Sun Xiaoxu, Tang Zhishu, Song Zhongxing, Duan Jinao, Wang Changli
Shaanxi University of Chinese Medicine/Co-construction Collaborative Innovation Center for Chinese Medicine Resources Industrialization by Shaanxi & Education Ministry/Shaanxi Innovative Drug Research Center, Xianyang, China.
China Academy of Chinese Medical Sciences, Beijing, China.
Phytochem Anal. 2024 Jan;35(1):17-27. doi: 10.1002/pca.3269. Epub 2023 Jul 27.
Saposhnikovia divaricata (Turcz.) Schischk is one of the most widely used Chinese herbs worldwide. It has anti-inflammatory and analgesic properties and hence has a high clinical value. As the moisture level in S. divaricata is high after harvest, it requires drying.
We aimed to find a scientific drying method and optimize the drying conditions of the best drying method of S. divaricata using response surface methodology (RSM).
The effects of 4 different drying methods on the contents of prim-O-glucosylcimifugin, cimifugin, 5-O-methylvisamminol, and sec-O-glucosylhamaudol were determined using high-performance liquid chromatography. Chroma, the rehydration ratio, and active component content were used as indices, and slice thickness, drying temperature, and drying time were used as independent variables to optimize the drying conditions of the optimal drying method of S. divaricata using RSM combined with the Box-Behnken design.
The results showed that the optimal drying conditions were as follows: slice thickness, 4.00 mm; drying temperature, 60°C; and drying time, 15 h.
Under optimal drying conditions, the measured values were extremely close to the predicted values. The results of variance analysis showed that the model had a high degree of fit and the drying conditions of S. divaricata were optimized successfully.
防风是全球应用最广泛的中药材之一。它具有抗炎和镇痛特性,因此具有较高的临床价值。由于防风采收后含水量较高,需要进行干燥处理。
我们旨在寻找一种科学的干燥方法,并使用响应面法(RSM)优化防风最佳干燥方法的干燥条件。
采用高效液相色谱法测定4种不同干燥方法对升麻素苷、升麻素、5-O-甲基维斯阿米醇和亥茅酚苷含量的影响。以色度、复水率和活性成分含量为指标,以切片厚度、干燥温度和干燥时间为自变量,采用RSM结合Box-Behnken设计优化防风最佳干燥方法的干燥条件。
结果表明,最佳干燥条件如下:切片厚度4.00毫米;干燥温度60℃;干燥时间15小时。
在最佳干燥条件下,实测值与预测值极为接近。方差分析结果表明,该模型拟合度高,成功优化了防风的干燥条件。