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基于芳基环生物等排体的多靶点 ChE-MAO-B 抑制剂的结构设计:AChE/BChE 选择性开关和类药性特征。

Structure-based design of multitargeting ChEs-MAO B inhibitors based on phenyl ring bioisosteres: AChE/BChE selectivity switch and drug-like characterization.

机构信息

Dept. of Pharmacy-Pharmaceutical Sciences, University of Bari Aldo Moro, via E. Orabona 4, 70125, Bari, Italy.

Dept. of Biosciences, Biotechnologies and Environment, University of Bari Aldo Moro, Via E. Orabona 4, 70125, Bari, Italy.

出版信息

Eur J Med Chem. 2024 Aug 5;274:116511. doi: 10.1016/j.ejmech.2024.116511. Epub 2024 May 19.

Abstract

A structure-based drug design approach was focused on incorporating phenyl ring heterocyclic bioisosteres into coumarin derivative 1, previously reported as potent dual AChE-MAO B inhibitor, with the aim of improving drug-like features. Structure-activity relationships highlighted that bioisosteric rings were tolerated by hMAO B enzymatic cleft more than hAChE. Interestingly, linker homologation at the basic nitrogen enabled selectivity to switch from hAChE to hBChE. In the present work, we identified thiophene-based isosteres 7 and 15 as dual AChE-MAO B (IC = 261 and 15 nM, respectively) and BChE-MAO B (IC = 375 and 20 nM, respectively) inhibitors, respectively. Both 7 and 15 were moderately water-soluble and membrane-permeant agents by passive diffusion (PAMPA-HDM). Moreover, they were able to counteract oxidative damage induced by both HO and 6-OHDA in SH-SY5Y cells and predicted to penetrate into CNS in a cell-based model mimicking blood-brain barrier. Molecular dynamics (MD) simulations shed light on key differences in AChE and BChE recognition processes promoted by the basic chain homologation from 7 to 15.

摘要

基于结构的药物设计方法集中于将苯环杂环生物等排体纳入香豆素衍生物 1 中,该化合物先前被报道为有效的双 AChE-MAO B 抑制剂,旨在改善药物样特征。构效关系研究表明,生物等排环在 hMAO B 酶切中比 hAChE 更能耐受。有趣的是,碱性氮原子的连接同系化使选择性能够从 hAChE 切换到 hBChE。在本工作中,我们鉴定了噻吩基等排体 7 和 15 分别为双 AChE-MAO B(IC = 261 和 15 nM)和 BChE-MAO B(IC = 375 和 20 nM)抑制剂。7 和 15 均具有中等水溶性和通过被动扩散(PAMPA-HDM)的膜通透性。此外,它们能够抵抗 HO 和 6-OHDA 在 SH-SY5Y 细胞中诱导的氧化损伤,并在模拟血脑屏障的基于细胞的模型中预测能够穿透中枢神经系统。分子动力学(MD)模拟揭示了基本链同系化从 7 到 15 对 AChE 和 BChE 识别过程的关键差异。

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