首页> 外文期刊>Journal of Agricultural and Food Chemistry >Rapid Analysis and Guided Isolation of Astragalus Isoflavonoids by UHPLC-DAD-MSn and Their Cellular Antioxidant Defense on High-Glucose-Induced Mesangial Cell Dysfunction
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Rapid Analysis and Guided Isolation of Astragalus Isoflavonoids by UHPLC-DAD-MSn and Their Cellular Antioxidant Defense on High-Glucose-Induced Mesangial Cell Dysfunction

机译:UHPLC-DAD-MSN的Astagalus异黄酮的快速分析和引导分离,以及它们对高葡萄糖诱导的Mesangial细胞功能障碍的细胞抗氧化防御

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Isoflavonoids, including isoflavones, isoflavans, and pterocarpans, the principal components in Astragalus membranaceus, have a great deal of versatile health-promoting benefits. In this work, as a continuation of our search for bioactive constituents from A. membranaceus, a fast high-performance liquid chromatography-diode array detection-multiple-stage mass spectrometry method was first used to analyze the isoflavonoid profile of A. membranaceus roots extract. Twelve diverse isoflavonoids in subclasses of isoflavones, isoflavans, and pterocarpans present in glycoside/aglycone pair forms were tentatively characterized; of those 12, eight major isoflavonoids were finally isolated and simultaneously quantified by the established fast UHPLC method. Furthermore, the results confirmed for the first time that Astragalus isoflavonoid aglycones could attenuate mesangial cell proliferation and extracellular matrix (ECM) accumulation triggered by high glucose levels, and the primary mechanism might be via protecting intracellular antioxidant enzymes activities and enhancing endogenous antioxidant function to lower levels of cellular oxidative damage induced by high glucose levels. Collectively, diverse Astragalus isoflavonoid antioxidants have the potential to ameliorate high-glucose-induced mesangial cell dysfunction through the regulation of cellular antioxidant defense.
机译:异黄酮,包括异黄酮,异黄酮和Pterocarpans,黄芪膜的主要成分,具有大量多功能的健康促进益处。在这项工作中,作为从A膜的生物活性成分寻找生物活性成分的延续,首先使用快速高效液相色谱 - 二极管阵列检测 - 多级质谱法来分析A.薄膜根提取物的异戊类化曲线。暂时表征了十二种异黄酮,异黄酮和糖苷一对形式的糖苷/糖苷糖酮对形式的Pterocarpans中的12个不​​同的异氟类药物;在那些12中,最终将八种主要异黄酮分离并通过建立的快速UHPLC方法同时定量。此外,结果证实了黄芪二烷酮糖酮可以衰减由高葡萄糖水平引发的束舌细胞增殖和细胞外基质(ECM)积累的结果,并且初级机制可能是通过保护细胞内抗氧化酶活性和增强内源性抗氧化功能降低高葡萄糖水平诱导的细胞氧化损伤水平。各种各样的黄芪异黄酮抗氧化剂具有可通过调节细胞抗氧化防御来改善高葡萄糖诱导的髓鞘细胞功能障碍。

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