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Published on: September 19, 2010
Dcf1 Deficiency Attenuates the Role of Activated Microglia During Neuroinflammation
Jiao Wang1, Jie Li1, Qian Wang1
1Laboratory of Molecular Neural Biology, School of Life Sciences, Shanghai University, Shanghai, China.
Abstract:
Microglia serve as the principal immune cells and play crucial roles in the central nervous system, responding to neuroinflammation via migration and the execution of phagocytosis. Dendritic cell-derived factor 1 (Dcf1) is known to play an important role in neural stem cell differentiation, glioma apoptosis, dendritic spine formation, and Alzheimer's disease (AD), nevertheless, the involvement of the Dcf1 gene in the brain immune response has not yet been reported. In the present paper, the RNA-sequencing and function enrichment analysis suggested that the majority of the down-regulated genes in Dcf1-/- (Dcf1-KO) mice are immune-related. In vivo experiments showed that Dcf1 deletion produced profound effects on microglial function, increased the expression of microglial activation markers, such as ionized calcium binding adaptor molecule 1 (Iba1), Cluster of Differentiation 68 (CD68) and translocator protein (TSPO), as well as certain proinflammatory cytokines (Cxcl1, Ccl7, and IL17D), but decreased the migratory and phagocytic abilities of microglial cells, and reduced the expression levels of some other proinflammatory cytokines (Cox-2, IL-1β, IL-6, TNF-α, and Csf1) in the mouse hippocampus. Furthermore, in vitro experiments revealed that in the absence of lipopolysaccharide (LPS), the majority of microglia were ramified and existed in a resting state, with only approximately 10% of cells exhibiting an amoeboid-like morphology, indicative of an activated state. LPS treatment dramatically increased the ratio of activated to resting cells, and Dcf1 downregulation further increased this ratio. These data indicated that Dcf1 deletion mediates neuroinflammation and induces dysfunction of activated microglia, preventing migration and the execution of phagocytosis. These findings support further investigation into the biological mechanisms underlying microglia-related neuroinflammatory diseases, and the role of Dcf1 in the immune response.
Insights
Dendritic cell-derived factor 1 (Dcf1) deletion impairs microglial immune responses in the brain. This dysfunction reduces microglial migration and phagocytosis, contributing to neuroinflammation and potential disease mechanisms.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Microglia are key immune cells in the central nervous system, crucial for responding to neuroinflammation.
- Dendritic cell-derived factor 1 (Dcf1) has known roles in neural development and diseases like Alzheimer's, but its function in brain immunity was unknown.
Purpose of the Study:
- To investigate the role of the Dcf1 gene in the brain's immune response, specifically focusing on microglial function.
- To determine the effects of Dcf1 deletion on microglial activation, migration, and phagocytosis.
Main Methods:
- RNA-sequencing and functional enrichment analysis in Dcf1 knockout (Dcf1-KO) mice.
- In vivo experiments assessing microglial activation markers and cytokine expression in the hippocampus.
- In vitro studies evaluating microglial morphology and activation states with and without Dcf1 and lipopolysaccharide (LPS) treatment.
Main Results:
- Dcf1 deletion led to down-regulation of immune-related genes.
- In vivo, Dcf1 deficiency increased microglial activation markers (Iba1, CD68, TSPO) and some pro-inflammatory cytokines but impaired microglial migration and phagocytosis.
- In vitro, Dcf1 downregulation exacerbated LPS-induced microglial activation.
Conclusions:
- Dcf1 deletion mediates neuroinflammation by inducing microglial dysfunction, hindering their migration and phagocytic capabilities.
- These findings highlight Dcf1's significant role in the brain's immune response and suggest its involvement in microglia-related neuroinflammatory diseases.
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