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Primary Culture of Mouse Dopaminergic Neurons
Published on: September 8, 2014
Microglial gp91phox-mediated neuroinflammation and ferroptosis contributes to learning and memory deficits in
Lu Tian1, Peiyan Tang2, Jianing Liu2
1National-Local Joint Engineering Research Center for Drug-Research and Development (R & D) of Neurodegenerative Diseases, Dalian Medical University, Dalian, 116044, China; Chaoyang Center for Disease Control and Prevention, Beijing, China.
Abstract:
Apart from dopaminergic neurotoxicity, exposure to rotenone, a commonly used insecticide in agriculture, also adversely affects hippocampal and cortical neurons, resulting in cognitive impairments in mice. We recently established a role of microglia-mediated neuroinflammation in rotenone-elicited deficits of cognition, yet the mechanisms remain elusive. Here, we investigated the involvement of NADPH oxidase 2 (NOX2) catalytic subunit gp91phox in rotenone-induced cognitive deficits and the associated mechanisms. Our study demonstrated that rotenone exposure elevated expression of gp91phox and phosphorylation of the NOX2 cytosolic subunit p47phox, along with NADPH depletion in the hippocampus and cortex of mice, indicating NOX2 activation. Specific knockdown of gp91phox in microglia via adeno-associated virus delivery resulted in reduced microglial activation, proinflammatory gene expression and improved learning and memory capacity in rotenone-intoxicated mice. Genetic deletion of gp91phox also reversed rotenone-elicited cognitive dysfunction in mice. Furthermore, microglial gp91phox knockdown attenuated neuronal damage and synaptic loss in mice. This intervention also suppressed iron accumulation, disruption of iron-metabolism proteins and iron-dependent lipid peroxidation and restored the balance of ferroptosis-related parameters, including GPX4, SLC711, PTGS2, and ACSL4 in rotenone-lesioned mice. Intriguingly, pharmacological inhibition of ferroptosis with liproxstatin-1 conferred protection against rotenone-induced neurodegeneration and cognitive dysfunction in mice. In summary, our findings underscored the contribution of microglial gp91phox-dependent neuroinflammation and ferroptosis to learning and memory dysfunction in rotenone-lesioned mice. These results provided valuable insights into the pathogenesis of cognitive deficits associated with pesticide-induced Parkinsonism, suggesting potential therapeutic avenues for intervention.
Insights
Rotenone insecticide exposure causes cognitive deficits by activating microglial NADPH oxidase 2 (NOX2). Inhibiting NOX2 in microglia protects against neuroinflammation and memory loss.
Area of Science:
- Neuroscience
- Toxicology
- Immunology
Background:
- Rotenone, an insecticide, causes neurotoxicity beyond dopaminergic neurons, affecting cognition.
- Microglia-mediated neuroinflammation is implicated in rotenone-induced cognitive deficits, but mechanisms are unclear.
Purpose of the Study:
- Investigate the role of NADPH oxidase 2 (NOX2) in rotenone-induced cognitive deficits.
- Elucidate the mechanisms involving NOX2, neuroinflammation, and ferroptosis.
Main Methods:
- Mice exposed to rotenone.
- Assessed NOX2 activation (gp91phox expression, p47phox phosphorylation).
- Microglial gp91phox knockdown using adeno-associated virus.
- Evaluated cognitive function, neuroinflammation, neuronal damage, synaptic loss, and ferroptosis markers.
- Used ferroptosis inhibitor liproxstatin-1.
Main Results:
- Rotenone increased gp91phox expression and NOX2 activation in the hippocampus and cortex.
- Microglial gp91phox knockdown reduced neuroinflammation and improved cognitive function.
- Genetic deletion of gp91phox reversed rotenone-induced cognitive dysfunction.
- Intervention attenuated neuronal damage, synaptic loss, and suppressed iron accumulation and ferroptosis.
Conclusions:
- Microglial NOX2 activation contributes to rotenone-induced neuroinflammation and cognitive deficits.
- NOX2-dependent ferroptosis plays a key role in rotenone neurotoxicity.
- Targeting microglial NOX2 and ferroptosis offers potential therapeutic strategies for pesticide-induced cognitive dysfunction.
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