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Response Surface Methodology to Optimize Enzymatic Preparation of Deapio-Platycodin D and Platycodin D from Radix Platycodi

机译:响应面法优化酶解法从桔梗中制备Deapio-Platycodin D和Platycodin D

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In the present work, we reported the enzymatic preparation of deapio-platycodin D (dPD) and platycodin D (PD) optimized by response surface methodology (RSM) from Radix Platycodi. During investigation of the hydrolysis of crude platycosides by various glycoside hydrolases, snailase showed a strong ability to transform deapio-platycoside E (dPE) and platycoside E (PE) into dPD and PD with 100% conversion. RSM was used to optimize the effects of the reaction temperature (35–45 °C), enzyme load (5–20%), and reaction time (4–24 h) on the conversion process. Validation of the RSM model was verified by the good agreement between the experimental and the predicted values of dPD and PD conversion yield. The optimum preparation conditions were as follows: temperature, 43 °C; enzyme load, 15%; reaction time, 22 h. The biotransformation pathways were dPE→dPD3→dPD and PE→PD3→PD, respectively. The determined method may be highly applicable for the enzymatic preparation of dPD and PD for medicinal purposes and also for commercial use.
机译:在目前的工作中,我们报道了通过Radix Platycodi的响应面方法(RSM)优化的脱脂鸭绿素D(dPD)和鸭绿素D(PD)的酶法制备。在研究各种糖苷水解酶水解粗制桔梗的过程中,snailase表现出很强的能力,可以将脱脂桔梗苷E(dPE)和桔梗E(PE)转化为dPD和PD,转化率为100%。 RSM用于优化反应温度(35–45°C),酶负载(5–20%)和反应时间(4–24 h)对转化过程的影响。通过dPD和PD转化率的实验值与预测值之间的良好一致性来验证RSM模型的有效性。最佳的制备条件如下:温度为43℃。酶负荷15%反应时间22小时。生物转化途径分别是dPE→dPD3→dPD和PE→PD3→PD。所确定的方法可高度适用于酶促制备dPD和PD的药用,也可用于商业用途。

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