Department of Pharmacy, Abdul Wali Khan University Mardan, Mardan 23200, Pakistan.
Department of Pharmacy, Abdul Wali Khan University Mardan, Mardan 23200, Pakistan.
Comput Biol Chem. 2023 Jun;104:107861. doi: 10.1016/j.compbiolchem.2023.107861. Epub 2023 Mar 31.
Poor pharmacokinetic and safety profiles create significant hurdles in the drug development process. This work focuses on a detailed understanding of drug discovery interplay among physicochemical, pharmacokinetic, toxicity endpoints, and antioxidant properties of oxindole derivatives. DFT compıutations were also performed at B3LYP/6-311G** level to evaluate the physicochemical properties, global reactivity features, and intramolecular interactions. The BOILED-Egg pharmacokinetic model envisaged gastrointestinal absorption, blood-brain barrier penetration, and no interaction with p-glycoprotein for compounds C1 and C2. The physicochemical evaluation revealed that C1 possesses superior drug-like properties fit for oral absorption. Both derivatives were predicted to have high plasma protein binding, efficient distribution, and inhibiting CYP 450 major isoforms but serve as substrates only for a few of them. Both molecules have mild to moderate clearance rates. Out of ten toxicity parameters, only hepatotoxicity was predicted. DFT results implied that the meta position of the -OH group made the possibility of charge transfer greater than -para positioned -OH, due to the ΔN (eV) values of molecules C1 and C2 being calculated at 2.596 and 2.477, respectively. Both C1 and C2 exhibited a concentration dependant DPPH and ABTS radical scavenging activity. The chemical structure-physicochemical-pharmacokinetic relationship identified the meta position as the favorite for the electron-withdrawing hydroxyl group. This provides useful insight to medicinal chemists to design 6-chlorooxindole derivatives with an acceptable drug-like and pharmacokinetic property.
较差的药代动力学和安全性特征在药物开发过程中造成了重大障碍。这项工作专注于深入了解吲唑衍生物的药物发现相互作用,包括物理化学、药代动力学、毒性终点和抗氧化特性。还在 B3LYP/6-311G**水平上进行了 DFT 计算,以评估物理化学性质、整体反应性特征和分子内相互作用。BOILED-Egg 药代动力学模型设想化合物 C1 和 C2 具有胃肠道吸收、血脑屏障穿透性,并且与 p-糖蛋白无相互作用。物理化学评估表明 C1 具有较好的药物样特性,适合口服吸收。两种衍生物都被预测具有较高的血浆蛋白结合率、有效的分布能力,并且抑制 CYP 450 主要同工酶,但仅作为少数同工酶的底物。两种分子的清除率都较低。在十个毒性参数中,只有预测到肝毒性。DFT 结果表明,由于分子 C1 和 C2 的ΔN(eV)值分别计算为 2.596 和 2.477,因此 -OH 基团的间位使电荷转移的可能性大于 -对位的 -OH。C1 和 C2 都表现出浓度依赖性 DPPH 和 ABTS 自由基清除活性。化学结构-物理化学-药代动力学关系确定了间位是吸电子羟基的首选位置。这为药物化学家提供了有价值的见解,可用于设计具有可接受的类药性和药代动力学性质的 6-氯吲唑衍生物。