Novel Pyrrole Derivatives as Multi-Target Agents for the Treatment of Alzheimer's Disease: Microwave-Assisted Synthesis, In Silico Studies and Biological Evaluation.

IF 4.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Pharmaceuticals Pub Date : 2024-09-04 DOI:10.3390/ph17091171
Emilio Mateev, Valentin Karatchobanov, Marjano Dedja, Konstantinos Diamantakos, Alexandrina Mateeva, Muhammed Tilahun Muhammed, Ali Irfan, Magdalena Kondeva-Burdina, Iva Valkova, Maya Georgieva, Alexander Zlatkov
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Abstract

Considering the complex pathogenesis of Alzheimer's disease (AD), the multi-target ligand strategy is expected to provide superior effects for the treatment of the neurological disease compared to the classic single target strategy. Thus, one novel pyrrole-based hydrazide (vh0) and four corresponding hydrazide-hydrazones (vh1-4) were synthesized by applying highly efficient MW-assisted synthetic protocols. The synthetic pathway provided excellent yields and reduced reaction times under microwave conditions compared to conventional heating. The biological assays indicated that most of the novel pyrroles are selective MAO-B inhibitors with IC50 in the nanomolar range (665 nM) and moderate AChE inhibitors. The best dual-acting MAO-B/AChE inhibitor (IC50hMAOB-0.665 μM; IC50eeAChE-4.145 μM) was the unsubstituted pyrrole-based hydrazide (vh0). Importantly, none of the novel molecules displayed hMAOA-blocking capacities. The radical-scavenging properties of the compounds were examined using DPPH and ABTS in vitro tests. Notably, the hydrazide vh0 demonstrated the best antioxidant activities. In addition, in silico simulations using molecular docking and MM/GBSA, targeting the AChE (PDB ID: 4EY6) and MAO-B (PDB: 2V5Z), were utilized to obtain active conformations and to optimize the most prominent dual inhibitor (vh0). The ADME and in vitro PAMPA studies demonstrated that vh0 could cross the blood-brain barrier, and it poses good lead-like properties. Moreover, the optimized molecular structures and the frontier molecular orbitals were examined via DFT studies at 6-311G basis set in the ground state.

新型吡咯衍生物作为治疗阿尔茨海默病的多靶点药物:微波辅助合成、硅学研究和生物学评价。
考虑到阿尔茨海默病(AD)复杂的发病机理,与经典的单靶点策略相比,多靶点配体策略有望为神经疾病的治疗提供更优越的效果。因此,我们采用高效的分子水溶液辅助合成方案合成了一种新型吡咯基酰肼(vh0)和四种相应的酰肼-酰肼化合物(vh1-4)。与传统加热相比,该合成途径在微波条件下产量极高,反应时间更短。生物检测表明,大多数新型吡咯化合物都是选择性 MAO-B 抑制剂,其 IC50 在纳摩尔范围内(665 nM),同时也是中度 AChE 抑制剂。最佳的 MAO-B/AChE 双效抑制剂(IC50hMAOB-0.665 μM;IC50eeAChE-4.145 μM)是未取代的吡咯酰肼(vh0)。重要的是,没有一种新型分子显示出 hMAOA 阻断能力。利用 DPPH 和 ABTS 体外测试检验了这些化合物的自由基清除特性。值得注意的是,酰肼 vh0 的抗氧化活性最佳。此外,还利用分子对接和 MM/GBSA 进行了针对 AChE(PDB ID:4EY6)和 MAO-B(PDB:2V5Z)的硅模拟,以获得活性构象并优化最突出的双重抑制剂(vh0)。ADME 和体外 PAMPA 研究表明,vh0 可透过血脑屏障,具有良好的先导特性。此外,在基态的 6-311G 基集上,通过 DFT 研究考察了优化后的分子结构和前沿分子轨道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Pharmaceuticals
Pharmaceuticals Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
6.10
自引率
4.30%
发文量
1332
审稿时长
6 weeks
期刊介绍: Pharmaceuticals (ISSN 1424-8247) is an international scientific journal of medicinal chemistry and related drug sciences.
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