首页> 外文会议>Biomedical Engineering and Biotechnology (iCBEB), 2012 International Conference on >NIR Determination of Three Critical Quality Attributes in Alcohol Precipitation Process of Lonicerae Japonicae with Uncertainty Analysis
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NIR Determination of Three Critical Quality Attributes in Alcohol Precipitation Process of Lonicerae Japonicae with Uncertainty Analysis

机译:不确定度分析近红外光谱法测定金银花酒精沉淀过程中三个关键质量属性

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The aim of this study was to investigate the feasibility of near infrared (NIR) spectroscopy and multivariate calibration (MVC) techniques in monitoring and understanding of the alcohol precipitation process of water extract of Lonicerae Japonicae within the framework of ICH's Quality by Design (QbD) and FDA's process analytical technology (PAT). The contents of Chlorogenic acid, Luteoloside and soluble solid were identified as three critical quality attributes (CQAs) to be monitored. After a comparison of different spectra preprocessing methods, the raw NIR spectra were applied to multivariate modeling. By the interval PLS (iPLS) method, three characteristic wavebands, 8802~7605 cm-1, 6001~6201 cm-1 and 7605~7308 cm-1, were selected for Chlorogenic acid, Luteoloside and soluble solid, respectively. PLS quantitative models based on these wavebands showed much improved performance. Moreover, prediction uncertainty was denoted and visualized by both the PLS confidence interval and simple interval calculation (SIC) interval. And a new index---Extent of Uncertainty (Eu) is proposed to assess the magnitude of uncertainty for CQAs with different dimensions in the same scale. The overall results provided the useful understanding of and deep insight into the alcohol precipitation process of Chinese herbal medicine (CHM).
机译:这项研究的目的是在ICH质量设计(QbD)框架内研究近红外(NIR)光谱和多变量校准(MVC)技术在监测和了解忍冬忍冬水提取物醇沉过程中的可行性。以及FDA的过程分析技术(PAT)。绿原酸,黄体甙和可溶性固体的含量被确定为要监测的三个关键质量属性(CQA)。在比较了不同的光谱预处理方法之后,将原始NIR光谱应用于多元建模。通过间隔PLS(iPLS)方法,分别选择了绿原酸,黄体甙和可溶性固体三个特征波段,分别为8802〜7605 cm-1、6001〜6201 cm-1和7605〜7308 cm-1。基于这些波段的PLS定量模型显示出大大提高的性能。此外,预测不确定性通过PLS置信区间和简单区间计算(SIC)区间表示和可视化。并提出了一种新的指标-不确定性范围(Eu)来评估相同规模下具有不同维度的CQA的不确定性大小。总体结果为中药(CHM)的醇沉过程提供了有益的理解和深刻的见解。

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