Department of Nutrition and Food Hygiene, School of Public Health, Peking University, Beijing 100191, China.
Beijing Key Laboratory of Functional Food from Plant Resources, College of Food Science & Nutritional Engineering, China Agricultural University, Beijing 100083, China.
Molecules. 2022 Oct 13;27(20):6851. doi: 10.3390/molecules27206851.
Nowadays, subcritical water extraction (SWE) techniques are extensively investigated worldwide, while the thermal reactions that inevitably occur under subcritical water conditions are rarely studied. In order to investigate the behaviors of the different reactions during SWE of bioactive compounds from licorice, the Maillard reaction process was accessed via their products and the hydrolytic reaction was analyzed according to the kinetic parameters. In addition, the contents of total phenolics and flavonoids in the extracts obtained at the different temperatures were determined and total antioxidant capacities were evaluated by HPLC-ABTS. The results showed that flavonoids and phenolics from licorice as well as new compounds generated via the Maillard reaction contributed to the antioxidant activity of the extracts. The fluorescence, color and absorbance of the extracts showed that the degree of the Maillard reaction increased with the rise of the extraction temperature. The kinetics of extraction for glycyrrhizic acid showed that it was firstly extracted by diffusion, and then was hydrolyzed into glycyrrhetinic acid 3--mono-β-D-glucuronide and glycyrrhetinic acid following a first-order mechanism. These findings could provide deep insights into the SWE process and a new method for producing glycyrrhetinic acid 3--mono-β-D-glucuronide and glycyrrhetinic acid.
如今,亚临界水萃取(SWE)技术在全球范围内得到了广泛研究,而在亚临界水条件下不可避免发生的热反应却很少被研究。为了研究从甘草中生物活性化合物的 SWE 过程中的不同反应行为,通过产物来研究美拉德反应过程,根据动力学参数来分析水解反应。此外,还测定了在不同温度下获得的提取物中总酚类和类黄酮的含量,并通过 HPLC-ABTS 测定了总抗氧化能力。结果表明,甘草中的类黄酮和酚类以及美拉德反应生成的新化合物对提取物的抗氧化活性有贡献。提取物的荧光、颜色和吸光度表明,美拉德反应的程度随着提取温度的升高而增加。甘草酸的萃取动力学表明,它首先通过扩散进行萃取,然后按照一级机制水解成甘草次酸 3--单--β-D-葡萄糖醛酸苷和甘草次酸。这些发现可以深入了解 SWE 过程,并为生产甘草次酸 3--单--β-D-葡萄糖醛酸苷和甘草次酸提供一种新方法。