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Glycoengineered Host-Guest Nanoparticles Potentiate Alzheimer's Disease Therapy via Lesion-Specific Modulation of Tau
Yi Lai1, Jiaxing Pan1,2, Yuejiao Gu3
1State Key Laboratory of Chemical Biology and Center of Pharmaceutics, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China.
Abstract:
Tau pathology is a principal driver of cognitive impairment in Alzheimer's disease (AD), but the therapeutic targeting of tau has been hindered by poor brain delivery and a lack of lesion-confined activity. Here, we delineate a pathogenic cascade wherein the impaired dephosphorylation of hyperphosphorylated tau (p-tau) leads to its aggregation, which is amplified by microglia-mediated propagation. To combat this p-tau cascade, we developed a glycoengineered proteolysis targeting chimera (PROTAC) nanoparticle for lesion-specific p-tau modulation therapy. We first synthesized a library of p-tau PROTACs and identified a lead compound (namely, PROTAC-7) that effectively degraded diverse p-tau species across multiple cellular and animal models of tauopathy. The glycoengineered nanoparticles were then prepared by coassembly of galactose/cyclodextrin-grafted polysialic acid with a microglial scavenger PLX and a reactive oxygen species (ROS)-sensitive heterodimer of PROTAC-7 and memantine (an activator of protein phosphatase 2A). Upon systemic administration, the glycoengineered PROTAC nanoparticles achieved brain-targeted delivery of the therapeutics via glycemic-gradient-mediated transport across the blood-brain barrier. Upon activation in ROS-rich AD lesions, the nanoparticles released their payload for spatially confined p-tau degradation and suppression of tau phosphorylation and spread. This coordinated modulation strategy markedly reversed tau pathology, restored synaptic plasticity, and ameliorated cognitive deficits in multiple mouse models of AD.
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