部分
合理设计
神经科学
腙
疾病
计算生物学
药理学
化学
生物信息学
认知
医学
结构-活动关系
组合化学
酶
病态的
小分子
药物发现
生物
阿尔茨海默病
钥匙(锁)
线粒体
生物化学
胆碱能的
乙酰胆碱酯酶
作者
Carola Grondona,Eleonora Russo,Bruno Tasso
出处
期刊:ChemMedChem
[Wiley]
日期:2026-04-18
卷期号:21 (8): e202501097-e202501097
标识
DOI:10.1002/cmdc.202501097
摘要
Alzheimer's disease (AD) is a complex, multifactorial neurodegenerative disorder in which numerous interconnected pathological processes, such as cholinergic deficits, Aβ and tau aggregation, oxidative stress, metal dyshomeostasis, mitochondrial dysfunction, and neuroinflammation, synergistically drive neuronal damage and cognitive decline. This heterogeneity has limited the effectiveness of the clinically available single-target therapies which only provide symptomatic relief and underscores the need for molecular frameworks capable of addressing multiple pathogenic pathways simultaneously to stop the progression of the disease. Hydrazones have emerged as highly versatile scaffolds in medicinal chemistry thanks to their straightforward synthesis, structural adaptability, and rich repertoire of interaction modes with different biological targets. In recent literature, an increasing number of hydrazone-based molecules have been designed as multitarget-directed ligands (MTDLs) to modulate key enzymes and pathological mechanisms relevant to AD. This review provides a comprehensive and critical overview of hydrazone-containing compounds reported over the last years (2020-2025) with potential application in AD therapy, highlighting their activity on classical targets, especially cholinesterases (ChEs), as well as emerging targets including carbonic anhydrase, BACE1, and α-glycosidase. Particular emphasis is placed on structure-activity relationships (SARs), multitarget profiles, and rational design strategies aimed at exploiting the hydrazone moiety to address the multifactorial nature of AD.
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