Boulaamane Yassir, Ahmad Iqrar, Patel Harun, Das Niloy, Britel Mohammed Reda, Maurady Amal
Laboratory of Innovative Technologies, National School of Applied Sciences of Tangier, Abdelmalek Essaadi University, Tetouan, Morocco.
Division of Computer Aided Drug Design, Department of Pharmaceutical Chemistry, R. C. Patel Institute of Pharmaceutical Education and Research, Shirpur, India.
J Biomol Struct Dyn. 2023 Apr;41(6):2326-2340. doi: 10.1080/07391102.2022.2033643. Epub 2022 Feb 15.
Monoamine Oxidase B is considered a successful target for developing antiparkinsonian drugs. Due to the side effects of current MAO-B inhibitors, there's an urgent need for novel potent and highly selective MAO-B inhibitors. A recent study has shown that coumarins tend to be more selective towards MAO-B than MAO-A when connected to a hex-5-ynyloxy chain at position 6 in contrast to their C7-isomers. The present study describes the mode of interaction of the C6 and C7-substituted coumarin isomers characterized by their difference in selectivity towards MAO-B through molecular docking and molecular dynamics simulations in an effort to elucidate the structural components and molecular interactions that may be responsible for MAO-B selectivity. Three isomeric coumarin pairs connected to ether chain at position 6 or 7 were taken from the literature and modelled according to their IUPAC nomenclature. Molecular docking study revealed one π- π stacking interaction with Tyr-326 in common between the selective coumarin C6-isomers. Resulting complexes of one isomeric coumarin pair that displayed the highest selectivity shift towards MAO-B were subject to 100 ns molecular dynamics simulations study to analyze the stability of the docked complexes. Molecular dynamics revealed that the C7-isomer is relatively stable in both MAO isoforms through the simulation duration, whereas the C6-isomer deemed unstable for MAO-A which may be due to the bulky Phe-208 residue in MAO-A. Our results might be applied for further development and optimization of coumarin derivatives into a successful drug against Parkinson's disease.Communicated by Ramaswamy H. Sarma.
单胺氧化酶B被认为是开发抗帕金森病药物的一个成功靶点。由于目前的单胺氧化酶B抑制剂存在副作用,迫切需要新型强效且高选择性的单胺氧化酶B抑制剂。最近的一项研究表明,与它们的C7异构体相比,香豆素在6位连接己-5-炔氧基链时,对单胺氧化酶B的选择性往往高于对单胺氧化酶A的选择性。本研究通过分子对接和分子动力学模拟描述了C6和C7取代香豆素异构体的相互作用模式,其特点是它们对单胺氧化酶B的选择性不同,旨在阐明可能导致单胺氧化酶B选择性的结构成分和分子相互作用。从文献中选取了在6位或7位连接醚链的三对异构香豆素,并根据其IUPAC命名法进行建模。分子对接研究揭示了选择性香豆素C6异构体之间与Tyr-326存在一种共同的π-π堆积相互作用。对显示出向单胺氧化酶B的最高选择性转变的一对异构香豆素所形成的复合物进行了100纳秒的分子动力学模拟研究,以分析对接复合物的稳定性。分子动力学表明,在整个模拟过程中,C7异构体在两种单胺氧化酶同工型中相对稳定,而C6异构体对单胺氧化酶A来说不稳定,这可能是由于单胺氧化酶A中存在庞大的Phe-208残基。我们的结果可能应用于香豆素衍生物的进一步开发和优化,使其成为一种成功的抗帕金森病药物。由Ramaswamy H. Sarma传达。