variable importance in projection. The final PLS regression model with these components has good predictive ability. The Q2 was 0.8284, and the root mean square error for prediction was 2.9641. The results indicated that the eleven components could be a pattern to predict the radical scavenging activity of ATR. In addition, we did not find any specific relationship between the radical scavenging ability and the habitat of the ATRs. This study proposed an efficient strategy to predict bioactive components using the combination of quantitative chromatography fingerprints and PLS regression, and has potential perspective for screening bioactive components in complex analytical systems, such as TCM.
机译:本研究的目的是鉴定塔格里乌斯菌(ATR),具有多种生物活性的中药(TCM)中的关键生物活性成分。偏最小二乘回归(PLSR)用于描述自由基清除活性和挥发性成分之间的关​​系。在本研究中,通过离群值消除和变量选择改进了PLSR模型,并通过10倍交叉验证和外部验证对PLSR模型进行了评估。根据PLSR模型,通过预测的重要性将11种化学成分确定为关键生物活性成分。具有这些成分的最终PLS回归模型具有良好的预测能力。 Q 2 为0.8284,预测的均方根误差为2.9641。结果表明,这十一种成分可能是预测ATR自由基清除活性的模式。此外,我们没有发现自由基清除能力与ATR的栖息地之间有任何特定的关系。这项研究提出了使用定量色谱指纹图谱和PLS回归相结合的预测生物活性成分的有效策略,并为筛选复杂分析系统(例如中药)中的生物活性成分具有潜在的前景。

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