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Hybrid PET/MRI Imaging of Alzheimer's Disease Based on 18F-AV-1451
Published on: April 18, 2025
Recent developments in donepezil-based hybrid molecules as multi-target therapeutics for Alzheimer's disease: A
Nitin Kumar1, Izhar Khan1, Jyoti Singh1
1Department of Pharmaceutical Science & Technology, Madan Mohan Malaviya University of Technology, Gorakhpur, U.P. 273010, India.
Abstract:
Alzheimer's disease (AD) is a progressive age-related neurodegenerative disorder characterized by the gradual loss of cholinergic neurons, leading to cognitive impairment, synaptic dysfunction, and irreversible neuronal degeneration. The multifactorial nature of AD, involving cholinergic deficits, amyloid-β (Aβ) aggregation, tau hyperphosphorylation, oxidative stress, mitochondrial dysfunction, neuroinflammation, and metal dyshomeostasis, has limited the clinical success of single-target therapeutic strategies. Although donepezil (DPZ), a clinically approved acetylcholinesterase (AChE) inhibitor, remains one of the most widely prescribed agents for symptomatic management, it does not alter the underlying neurodegenerative processes. Consequently, DPZ has emerged as an attractive medicinal chemistry scaffold for the development of multi-target-directed ligands (MTDLs) that simultaneously modulate multiple interconnected pathological pathways implicated in AD. This review provides a comprehensive and critically organized overview of recent advances in DPZ-based hybrid molecules, emphasizing rational design strategies, hybridization approaches, structure-activity relationships (SAR), molecular mechanisms, and pharmacological profiles. To facilitate a mechanistic understanding, the reported hybrids are systematically classified according to structural modifications of the indanone moiety, the benzylpiperidine moiety, or simultaneous modification of both pharmacophoric regions. Comparative analysis reveals how scaffold engineering, linker optimization, and strategic incorporation of complementary pharmacophores influence cholinesterase inhibition, anti-amyloid activity, antioxidant capacity, neuroprotection, metal chelation, monoamine oxidase inhibition, and blood-brain barrier permeability. Importantly, this review critically examines the current translational landscape, highlighting that despite encouraging in vitro and in vivo findings, no DPZ-based hybrid has yet advanced to clinical evaluation. Key challenges, including pharmacokinetic optimization, metabolic stability, safety, target engagement, and clinical translatability, are discussed together with future medicinal chemistry directions. Rather than presenting DPZ-based hybrids as established disease-modifying therapies, the available evidence supports their role as promising multifunctional lead compounds and valuable molecular platforms for the rational design of next-generation anti-Alzheimer agents. By integrating emerging SAR trends with critical translational perspectives, this review provides a contemporary framework to guide future development of clinically relevant multifunctional therapeutics for AD.
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