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Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Effect of Hyperbaric Oxygen Therapy on Polarization Phenotype of Rat Microglia After Traumatic Brain Injury
Fang Liang1, Nan Kang2, Pinpin Li1
1Department of Hyperbaric Oxygen, Beijing Chao-Yang Hospital, Capital Medical University, Beijing, China.
Abstract:
Background: The neurological defect caused by secondary damage following traumatic brain injury (TBI) is considered critical for the management of TBI. Microglia (MG) are a resident brain macrophage that could differentiate into M1 type or M2 type in response to injury and repair. It is known that the MG transition from M1 phenotype to anti-inflammatory M2 phenotype might reduce secondary injury of TBI. So, a TBI animal model was established and we compared biomarkers of M1 and M2MG between the controls and experimental animals receiving hyperbaric oxygen therapy (HBOT). This study aimed to explore whether HBOT was an effective method to improve neural functional recovery via promoting the polarization of MG into M2 after TBI. Methods: The rats were randomly divided into four groups: SH (Sham-operated), SH + HBO (hyperbaric oxygen), TBI, and TBI + HBO. Each group included 42 rats, and each of these were divided into the following groups: 1, 6, 12, 24, 72 h, 7, and 14 days. The expression of M1 biomarker inducible nitric oxide synthase (iNOS), M2 biomarker arginase 1 (Arg1), associated cytokine tumor necrosis factor-α (TNF-α), and transforming growth factor-β1 (TGF-β1) was evaluated after the observation time. Results: TBI significantly increased the expression levels of M1 marker iNOS and M2 markers Arg1 at different time points. The increased expression of iNOS was suppressed, while the expression level of Arg1 was enhanced by HBOT. Moreover, HBOT suppressed the pro-inflammatory TNF-α secreted by M1, and promoting the anti-inflammatory TGF-1β. Conclusions: In the present study, HBOT showed the effects on shift of M1 toward M2 phenotype with increased expression of M2 biomarkers and decreased expression of M1 biomarkers in the early stage after TBI.
Insights
Hyperbaric oxygen therapy (HBOT) promotes microglia (MG) polarization to the anti-inflammatory M2 phenotype after traumatic brain injury (TBI). This shift reduces M1 biomarkers and enhances M2 biomarkers, aiding neural recovery.
Area of Science:
- Neuroscience
- Traumatic Brain Injury Research
- Cellular Biology
Background:
- Traumatic brain injury (TBI) management is complicated by secondary neurological damage.
- Microglia (MG), brain macrophages, can adopt M1 (pro-inflammatory) or M2 (anti-inflammatory) phenotypes.
- Shifting MG from M1 to M2 may mitigate secondary TBI damage and improve neural recovery.
Purpose of the Study:
- To investigate the efficacy of hyperbaric oxygen therapy (HBOT) in promoting M2 microglia polarization post-TBI.
- To evaluate HBOT's impact on M1 and M2 microglia biomarkers and neural functional recovery in a TBI rat model.
Main Methods:
- A TBI rat model was established, with rats divided into Sham-operated (SH), SH + HBOT, TBI, and TBI + HBOT groups.
- Biomarkers for M1 (inducible nitric oxide synthase - iNOS) and M2 (arginase 1 - Arg1) microglia, and cytokines (TNF-α, TGF-β1) were measured at multiple time points.
- HBOT was administered to assess its effects on these biomarkers compared to controls.
Main Results:
- TBI increased both M1 (iNOS) and M2 (Arg1) marker expression.
- HBOT significantly suppressed iNOS expression while enhancing Arg1 expression.
- HBOT reduced pro-inflammatory TNF-α and increased anti-inflammatory TGF-β1 levels.
Conclusions:
- HBOT effectively promotes a shift from M1 to M2 microglia phenotype in the early stages after TBI.
- This phenotypic shift is characterized by decreased M1 biomarkers and increased M2 biomarkers.
- HBOT demonstrates potential for improving neural functional recovery following TBI by modulating microglia polarization.

