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Macrophage Extracellular Traps Exacerbate Secondary Spinal Cord Injury by Modulating Macrophage/Microglia
Chengyi Zhang1, Dong Guo1, Hao Qiao1
1Department of Orthopaedics, The Second Affiliated Hospital, School of Medicine, Xi'an Jiaotong University, Xi'an, China.
Abstract:
Persistent inflammation in the secondary spinal cord injury (SCI) is an important reason for the failure of nerve repair, which is partly due to the continuous activation of local M1-like macrophage/microglia. It is reported that extracellular trap (ET) has been a new way of cell death, which can be released by macrophages and named macrophage extracellular trap (Met). Furthermore, it exists widely in the pathophysiological process of many diseases, but it has been rarely studied in the field of SCI. In this study, we constructed a spinal cord contusion model and assessed the function outcome of SCI rats. We used immunofluorescence, flow cytometry, and transmission electron microscope (TEM) to demonstrate the existence of Mets. Besides, some related experiments had also been employed to explore the relationship between Mets and M1 polarization of macrophage/microglia. We also performed Co-IP and Western blotting to reveal a new extracellular proinflammatory signal pathway. Finally, we made a linear regression analysis between the concentrations of specific markers of Mets in human serum and ASIA scores. Briefly, our results suggested that macrophages infiltrated in SCI area could induce macrophage/microglia to differentiate into M1-like cells by releasing Mets, which may be achieved partly through LL37-P2X37-NF-κB signal pathway. However, limiting Mets could effectively inhibit M1 polarization and promote function recovery. In addition, the concentrations of Met related proteins in human serum showed high correlation with ASIA scores and could be applied to reflect the severity of SCI. In conclusion, Mets may be a new target for SCI therapy and a promising index for SCI assessment.
Insights
Macrophage extracellular traps (Mets) drive M1 polarization in spinal cord injury (SCI), hindering nerve repair. Inhibiting Mets promotes recovery and offers a new therapeutic target for SCI.
Area of Science:
- Neuroscience
- Immunology
- Regenerative Medicine
Background:
- Persistent inflammation post-spinal cord injury (SCI) impedes nerve repair, often driven by activated M1-like macrophages/microglia.
- Macrophage extracellular traps (Mets), a form of cell death, are implicated in various diseases but understudied in SCI.
Purpose of the Study:
- To investigate the role of Mets in SCI pathogenesis and their relationship with M1 macrophage/microglia polarization.
- To explore Mets as a potential therapeutic target and diagnostic biomarker for SCI.
Main Methods:
- Constructed a spinal cord contusion model in rats.
- Utilized immunofluorescence, flow cytometry, transmission electron microscopy (TEM), Co-immunoprecipitation (Co-IP), and Western blotting.
- Performed linear regression analysis on human serum Met markers and ASIA scores.
Main Results:
- Demonstrated the existence of Mets in the SCI area and their correlation with M1 polarization.
- Identified a potential LL37-P2X37-NF-κB signaling pathway involved in Met-induced M1 polarization.
- Showed that limiting Mets inhibited M1 polarization and improved functional recovery in SCI rats.
- Found a strong correlation between Met-related proteins in human serum and ASIA scores, indicating their potential as SCI severity markers.
Conclusions:
- Mets released by infiltrating macrophages contribute to M1 polarization in SCI, hindering nerve repair.
- Targeting Mets presents a promising therapeutic strategy for SCI.
- Met-related proteins in serum may serve as valuable biomarkers for assessing SCI severity.
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