Wang Rong, Zhou Weibiao, Jiang Xiaohui
Food Science and Technology Programme, Department of Chemistry, National University of Singapore, Science Drive 4, Singapore 117543.
J Agric Food Chem. 2008 Apr 23;56(8):2694-701. doi: 10.1021/jf0730338. Epub 2008 Mar 25.
(-)-Epigallocatechin gallate (EGCG) is the most abundant catechin in green tea, which has been linked with many health benefits. To ensure the conceivable health benefits from thermally processed products, a kinetic study on the stability of (-)-EGCG in aqueous system was carried out using a HPLC-UV system and Matlab programming. Simultaneous degradation and epimerization of (-)-EGCG were characterized during isothermal reactions at low temperatures (25-100 degrees C) combined with previously conducted experimental results at high temperature (100-165 degrees C); the degradation and epimerization complied with first-order reaction and their rate constants followed Arrhenius equation. Mathematical models for the stability of (-)-EGCG were established and validated by the reactions at 70 degrees C and with varied concentrations from different catechin sources. Two specific temperature points in the reaction kinetics were identified, at 44 and 98 degrees C, respectively. Below 44 degrees C, the degradation was more profound. Above 44 degrees C, the epimerization from (-)-gallocatechin gallate (GCG) to (-)-EGCG was faster than degradation. When temperature increased to 98 degrees C and above, the epimerization from (-)-GCG to (-)-EGCG became prominent. Our results also indicated that the turning point of 82 degrees C reported in the literature for the reaction kinetics of catechins would need to be re-examined.
(-)-表没食子儿茶素没食子酸酯(EGCG)是绿茶中含量最丰富的儿茶素,与多种健康益处相关。为确保热加工产品能带来可想象的健康益处,使用高效液相色谱-紫外检测系统和Matlab编程对(-)-EGCG在水体系中的稳定性进行了动力学研究。结合之前在高温(100 - 165℃)下进行的实验结果,对低温(25 - 100℃)等温反应过程中(-)-EGCG的同时降解和差向异构化进行了表征;降解和差向异构化符合一级反应,其速率常数遵循阿伦尼乌斯方程。通过在70℃以及不同儿茶素来源的不同浓度下进行的反应,建立并验证了(-)-EGCG稳定性的数学模型。确定了反应动力学中的两个特定温度点,分别为44℃和98℃。低于44℃时,降解更为显著。高于44℃时,(-)-没食子儿茶素没食子酸酯(GCG)向(-)-EGCG的差向异构化比降解更快。当温度升至98℃及以上时,(-)-GCG向(-)-EGCG的差向异构化变得显著。我们的结果还表明,文献中报道的儿茶素反应动力学82℃的转折点需要重新审视。