Microglia-targeted Panax notoginseng polysaccharide nanoparticles alleviate Alzheimer's disease via AMPK-mTOR/HIF-1α-mediated immunometabolic reprogramming

Alzheimer's disease (AD) is increasingly recognized as an immunometabolic disorder characterized by a self-reinforcing cycle of neuroinflammation and glycolytic reprogramming in microglia. Herein, we developed KPBIT@NPs, a microglia-targeted polysaccharide-based nanomedicine. Unlike many conventional nanocarriers that mainly serve as passive delivery vehicles, KPBIT@NPs employ the natural macromolecule Panax notoginseng polysaccharide (PNP) to construct a dual-functional, responsive nanoparticle platform. Through rational engineering via phenylboronic ester grafting, the polysaccharide backbone enables amphiphilic self-assembly and efficient co-loading of icaritin and tanshinone IIA, while allowing pathological reactive oxygen species (ROS)-triggered disassembly. In addition, surface decoration with the KLVFFAED peptide facilitates blood–brain barrier transport and targeted accumulation in activated microglia. Mechanistically, KPBIT@NPs activate AMP-activated protein kinase and suppress the mechanistic target of rapamycin/hypoxia-inducible factor 1α signaling axis, thereby reversing pathological glycolytic skewing and restoring mitochondrial oxidative metabolism. This coordinated regulation disrupts the inflammation–metabolism feed-forward loop and successfully reprograms microglia from a pro-inflammatory, metabolically stressed state toward a reparative phenotype. In AD animal models, KPBIT@NPs effectively restore cerebral energy metabolism, markedly reduce amyloid-β deposition, alleviate neuroinflammation, preserve neuronal integrity, and ultimately rescue cognitive deficits. This study establishes an innovative nanotherapeutic paradigm based on bioactive polysaccharides and offers a promising materials strategy for neurodegenerative diseases driven by coupled metabolic and inflammatory dysregulation.

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Publication Details

Journal
Materials Today Bio
Published
2026-08-28
DOI
https://doi.org/10.1016/j.mtbio.2026.103620
Primary Topic
Ginseng Biological Effects and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Microglia-targeted Panax notoginseng polysaccharide nanoparticles alleviate Alzheimer's disease via AMPK-mTOR/HIF-1α-mediated immunometabolic reprogramming

Ruibo Guo, Yang Yu, Shuai‐Wen Ding, Xuetao Li et al.
Materials Today Bio
Ginseng Biological Effects and Applications
article

Microglia-targeted Panax notoginseng polysaccharide nanoparticles alleviate Alzheimer's disease via AMPK-mTOR/HIF-1α-mediated immunometabolic reprogramming

Ruibo Guo, Yang Yu, Shuai‐Wen Ding, Xuetao Li, Bin Wei, Zhichao Chen, Juan Zang, Ying Zheng, Ge Zhang, Yang Liu, Liang Kong, Ying Yang
article en

Abstract

Alzheimer's disease (AD) is increasingly recognized as an immunometabolic disorder characterized by a self-reinforcing cycle of neuroinflammation and glycolytic reprogramming in microglia. Herein, we developed KPBIT@NPs, a microglia-targeted polysaccharide-based nanomedicine. Unlike many conventional nanocarriers that mainly serve as passive delivery vehicles, KPBIT@NPs employ the natural macromolecule Panax notoginseng polysaccharide (PNP) to construct a dual-functional, responsive nanoparticle platform. Through rational engineering via phenylboronic ester grafting, the polysaccharide backbone enables amphiphilic self-assembly and efficient co-loading of icaritin and tanshinone IIA, while allowing pathological reactive oxygen species (ROS)-triggered disassembly. In addition, surface decoration with the KLVFFAED peptide facilitates blood–brain barrier transport and targeted accumulation in activated microglia. Mechanistically, KPBIT@NPs activate AMP-activated protein kinase and suppress the mechanistic target of rapamycin/hypoxia-inducible factor 1α signaling axis, thereby reversing pathological glycolytic skewing and restoring mitochondrial oxidative metabolism. This coordinated regulation disrupts the inflammation–metabolism feed-forward loop and successfully reprograms microglia from a pro-inflammatory, metabolically stressed state toward a reparative phenotype. In AD animal models, KPBIT@NPs effectively restore cerebral energy metabolism, markedly reduce amyloid-β deposition, alleviate neuroinflammation, preserve neuronal integrity, and ultimately rescue cognitive deficits. This study establishes an innovative nanotherapeutic paradigm based on bioactive polysaccharides and offers a promising materials strategy for neurodegenerative diseases driven by coupled metabolic and inflammatory dysregulation.

Materials Today BioVol. 40
Dalian University of Technology (CN), Liaoning University of Traditional Chinese Medicine (CN), Affiliated Hospital of Liaoning University of Traditional Chinese Medicine (CN), Shenyang University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 17%
Ginseng Biological Effects and Applications
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