Design, synthesis, and biological evaluation of imidazolylacetophenone oxime derivatives as novel brain-penetrant agents for Alzheimer's disease treatment

IF 6 2区 医学 Q1 CHEMISTRY, MEDICINAL
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Abstract

Alzheimer's disease (AD, also known as dementia) has become a serious global health problem along with population aging, and neuroinflammation is the underlying cause of cognitive impairment in the brain. Nowadays, the development of multitarget anti-AD drugs is considered to be one effective approach. Imidazolylacetophenone oxime ethers or esters (IOEs) were multifunctional agents with neuroinflammation inhibition, metal chelation, antioxidant and neuroprotection properties against Alzheimer's disease. In this study, IOEs derivatives 18 were obtained by structural modifications of the oxime and imidazole groups, and the SARs showed that (Z)-oxime ether (derivative 2) had stronger anti-neuroinflammatory and neuroprotective ability than (E)-congener. Then, IOEs derivatives 930 were synthesized based on target-directed ligands and activity-based groups hybridization strategy. In vitro anti-AD activity screening revealed that some derivatives exhibited potentially multifunctional effects, among which derivative 28 exhibited the strongest inhibitory activity on NO production with EC50 value of 0.49 μM, and had neuroprotective effects on 6-OHDA-induced cell damage and RSL3-induced ferroptosis. The anti-neuroinflammatory mechanism showed that 28 could inhibit the release of pro-inflammatory factors PGE2 and TNF-α, down-regulate the expression of iNOS and COX-2 proteins, and promote the polarization of BV-2 cells from pro-inflammatory M1 phenotype to anti-inflammatory M2 phenotype. In addition, 28 can dose-dependently inhibit acetylcholinesterase (AChE) and Aβ42 aggregation. Moreover, the selected nuclide [18F]-labeled 28 was synthesized to explore its biodistribution by micro-PET/CT, of which 28 can penetrate the blood-brain barrier (BBB). These results shed light on the potential of 28 as a new multifunctional candidate for AD treatment.

Abstract Image

咪唑基苯乙酮肟衍生物作为治疗阿尔茨海默病的新型脑穿透剂的设计、合成和生物学评价。
随着人口老龄化的加剧,阿尔茨海默病(AD,又称痴呆症)已成为一个严重的全球性健康问题,而神经炎症是导致大脑认知功能障碍的根本原因。目前,开发多靶点抗老年痴呆症药物被认为是一种有效的方法。咪唑基苯乙酮肟醚或酯(IOEs)是一种多功能制剂,具有抑制神经炎症、金属螯合、抗氧化和神经保护等作用,可用于防治阿尔茨海默病。本研究通过对肟基和咪唑基进行结构修饰,得到了 IOEs 衍生物 1-8,SAR 研究表明,(Z)-肟醚(衍生物 2)比(E)-共聚物具有更强的抗神经炎症和神经保护能力。随后,基于靶向配体和活性基团杂交策略合成了 IOEs 衍生物 9-30。体外抗AD活性筛选显示,一些衍生物具有潜在的多功能作用,其中28号衍生物对NO生成具有最强的抑制活性,EC50值为0.49 μM,并对6-OHDA诱导的细胞损伤和RSL3诱导的铁变态反应具有神经保护作用。抗神经炎机制显示,28 能抑制促炎因子 PGE2 和 TNF-α 的释放,下调 iNOS 和 COX-2 蛋白的表达,促进 BV-2 细胞从促炎 M1 表型极化为抗炎 M2 表型。此外,28 还能剂量依赖性地抑制乙酰胆碱酯酶(AChE)和 Aβ42 的聚集。此外,还合成了经选择的核素[18F]标记的28,并通过显微PET/CT探索其生物分布,其中28可穿透血脑屏障(BBB)。这些研究结果揭示了28作为一种新的多功能候选药物治疗AD的潜力。
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来源期刊
CiteScore
11.70
自引率
9.00%
发文量
863
审稿时长
29 days
期刊介绍: The European Journal of Medicinal Chemistry is a global journal that publishes studies on all aspects of medicinal chemistry. It provides a medium for publication of original papers and also welcomes critical review papers. A typical paper would report on the organic synthesis, characterization and pharmacological evaluation of compounds. Other topics of interest are drug design, QSAR, molecular modeling, drug-receptor interactions, molecular aspects of drug metabolism, prodrug synthesis and drug targeting. The journal expects manuscripts to present the rational for a study, provide insight into the design of compounds or understanding of mechanism, or clarify the targets.
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