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Primary Microglia Isolation from Mixed Glial Cell Cultures of Neonatal Rat Brain Tissue
Published on: August 15, 2012
EP4 Receptor-Associated Protein in Microglia Promotes Inflammation in the Brain
Risako Fujikawa1, Sei Higuchi2, Masato Nakatsuji3
1Department of Clinical Innovative Medicine, Kyoto University Graduate School of Medicine, Kyoto, Japan; Japan Society for the Promotion of Science, Kyoto, Japan.
Abstract:
Microglial cells play a key role in neuronal damage in neurodegenerative disorders. Overactivated microglia induce detrimental neurotoxic effects through the excess production of proinflammatory cytokines. However, the mechanisms of microglial activation are poorly understood. We focused on prostaglandin E2 type 4 receptor-associated protein (EPRAP), which suppresses macrophage activation. We demonstrated that EPRAP exists in microglia in the brain. Furthermore, EPRAP-deficient mice displayed less microglial accumulation, and intraperitoneal administration of lipopolysaccharide (LPS) led to reduced expression of tumor necrosis factor-α and monocyte chemoattractant protein-1 mRNA in the brains of EPRAP-deficient mice. Consistently, EPRAP-deficient microglia showed a marked decrease in the production of tumor necrosis factor-α and monocyte chemoattractant protein-1 induced by LPS treatment compared with wild-type controls. In addition, EPRAP deficiency decreased microglial activation and neuronal cell death induced by intraventricular injection of kainic acid. EPRAP deficiency impaired the LPS-induced phosphorylation of c-jun N-terminal kinase and p38 mitogen-activated protein kinase in microglia. The phosphorylation levels of mitogen-activated protein kinase kinase 4-which phosphorylates c-jun N-terminal kinase and p38 mitogen-activated protein kinase-were also decreased in EPRAP-deficient microglia after LPS stimulation. Although EPRAP in macrophages plays a role in the attenuation of inflammation, EPRAP promotes proinflammatory activation of microglia through mitogen-activated protein kinase kinase 4-mediated signaling and may be key to the deteriorating neuronal damage brought on by brain inflammation.
Insights
Prostaglandin E2 receptor-associated protein (EPRAP) promotes microglial activation and neuroinflammation. EPRAP deficiency reduces microglial accumulation and neuronal damage, offering a potential therapeutic target for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells are crucial in neuroinflammation and neuronal damage in neurodegenerative disorders.
- Overactivated microglia produce excessive proinflammatory cytokines, leading to neurotoxic effects.
- The precise mechanisms governing microglial activation remain incompletely understood.
Purpose of the Study:
- To investigate the role of prostaglandin E2 type 4 receptor-associated protein (EPRAP) in microglial activation.
- To determine if EPRAP influences neuroinflammation and neuronal damage.
Main Methods:
- Examined EPRAP expression in microglia within the brain.
- Utilized EPRAP-deficient mice and lipopolysaccharide (LPS) administration to assess microglial responses.
- Analyzed the expression of inflammatory markers (TNF-α, MCP-1) and the phosphorylation of key signaling proteins (JNK, p38 MAPK, MEKK4).
- Evaluated neuronal cell death following kainic acid injection in EPRAP-deficient mice.
Main Results:
- EPRAP was confirmed to be present in brain microglia.
- EPRAP-deficient mice showed reduced microglial accumulation and lower levels of inflammatory markers (TNF-α, MCP-1) after LPS treatment.
- EPRAP deficiency attenuated LPS-induced microglial activation and neuronal cell death.
- Impaired phosphorylation of JNK, p38 MAPK, and MEKK4 was observed in EPRAP-deficient microglia post-LPS stimulation.
Conclusions:
- Contrary to its role in macrophages, EPRAP promotes pro-inflammatory microglial activation via MEKK4-mediated signaling.
- EPRAP plays a significant role in exacerbating brain inflammation and subsequent neuronal damage.
- Targeting EPRAP may represent a novel therapeutic strategy for mitigating neuroinflammation in neurodegenerative conditions.
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