Irfan Ali, Zahoor Ameer Fawad, Boulaamane Yassir, Javed Sadia, Hameed Huma, Maurady Amal, Muhammed Muhammed Tilahun, Ahmad Sajjad, Al-Mutairi Aamal A, Shahzadi Irum, Al-Hussain Sami A, Zaki Magdi E A
Department of Chemistry, Government College University Faisalabad, Faisalabad, Pakistan.
Laboratory of Innovative Technologies, National School of Applied Sciences of Tangier, Abdelmalek Essaadi University, Tetouan, Morocco.
Front Chem. 2024 Oct 8;12:1449165. doi: 10.3389/fchem.2024.1449165. eCollection 2024.
Monoamine oxidase B (MAO-B) plays a pivotal role in the deamination process of monoamines, encompassing crucial neurotransmitters like dopamine and norepinephrine. The heightened interest in MAO-B inhibitors emerged after the revelation that this enzyme could potentially catalyze the formation of neurotoxic compounds from endogenous and exogenous sources. Computational screening methodologies serve as valuable tools in the quest for novel inhibitors, enhancing the efficiency of this pursuit. In this study, 43 acefylline derivatives were docked against the MAO-B enzyme for their chemotherapeutic potential and binding affinities that yielded GOLD fitness scores ranging from 33.21 to 75.22. Among them, five acefylline derivatives, namely, , , , , and , displayed binding affinities comparable to the both standards istradefylline and safinamide. These derivatives exhibited hydrogen-bonding interactions with key amino acids Phe167 and Ile197/198, suggesting their strong potential as MAO-B inhibitors. Finally, molecular dynamics (MD) simulations were conducted to evaluate the stability of the examined acefylline derivatives over time. The simulations demonstrated that among the examined acefylline derivatives and standards, stands out as the most stable candidate. Density functional theory (DFT) studies were also performed to optimize the geometries of the ligands, and molecular docking was conducted to predict the orientations of the ligands within the binding cavity of the protein and evaluate their molecular interactions. These results were also validated by simulation-based binding free energies the molecular mechanics energies combined with generalized Born and surface area solvation (MM-GBSA) method. However, it is necessary to conduct and experiments to confirm and validate these findings in future studies.
单胺氧化酶B(MAO-B)在单胺的脱氨过程中起关键作用,单胺包括多巴胺和去甲肾上腺素等重要神经递质。在发现该酶可能催化内源性和外源性神经毒性化合物的形成后,人们对MAO-B抑制剂的兴趣日益浓厚。计算筛选方法是寻找新型抑制剂的宝贵工具,提高了这一探索的效率。在本研究中,43种醋茶碱衍生物针对MAO-B酶进行对接,以评估其化疗潜力和结合亲和力,其获得的GOLD适应度分数范围为33.21至75.22。其中,五种醋茶碱衍生物,即 、 、 、 和 ,显示出与标准药物异他茶碱和沙芬酰胺相当的结合亲和力。这些衍生物与关键氨基酸Phe167和Ile197/198表现出氢键相互作用,表明它们作为MAO-B抑制剂具有很强的潜力。最后,进行了分子动力学(MD)模拟,以评估所研究的醋茶碱衍生物随时间的稳定性。模拟结果表明,在所研究的醋茶碱衍生物和标准药物中, 是最稳定的候选物。还进行了密度泛函理论(DFT)研究以优化配体的几何结构,并进行分子对接以预测配体在蛋白质结合腔内的取向并评估它们的分子相互作用。这些结果也通过基于模拟的结合自由能(分子力学能量与广义玻恩和表面积溶剂化(MM-GBSA)方法相结合)进行了验证。然而,在未来的研究中需要进行 和 实验来证实和验证这些发现。