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Fascin-1 is Highly Expressed Specifically in Microglia After Spinal Cord Injury and Regulates Microglial Migration
Shuisheng Yu1, Li Cheng1,2, Dasheng Tian1
1Department of Orthopaedics, The Second Hospital of Anhui Medical University, Hefei, China.
Abstract:
Recent research indicates that after spinal cord injury (SCI), microglia accumulate at the borders of lesions between astrocytic and fibrotic scars and perform inflammation-limiting and neuroprotective functions, however, the mechanism of microglial migration remains unclear. Fascin-1 is a key actin-bundling protein that regulates cell migration, invasion and adhesion, but its role during SCI has not been reported. Here, we found that at 7-14 days after SCI in mice, Fascin-1 is significantly upregulated, mainly distributed around the lesion, and specifically expressed in CX3CR1-positive microglia. However, Fascin-1 is not expressed in GFAP-positive astrocytes, NeuN-positive neurons, NG2-positive cells, PDGFRβ-positive cells, or blood-derived Mac2-positive macrophages infiltrating into the lesion core. The expression of Fascin-1 is correspondingly decreased after microglia are specifically depleted in the injured spinal cord by the colony-stimulating factor 1 receptor (CSF1R) inhibitor PLX5622. The upregulation of Fascin-1 expression is observed when microglia are activated by myelin debris in vitro, and microglial migration is prominently increased. The inhibition of Fascin-1 expression using small interfering RNA (siRNA) markedly suppresses the migration of microglia, but this effect can be reversed by treatment with myelin. The M1/M2-like polarization of microglia does not affect the expression of Fascin-1. Together, our results suggest that Fascin-1 is highly expressed specifically in microglia after SCI and can play an important role in the migration of microglia and the formation of microglial scars. Hence, the elucidation of this mechanism will provide novel therapeutic targets for the treatment of SCI.
Insights
Fascin-1 protein is upregulated in microglia after spinal cord injury (SCI), promoting microglial migration and scar formation. Inhibiting Fascin-1 may offer new therapeutic strategies for SCI treatment.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglia accumulate at spinal cord injury (SCI) lesions, mediating inflammation and neuroprotection.
- The mechanisms driving microglial migration to SCI sites are not fully understood.
- Fascin-1, an actin-bundling protein, regulates cell migration but its role in SCI is unknown.
Purpose of the Study:
- To investigate the role of Fascin-1 in microglial migration following SCI.
- To determine if Fascin-1 expression is specific to microglia in the SCI environment.
- To explore Fascin-1 as a potential therapeutic target for SCI.
Main Methods:
- Spinal cord injury model in mice.
- Immunohistochemistry to detect Fascin-1 expression in various cell types.
- Pharmacological depletion of microglia using CSF1R inhibitor PLX5622.
- In vitro studies with activated microglia and myelin debris.
- Small interfering RNA (siRNA) to inhibit Fascin-1 expression.
Main Results:
- Fascin-1 expression is significantly upregulated in microglia around SCI lesions 7-14 days post-injury.
- Fascin-1 is specifically expressed in microglia (CX3CR1-positive) and not in astrocytes, neurons, or infiltrating macrophages.
- Fascin-1 upregulation correlates with microglial activation by myelin debris in vitro, enhancing migration.
- Fascin-1 inhibition suppresses microglial migration, an effect reversible by myelin.
- Microglial depletion reduces Fascin-1 expression in the injured spinal cord.
Conclusions:
- Fascin-1 is specifically upregulated in microglia after SCI and is crucial for their migration.
- Fascin-1 plays a significant role in microglial scar formation at SCI sites.
- Targeting Fascin-1 presents a promising therapeutic avenue for managing SCI progression and improving outcomes.
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