Vollständiger Abstract
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Introduction: Alzheimer’s disease (AD) is a chronic progressive neurodegenerative disorder involving ROS and ferroptosis. MXene, a 2D material, functions as both a drug carrier and ROS scavenger. Butylphthalide (NBP), a neuroprotective agent, suffers from poor aqueous solubility and bioavailability. This study synthesized Ti2C@BSA-NBP, a novel MXene nanocomposite, to enhance NBP delivery and therapeutic efficacy for AD. Materials and Methods: Ti2C@BSA-NBP was synthesized via self-assembly and amidation reaction, and characterized by multiple techniques. In vitro, ROS-scavenging capacity, mitochondrial function, and ferroptosis markers were assessed in H2O2-injured cells. In vivo efficacy was evaluated in an AD mouse model via behavioral, histopathological, and biochemical analyses. Results: The nanocomposite exhibited robust ROS-scavenging activity in vitro, significantly attenuating ROS, restoring mitochondrial function, and reversing ferroptosis markers. In vivo, Ti2C@BSA-NBP ameliorated learning/memory deficits, partially repaired neuronal morphology, and suppressed neuroinflammation. Mechanistically, it downregulated ACSL4 and Aβ overexpression while restoring GPX4 inhibition. Discussion: Ti2C@BSA-NBP exerts synergistic neuroprotection through MXene-mediated ROS clearance and NBP-mediated multi-target regulation, counteracting oxidative stress, ferroptosis, and neuroinflammation. Conclusions: Ti2C@BSA-NBP is a promising multifunctional nanoplatform integrating antioxidant activity, enhanced drug delivery, and ferroptosis modulation for AD therapy.
Bibliografischer Nachweis
Publikationsdaten
- Autor:innen
- Yajun Zhou, Bangjian Liu, Hui Wang, Li Cao
- Quelle
- Pharmaceuticals
- Publikation
- 2026-01-01
- Band / Ausgabe
- Nicht angegeben
- Seiten
- Nicht angegeben
- ISSN / ISBN
- 1424-8247
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Zitierfähiger Nachweis
Yajun Zhou, Bangjian Liu, Hui Wang, Li Cao (2026). Two-Dimensional MXene-Loaded Butylphthalide Enhances the Treatment of Alzheimer’s Disease by Inhibiting Ferroptosis and Oxidative Stress. Pharmaceuticals. https://doi.org/10.3390/ph19091386
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