Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, School of Pharmacy, Xuzhou Medical University, No.209, Tongshan Road, Xuzhou, Jiangsu 221004, China.
Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, School of Pharmacy, Xuzhou Medical University, No.209, Tongshan Road, Xuzhou, Jiangsu 221004, China.
Phytochemistry. 2020 Nov;179:112393. doi: 10.1016/j.phytochem.2020.112393. Epub 2020 Aug 21.
Dihydrochalcones (DHCs), an important subgroup of flavonoids, have recently received much attention due to their diverse biological activities. In contrast to their O-glycosides, understanding of the antioxidant property and mechanism of DHC C-glycosides remains limited. Herein, the free radical scavenging activity and mechanism of two representative C-glycosyl DHCs, aspalathin (ASP) and nothofagin (NOT) as well as their aglycones, 3-hydroxyphloretin (HPHL) and phloretin (PHL) were evaluated using the density functional theory (DFT) calculations. The results revealed the crucial role of sugar moiety on the conformation and the activity. The o-dihydroxyl in the B-ring and the 2',6'-dihydroxyacetophenone moiety were found significant in determining the activity. Our results showed that hydrogen atom transfer (HAT) is the dominant mechanism for radical-trapping in the gas and benzene phases, while the sequential proton loss electron transfer (SPLET) is more preferable in the polar environments. Also, the results revealed the feasibility of the double HAT and double SPLET as well as the SPLHAT mechanisms, which provide alternative pathways to trap radical for the studied DHCs. These results could deepen the understanding of the antiradical activity and mechanism of DHCs, which will facilitate the design of novel efficient antioxidants.
二氢查尔酮(DHCs)作为黄酮类化合物的一个重要亚类,由于其多样的生物活性而受到广泛关注。与 O-糖苷相比,DHC C-糖苷的抗氧化性质和机制仍知之甚少。在此,采用密度泛函理论(DFT)计算,评估了两种代表性的 C-糖苷二氢查尔酮,即ASP 和 NOT 及其苷元 HPHL 和 PHL 的自由基清除活性和机制。结果表明,糖基部分对构象和活性起着关键作用。B 环上的邻二羟基和 2',6'-二羟基苯乙酮部分对确定活性具有重要意义。我们的结果表明,在气相和苯相中,氢原子转移(HAT)是自由基捕获的主要机制,而在极性环境中,顺序质子丢失电子转移(SPLET)更为有利。此外,结果还揭示了双 HAT 和双 SPLET 以及 SPLHAT 机制的可行性,为研究的 DHCs 提供了捕获自由基的替代途径。这些结果可以加深对 DHCs 抗氧化活性和机制的理解,从而有助于设计新型高效抗氧化剂。