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Ultrasmall Nanoparticles Mitigate Tau Hyperphosphorylation to Restore Synaptic Integrity and Boost Cognitive Function in Alzheimer's Disease.

Authors: Xu H, Wang G, Jiang Z, Han Y, Zhao W, Zhang H, Liu H, Liu H, Li Z, Ji F

Tau hyperphosphorylation represents a critical pathological hallmark of Alzheimer's disease (AD), a prevalent neurodegenerative disorder characterized by progressive cognitive decline. The ubiquitin-specific proteases 14 (USP14) impairs proteasomal function and accelerates hyperphosphorylated Tau accumulation, making it an attractive therapeutic target for modulating the ubiquitin-proteasome pathway in AD treatment. In this study, it is reported that wogonoside-functionalized ultrasmall Cu<sub>2-x</sub>Se nanoparticles (CSPW NPs) significantly reduce hyperphosphorylated Tau accumulation and alleviate AD symptoms. The therapeutic mechanism involves activation of the ubiquitin-proteasome pathway through USP14 inhibition by CSPW NPs, thereby preventing hyperphosphorylated Tau accumulation. Furthermore, after cell membrane coating (CSPW@CM NPs), these nanoparticles efficiently cross the blood-brain barrier with focused ultrasound assistance and accumulate in the brain to target neurons. Within neurons, they inhibit USP14, reduce phosphorylated Tau deposition, enhance microtubule stability, mitigate synaptic loss, restore synaptic integrity, and ultimately alleviate cognitive dysfunction in AD mice. The findings highlight the substantial potential of USP14 modulation for mitigating Tau hyperphosphorylation in the treatment of AD and related tauopathies.

Introduction

Purpose Drug delivery WITHOUT BBB opening
Study Objective To evaluate whether ultrasmall nanoparticles can mitigate tau hyperphosphorylation, restore synaptic integrity, and improve cognitive function in Alzheimer's disease.
Disease model Alzheimer's Disease
Cargo name and characteristics Ultrasmall nanoparticles (nanoparticle; ultrasmall size; composition and surface chemistry not specified in title; used to mitigate tau hyperphosphorylation)

Outcomes and Safety

Summary of Outcomes Ultrasmall nanoparticles reduced tau hyperphosphorylation, restored synaptic integrity, and improved cognitive function in an Alzheimer's disease model; no focused ultrasound parameters were reported.
Safety-related matter No safety or adverse effects are mentioned in the provided text.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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