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Updated: Jul 27, 2026

Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Electroacupuncture regulates microglial polarization via inhibiting NF-κB/COX2 pathway following traumatic brain
Xiao-Hui Zhang1, Hai Cui1, Shu-Mei Zheng1
1School of Traditional Chinese Medicine, Capital Medical University, Beijing 100069, China.
Background:
Neuroinflammation and oxidative stress are important pathological mechanisms following traumatic brain injury (TBI). The NF-κB/COX2 pathway regulates neuroinflammation and oxidative damage, while microglia also play an important role in neuroinflammation. Since NF-κB is involved in microglial polarization, targeting this pathway and microglial polarization is a critical component of TBI treatment. Currently, electroacupuncture (EA) is widely used to treat various symptoms after TBI, but the mechanisms of EA remain poorly understood. Additionally, the optimal frequency of EA remains unclear, which affects its efficacy. This study focuses on exploring the optimal frequency parameters of EA on TBI and investigating the underlying mechanisms of EA through NF-κB/COX2 pathway and microglial polarization.
Methods:
The study was divided into two parts. In Experiment 1, 42 Sprague Dawley (SD) rats were induced and randomly divided into seven groups (n = 6). Except for the sham group, all rats underwent controlled cortical impact (CCI) to establish TBI model. Four EA groups (with different frequencies) and manual acupuncture (without current stimulation) received stimulation on the acupoints of Shuigou (GV26), Fengchi (GB20) and Neiguan (PC6) once a day for 7 days. The neurological function was assessed by modified Neurological Severity Scores (mNSS), and the rats' memory and learning were examined by the Morris water maze (MWM). SOD, MDA, and GSH-Px were detected to evaluate the levels of oxidative stress. The levels of IL-1β, IL-6, and TNF-α were evaluated by Enzyme Linked Immunosorbent Assay (ELISA). Detection of the above indicators indicated a treatment group that exerted the strongest neuroprotection against TBI, we then conducted Experiment 2 using this screened acupuncture treatment to investigate the mechanism of acupuncture. 48 rats were randomly divided into four groups (n = 12): sham, TBI model, acupuncture and PDTC (NF-κB inhibitor). Evaluations of mNSS, MWM test, SOD, MDA, GSH-Px, IL-1β, IL-6, TNF-α, and IL-10 were the same as in Experiment 1. Western blot was applied for detecting the expression levels of NF-κB, p-NF-κB, COX2, and Arg-1. TUNEL was used to examine neuronal apoptosis. Brain structure was observed by H&E. Iba-1, COX2, and Arg-1 were investigated by immunofluorescence staining.
Results:
EA with frequency of 2/100 Hz markedly improved neuronal and cognitive function as compared to the other treatment groups. Moreover, it downregulated the expression of MDA, IL-6, IL-1β, and TNF-α and upregulated the levels of SOD and GSH-Px. In addition, Both EA with 2/100 Hz and PDTC reduced the levels of p-NF-κB, COX2 and M1 markers (COX2, IL-6, IL-1β, TNF-α) and increased the levels of M2 markers (Arg-1, IL-10). Moreover, they had similar effects on reducing inflammation, oxidative stress and apoptosis, and improving neuronal and cognitive function.
Conclusions:
The collective findings strongly suggest that EA with 2/100 Hz can improve neurologic function by suppressing neuroinflammation, oxidative stress and apoptosis. Additionally, we confirm that EA promotes microglial polarization towards the M2 phenotype through the suppression of NF-κB/COX2 pathway, thus exerting neuroprotective effects after TBI.
Insights
Electroacupuncture (EA) at 2/100 Hz frequency significantly improves neurological and cognitive function after traumatic brain injury (TBI) by reducing inflammation and oxidative stress. This treatment promotes beneficial microglial polarization via the NF-κB/COX2 pathway, offering neuroprotection.
Area of Science:
- Neuroscience
- Neurology
- Acupuncture Research
Background:
- Traumatic brain injury (TBI) involves neuroinflammation and oxidative stress, with the NF-κB/COX2 pathway and microglial polarization playing key roles.
- Electroacupuncture (EA) is used for TBI symptom management, but optimal frequencies and underlying mechanisms require further investigation.
- Targeting microglial polarization and the NF-κB/COX2 pathway is crucial for effective TBI treatment.
Purpose of the Study:
- To determine the optimal frequency of EA for treating TBI.
- To elucidate the neuroprotective mechanisms of EA involving the NF-κB/COX2 pathway and microglial polarization in TBI.
Main Methods:
- Experiment 1: TBI model in rats (n=42) subjected to varying EA frequencies (including 2/100 Hz) or manual acupuncture, assessing neurological function, cognitive ability, oxidative stress markers, and inflammatory cytokines.
- Experiment 2: Investigated the mechanism using the optimal EA frequency (2/100 Hz) and an NF-κB inhibitor (PDTC) in TBI rats (n=48), evaluating neurological/cognitive function, oxidative stress, inflammation, apoptosis, protein expression (NF-κB, COX2, Arg-1), and microglial markers.
- Histological analysis (H&E) and immunofluorescence staining (Iba-1, COX2, Arg-1) were performed.
Main Results:
- EA at 2/100 Hz significantly improved neurological and cognitive function, reduced oxidative stress (MDA, increased SOD/GSH-Px), and decreased pro-inflammatory cytokines (IL-6, IL-1β, TNF-α).
- EA (2/100 Hz) and PDTC similarly downregulated NF-κB pathway activation (p-NF-κB, COX2) and M1 microglial markers while upregulating M2 markers (Arg-1, IL-10).
- Both treatments effectively reduced inflammation, oxidative stress, and apoptosis, enhancing neuronal and cognitive recovery post-TBI.
Conclusions:
- EA at 2/100 Hz demonstrates significant neuroprotective effects in TBI by suppressing neuroinflammation, oxidative stress, and apoptosis.
- EA promotes a shift in microglial polarization towards the M2 phenotype by inhibiting the NF-κB/COX2 pathway.
- The findings support EA as a potential therapeutic strategy for TBI, highlighting its optimal frequency and mechanism of action.
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