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Manganese Dioxide Nanoparticles Protect PC12 Cells Against H2O2-Induced Oxidative Stress Injury by Regulating PI3K/Akt-Mediated Autophagy.

Manganese Dioxide Nanoparticles Protect PC12 Cells Against H2O2-Induced Oxidative Stress Injury by Regulating PI3K/Akt-Mediated Autophagy.

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Shenzhen, CN · Author affiliation

College of Pharmacy, Shenzhen Technology University, Shenzhen 518118, China.
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Anning, CN · Author affiliation

Anning First People's Hospital Affiliated to Kunming University of Science and Technology, Kunming 650302, China.
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Kunming, CN · Author affiliation

Anning First People's Hospital Affiliated to Kunming University of Science and Technology, Kunming 650302, China.
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Original abstract

Background: Oxidative stress-mediated neuronal injury is critically involved in the pathogenesis of neurodegenerative disorders, including Alzheimer's disease and Parkinson's disease. Manganese dioxide (MnO2), owing to its intrinsic reactive oxygen species (ROS)-scavenging capacity, has emerged as a promising neuroprotective candidate; however, the underlying molecular mechanisms remain insufficiently defined. Methods: Bovine serum albumin-templated MnO2 nanoparticles (BSA-MnO2 NPs) were synthesized, and their protective effects were evaluated in H2O2-treated PC12 cells. Results: BSA-MnO2 NPs significantly inhibited H2O2-induced reductions in cell viability, ROS overproduction, and mitochondrial membrane potential disruption. Mechanistically, H2O2 increased both LC3-II and p62 levels, indicating impaired autophagic flux. Activation of autophagy by serum starvation alleviated H2O2-induced injury, whereas chloroquine exacerbated cellular damage and abolished the protective effects of BSA-MnO2 NPs, suggesting that the restoration of autophagy contributes to BSA-MnO2 NPs-mediated neuroprotection. Further analysis showed that BSA-MnO2 NPs enhanced Akt phosphorylation, while LY294002, a PI3K inhibitor, suppressed Akt activation, disrupted autophagy regulation, and eliminated their neuroprotective effects. In contrast, chloroquine did not affect Akt phosphorylation, indicating that PI3K/Akt signaling acts upstream of autophagy regulation. Conclusions: Collectively, these findings demonstrate that BSA-MnO2 NPs protect PC12 cells against H2O2-induced oxidative injury by restoring autophagy through the PI3K/Akt signaling pathway, highlighting a potential role of BSA-MnO2 NPs in the treatment of oxidative-stress-related neurodegenerative disorders.

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