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Density Functional Theory (DFT) Study of Edaravone Derivatives as Antioxidants

机译:依达拉奉衍生物作为抗氧化剂的密度泛函理论(DFT)研究

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摘要

Quantum chemical calculations at the B3LYP/6–31G* level of theory were employed for the structure-activity relationship and prediction of the antioxidant activity of edaravone and structurally related derivatives using energy (E), ionization potential (IP), bond dissociation energy (BDE), and stabilization energies (ΔEiso). Spin density calculations were also performed for the proposed antioxidant activity mechanism. The electron abstraction is related to electron-donating groups (EDG) at position 3, decreasing the IP when compared to substitution at position 4. The hydrogen abstraction is related to electron-withdrawing groups (EDG) at position 4, decreasing the BDECH when compared to other substitutions, resulting in a better antioxidant activity. The unpaired electron formed by the hydrogen abstraction from the C–H group of the pyrazole ring is localized at 2, 4, and 6 positions. The highest scavenging activity prediction is related to the lowest contribution at the carbon atom. The likely mechanism is related to hydrogen transfer. It was found that antioxidant activity depends on the presence of EDG at the C2 and C4 positions and there is a correlation between IP and BDE. Our results identified three different classes of new derivatives more potent than edaravone.
机译:在理论上以B3LYP / 6–31G *级进行量子化学计算,利用能量(E),电离势(IP),键解离能( BDE)和稳定能(ΔEiso)。还针对提出的抗氧化剂活性机理进行了自旋密度计算。与位4处的取代相比,电子抽象与3位上的给电子基团(EDG)有关,与4位取代相比,IP降低。与位4上的吸电子基团(EDG)有关,与氢的抽象有关,BDECH下降。取代其他取代基,产生更好的抗氧化活性。由吡唑环的C–H基团夺氢而形成的未配对电子位于2、4和6个位置。最高清除活性预测与在碳原子上的最低贡献有关。可能的机制与氢转移有关。发现抗氧化剂活性取决于在C2和C4位上EDG的存在,并且IP和BDE之间存在相关性。我们的结果确定了比依达拉奉更有效的三种不同类别的新衍生物。

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