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Optimization of a chromatographic process for the purification of saponins in Panax notoginseng extract using a design space approach

机译:设计空间法优化三七提取物中皂苷的色谱分离工艺

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Quality by Design principle was applied to optimize the load and wash steps in the chromatographic process of Panax notoginseng extracts. Saponin recovery, saponin purity and saponin yield per unit volume of resin were identified as the process critical quality attributes (CQAs) of the chromatographic process. The critical process parameters (CPPs) were determined by an Ishikawa diagram combined with a Failure Mode and Effect Analysis. Column height/diameter ratio, load rate, load volume, total saponin concentration in loading solution and wash volume were identified as CPPs for the load and wash steps. The models between CPPs and process CQAs were developed according to the data obtained from central composite designed experiments. Determination coefficients (R-2) were higher than 0.83 for all the models. Loss mechanism of saponins was discussed, overloading may lead to the loss of all the saponins and wash with water may lead to the loss of notoginsenoside R-1, ginsenoside Rg(1) and ginsenoside Re. Design spaces with different acceptable probabilities were calculated using a Monte-Carlo simulation method. Recommended normal operation region is located in height/diameter ratio of 13.5-15.0, load rate of 1.5-1.6 BV/h, load volume of 5.5-6.0 BV, total saponin concentration of 10.4-12.2 mg/g, wash volume of 2.0-2.6 BV when acceptable probability was set to 0.80. The verification experimental values were in a good agreement with the predicted values. The design space is reliable and working within it can attain process CQAs criteria with a high probability. (C) 2015 Elsevier B.V. All rights reserved.
机译:采用“设计质量”原理来优化三七提取物色谱过程中的上样和洗涤步骤。每单位体积树脂的皂苷回收率,皂苷纯度和皂苷产率被确定为色谱过程的过程关键质量属性(CQA)。关键过程参数(CPP)由Ishikawa图结合故障模式和效果分析确定。色谱柱高度/直径比,上样速率,上样体积,上样溶液中总皂苷浓度和洗涤体积被确定为上样和洗涤步骤的CPP。根据从中央复合设计实验获得的数据,开发了CPP和过程CQA之间的模型。所有模型的测定系数(R-2)均高于0.83。讨论了皂苷的损失机理,过载可能导致所有皂苷的损失,用水洗涤可能导致三七皂苷R-1,人参皂苷Rg(1)和人参皂苷Re的丢失。使用蒙特卡洛模拟方法计算了具有不同可接受概率的设计空间。建议的正常操作区域位于高度/直径比为13.5-15.0,负载率为1.5-1.6 BV / h,负载量为5.5-6.0 BV,总皂苷浓度为10.4-12.2 mg / g,洗涤量为2.0-当可接受的概率设置为0.80时为2.6 BV。验证实验值与预测值非常吻合。设计空间是可靠的,并且在其中进行工作可以很有可能达到过程CQAs标准。 (C)2015 Elsevier B.V.保留所有权利。

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