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金合欢素和黄烷酮在高温氧化 Cyclopia genistoides(L.)Vent. 植物材料过程中的热降解动力学建模。

Thermal Degradation Kinetics Modeling of Benzophenones and Xanthones during High-Temperature Oxidation of Cyclopia genistoides (L.) Vent. Plant Material.

机构信息

†Post-Harvest and Wine Technology Division, Agricultural Research Council (ARC) Infruitec-Nietvoorbij, Private Bag X5026, Stellenbosch 7599, South Africa.

‡Department of Food Science, Stellenbosch University, Private Bag X1, Matieland 7602, South Africa.

出版信息

J Agric Food Chem. 2015 Jun 10;63(22):5518-27. doi: 10.1021/acs.jafc.5b01657. Epub 2015 May 27.

Abstract

Degradation of the major benzophenones, iriflophenone-3-C-glucoside-4-O-glucoside and iriflophenone-3-C-glucoside, and the major xanthones, mangiferin and isomangiferin, of Cyclopia genistoides followed first-order reaction kinetics during high-temperature oxidation of the plant material at 80 and 90 °C. Iriflophenone-3-C-glucoside-4-O-glucoside was shown to be the most thermally stable compound. Isomangiferin was the second most stable compound at 80 °C, while its degradation rate constant was influenced the most by increased temperature. Mangiferin and iriflophenone-3-C-glucoside had comparable degradation rate constants at 80 °C. The thermal degradation kinetic model was subsequently evaluated by subjecting different batches of plant material to oxidative conditions (90 °C/16 h). The model accurately predicted the individual contents of three of the compounds in aqueous extracts prepared from oxidized plant material. The impact of benzophenone and xanthone degradation was reflected in the decreased total antioxidant capacity of the aqueous extracts, as determined using the oxygen radical absorbance capacity and DPPH(•) scavenging assays.

摘要

在 80 和 90°C 下对 Cyclopia genistoides 植物材料进行高温氧化时,主要苯并二酮类化合物伊夫洛芬酮-3-C-葡萄糖苷-4-O-葡萄糖苷和伊夫洛芬酮-3-C-葡萄糖苷,以及主要的黄烷酮类化合物芒果苷和异芒果苷的降解遵循一级反应动力学。伊夫洛芬酮-3-C-葡萄糖苷-4-O-葡萄糖苷被证明是最稳定的化合物。在 80°C 时,异芒果苷是第二稳定的化合物,但其降解速率常数受温度升高的影响最大。芒果苷和伊夫洛芬酮-3-C-葡萄糖苷在 80°C 时具有相当的降解速率常数。随后,通过将不同批次的植物材料置于氧化条件下(90°C/16 h)来评估热降解动力学模型。该模型准确预测了从氧化植物材料制备的水溶液提取物中三种化合物的各自含量。苯并二酮和黄烷酮类化合物的降解会降低水溶液提取物的总抗氧化能力,这反映在使用氧自由基吸收能力和 DPPH(•)清除测定法测定时。

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