Related Experiment Video
Updated: May 3, 2026

Assessing Mitochondrial Function in Sciatic Nerve by High-Resolution Respirometry
Published on: May 5, 2022
Subneurotoxic copper(II)-induced NF-κB-dependent microglial activation is associated with mitochondrial ROS
Zhuqin Hu1, Fengxiang Yu1, Ping Gong1
1Department of Pharmacology and Chemical Biology, Shanghai Jiao Tong University School of Medicine, 280 South Chongqing Road, Shanghai 200025, China.
Abstract:
Microglia-mediated neuroinflammation and the associated neuronal damage play critical roles in the pathogenesis of neurodegenerative disorders. Evidence shows an elevated concentration of extracellular copper(II) in the brains of these disorders, which may contribute to neuronal death through direct neurotoxicity. Here we explored whether extracellular copper(II) triggers microglial activation. Primary rat microglia and murine microglial cell line BV-2 cells were cultured and treated with copper(II). The content of tumor necrosis factor-α (TNF-α) and nitric oxide in the medium was determined. Extracellular hydrogen peroxide was quantified by a fluorometric assay with Amplex Red. Mitochondrial superoxide was measured by MitoSOX oxidation. At subneurotoxic concentrations, copper(II) treatment induced a dose- and time-dependent release of TNF-α and nitric oxide from microglial cells, and caused an indirect, microglia-mediated neurotoxicity that was blocked by inhibition of TNF-α and nitric oxide production. Copper(II)-initiated microglial activation was accompanied with reduced IкB-α expression as well as phosphorylation and translocation of nuclear factor-κB (NF-κB) p65 and was blocked by NF-κB inhibitors (BAY11-7082 and SC-514). Moreover, copper(II) treatment evoked a rapid release of hydrogen peroxide from microglial cells, an effect that was not affected by NADPH oxidase inhibitors. N-acetyl-cysteine, a scavenger of reactive oxygen species (ROS), abrogated copper(II)-elicited microglial release of TNF-α and nitric oxide and subsequent neurotoxicity. Importantly, mitochondrial production of superoxide, paralleled to extracellular release of hydrogen peroxide, was induced after copper(II) stimulation. Our findings suggest that extracellular copper(II) at subneurotoxic concentrations could trigger NF-κB-dependent microglial activation and subsequent neurotoxicity. NADPH oxidase-independent, mitochondria-derived ROS may be involved in this activation.
Insights
Extracellular copper(II) activates microglia, releasing inflammatory molecules and causing neurotoxicity. This process involves nuclear factor-κB (NF-κB) signaling and mitochondria-derived reactive oxygen species (ROS), contributing to neurodegenerative disorders.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Neuroinflammation, driven by microglia, and neuronal damage are key in neurodegenerative diseases.
- Elevated extracellular copper(II) in affected brains suggests a role in neuronal death.
Purpose of the Study:
- To investigate if extracellular copper(II) triggers microglial activation.
- To elucidate the mechanisms underlying copper(II)-induced microglial responses and neurotoxicity.
Main Methods:
- Primary rat microglia and BV-2 cells were treated with copper(II).
- Measured TNF-α, nitric oxide, hydrogen peroxide, and mitochondrial superoxide.
- Assessed NF-κB pathway activation and effects of inhibitors and ROS scavengers.
Main Results:
- Subneurotoxic copper(II) induced dose- and time-dependent TNF-α and nitric oxide release from microglia.
- Copper(II) triggered microglia-mediated neurotoxicity, blocked by inhibiting TNF-α/nitric oxide.
- Activation involved NF-κB pathway and was independent of NADPH oxidase, with mitochondria-derived ROS implicated.
Conclusions:
- Extracellular copper(II) at subneurotoxic levels activates microglia via NF-κB.
- Mitochondria-derived ROS contribute to copper(II)-induced microglial activation and neurotoxicity.
- Findings suggest copper(II) as a potential factor in neuroinflammation and neurodegeneration.
More Related Videos
Related Concept Videos
NF-κB-dependent Signaling Pathway
NF-κB-dependent Signaling Mechanism
The...
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...

