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Quantitative 3D In Silico Modeling q3DISM of Cerebral Amyloid-beta Phagocytosis in Rodent Models of Alzheimer's Disease
Published on: December 26, 2016
Cu(II) enhances the effect of Alzheimer's amyloid-β peptide on microglial activation
Fengxiang Yu1, Ping Gong1, Zhuqin Hu2
1Department of Pharmacology, Shanghai Jiao Tong University School of Medicine, 280 South Chongqing Road, Shanghai, 200025, China.
Background:
Aggregated forms of amyloid-β (Aβ) peptides are important triggers for microglial activation, which is an important pathological component in the brains of Alzheimer's patients. Cu(II) ions are reported to be coordinated to monomeric Aβ, drive Aβ aggregation, and potentiate Aβ neurotoxicity. Here we investigated whether Cu(II) binding modulates the effect of Aβ on microglial activation and the subsequent neurotoxicity.
Methods:
Aβ peptides were incubated with Cu(II) at an equimolar ratio to obtain the Cu(II)-Aβ complex. Primary and BV-2 microglial cells were treated with Cu(II)-Aβ, Aβ, or Cu(II). The tumor necrosis factor-α (TNF-α) and nitric oxide levels in the media were determined. Extracellular hydrogen peroxide was quantified by a fluorometric assay with Amplex Red. Mitochondrial superoxide was detected by MitoSOX oxidation.
Results:
Incubation of Cu(II) with Aβ confers different chemical properties on the resulting complex. At the subneurotoxic concentrations, Cu(II)-Aβ (but not Aβ or Cu(II) alone) treatment induced an activating morphological phenotype of microglia and induced the microglial release of TNF-α and nitric oxide as well as microglia-mediated neuronal damage. Cu(II)-Aβ-triggered microglial activation was blocked by nuclear factor (NF)-κB inhibitors and was accompanied with NF-κB activation. Moreover, Cu(II)-Aβ induced hydrogen peroxide release, which was not affected by NADPH oxidase inhibitors. Mitochondrial superoxide production was increased after Cu(II)-Aβ stimulation. N-acetyl-cysteine, a scavenger of reactive oxygen species (ROS), inhibited Cu(II)-Aβ-elicited microglial release of TNF-α and nitric oxide as well as the microglia-mediated neurotoxic effect.
Conclusion:
Our observations suggest that Cu(II) enhances the effect of Aβ on microglial activation and the subsequent neurotoxicity. The Cu(II)-Aβ-triggered microglial activation involves NF-κB activation and mitochondrial ROS production.
Insights
Copper (II) binding to amyloid-beta (Aβ) significantly enhances microglial activation and neurotoxicity, involving NF-κB and mitochondrial reactive oxygen species (ROS). This interaction exacerbates Alzheimer's disease pathology.
Area of Science:
- Neuroscience
- Biochemistry
- Cell Biology
Background:
- Amyloid-beta (Aβ) aggregation is a key factor in Alzheimer's disease (AD) pathogenesis, triggering microglial activation.
- Copper (II) ions (Cu(II)) interact with Aβ, promoting aggregation and neurotoxicity.
- The precise impact of Cu(II) binding on Aβ-induced microglial activation and neurotoxicity remains to be fully elucidated.
Purpose of the Study:
- To investigate how Cu(II) binding to Aβ influences microglial activation.
- To determine the role of Cu(II)-Aβ complexes in mediating neurotoxicity.
- To elucidate the molecular mechanisms underlying Cu(II)-Aβ-induced microglial responses.
Main Methods:
- Aβ peptides were complexed with Cu(II) at an equimolar ratio.
- Primary and BV-2 microglial cells were treated with Cu(II)-Aβ, Aβ, or Cu(II).
- Levels of TNF-α, nitric oxide, extracellular hydrogen peroxide, and mitochondrial superoxide were quantified; NF-κB activation was assessed.
Main Results:
- Cu(II)-Aβ complexes, but not Aβ or Cu(II) alone, induced microglial activation and release of TNF-α and nitric oxide at subneurotoxic concentrations.
- Cu(II)-Aβ treatment led to microglia-mediated neuronal damage, accompanied by NF-κB activation.
- Mitochondrial superoxide production increased, and reactive oxygen species (ROS) scavenging inhibited the observed effects.
Conclusions:
- Cu(II) binding significantly enhances Aβ's capacity to activate microglia and induce neurotoxicity.
- Cu(II)-Aβ-triggered microglial activation involves NF-κB signaling and mitochondrial ROS generation.
- These findings highlight the critical role of metal- Aβ interactions in AD neuroinflammation.
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