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Macrophage Differentiation and Polarization into an M2-Like Phenotype using a Human Monocyte-Like THP-1 Leukemia Cell Line
Published on: August 2, 2021
TSPO Modulates IL-4-Induced Microglia/Macrophage M2 Polarization via PPAR-γ Pathway
Dandan Zhou1, Lei Ji2, Youguo Chen3
1Department of Obstetrics and Gynecology, Yancheng First People's Hospital, Yancheng, 224005, Jiangsu, People's Republic of China.
Abstract:
Microglia activation has been reported to be associated with pathogenesis of neuroinflammation, central nervous system damage, and degeneration diseases. With various damage-associated molecules released, M1 polarization of microglia emerges early after injury and followed by M2 polarization. In this study, we demonstrate using a primary microglia polarization model that, during the M2 polarization of microglia, the protein expression of translocator protein (TSPO) was decreased and peroxisome proliferator-activated receptor (PPAR-γ) activation was observed. In addition, we found TSPO antagonist PK11195 treatment enhanced PPAR-γ expression in M2-polarized microglia, while TSPO agonist FGIN-1-27 and TSPO overexpression in microglia significantly suppressed PPAR-γ expression in both the cytoplasm and nucleus. Then, real-time quantitative PCR was used to detect the expression of M2 polarization markers in microglia after TSPO ligand treatment, the data showed that PK11195 promoted the expression of CD206, Arg-1, YM-1, and FIZZ-1 induced by interleukin-4 (IL-4), and FGIN-1-27 and TSPO overexpression inhibited the expression of these molecules. Furthermore, the release of BDNF, CNTF-1, IGF-1, and NGF-1 from microglia was determined by enzyme-linked immunosorbent assay; these trophic factors showed similar trends with expression of M2 polarization markers. Levels of BDNF, CNTF-1, IGF-1, and NGF-1 were obviously upregulated by PK11195 and downregulated by FGIN-1-27 and TSPO overexpression. We propose that IL-4 in the hypoxic ischemia brain site induces the M2 polarization of microglia, and TSPO inhibits the M2 polarization and trophic factor release through PPAR-γ pathway.
Insights
Translocator protein (TSPO) inhibits beneficial M2 microglia polarization and trophic factor release via the PPAR-γ pathway. Blocking TSPO enhances M2 markers and neurotrophic factors, suggesting therapeutic potential for neuroinflammation.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia activation is central to neuroinflammation and CNS damage.
- M1 and M2 polarization states dictate microglial function post-injury.
- Translocator protein (TSPO) role in M2 polarization is not fully understood.
Purpose of the Study:
- To investigate the role of TSPO in M2 microglia polarization.
- To explore the relationship between TSPO, PPAR-γ, and M2 markers.
- To assess the impact of TSPO modulation on neurotrophic factor release.
Main Methods:
- Primary microglia polarization model.
- TSPO antagonist (PK11195) and agonist (FGIN-1-27) treatments.
- TSPO overexpression.
- Real-time quantitative PCR for M2 markers (CD206, Arg-1, YM-1, FIZZ-1).
- Enzyme-linked immunosorbent assay for trophic factors (BDNF, CNTF-1, IGF-1, NGF-1).
Main Results:
- TSPO expression decreased during M2 polarization; PPAR-γ activation was observed.
- PK11195 enhanced PPAR-γ and M2 marker expression induced by IL-4.
- FGIN-1-27 and TSPO overexpression suppressed PPAR-γ and M2 markers.
- Trophic factor release mirrored M2 marker trends, upregulated by PK11195 and downregulated by FGIN-1-27/overexpression.
Conclusions:
- TSPO inhibits IL-4-induced M2 microglia polarization and trophic factor release.
- The PPAR-γ pathway mediates TSPO's inhibitory effect on M2 polarization.
- Modulating TSPO activity presents a potential strategy for neuroinflammation treatment.
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