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Application of experimental design and radial basis function neural network to the separation and determination of active components in traditional Chinese medicines by capillary electrophoresis

机译:实验设计和径向基函数神经网络在毛细管电泳分离中药中有效成分中的应用

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摘要

Orthogonal design has been used to the optimization of separation and determination of two active components in traditional Chinese medicines by capillary electrophoresis. The concentration of phosphate, applied voltage, organic modifier content and buffer pH were selected as variable parameters. Their different effects on peak resolution were studied by the experimental design method. Optimized separation conditions were obtained and successfully applied to the separation and determination of aconitine and hypaconitine in Aconitum medicinal herbs. Good separation was achieved within 7 min using a buffer system composed of 20 mmol L~(-1) phosphate and 35% acetonitrile at pH 9.5. The applied voltage was 14 kV and the detection was set at 235 nm. In addition, a radial basis function neural network with a "4-18-1" structure was developed based on the experimental results of orthogonal design and uniform design, and was applied to the prediction of peak resolution of the two active components under the optimum separation conditions given by orthogonal design. The predicted results were in good agreement with the experimental values, indicating that radial basis function neural network is a potential way for the selection of separation conditions in capillary electrophoresis.
机译:正交设计已用于优化毛细管电泳中药中两种活性成分的分离和测定。选择磷酸盐浓度,施加电压,有机改性剂含量和缓冲液pH作为可变参数。通过实验设计方法研究了它们对峰分离度的不同影响。获得了优化的分离条件,并将其成功应用于乌头碱和乌头碱的分离与测定。使用pH 9.5的20 mmol L〜(-1)磷酸盐和35%乙腈组成的缓冲液系统,可在7分钟内实现良好分离。施加的电压为14 kV,检测设置为235 nm。此外,基于正交设计和均匀设计的实验结果,开发了具有“ 4-18-1”结构的径向基函数神经网络,并将其应用于最优条件下两个活性成分的峰分辨率预测。正交设计给出的分离条件。预测结果与实验值吻合较好,表明径向基函数神经网络是毛细管电泳分离条件选择的潜在途径。

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