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Updated: Jun 20, 2026

Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Microglial polarization pathways and therapeutic drugs targeting activated microglia in traumatic brain injury
Liping Shi1,2, Shuyi Liu1,2, Jialing Chen1,2
1State Key Laboratory of Primate Biomedical Research, Institute of Primate Translational Medicine, Kunming University of Science and Technology, Kunming, Yunnan Province, China.
Abstract:
Traumatic brain injury can be categorized into primary and secondary injuries. Secondary injuries are the main cause of disability following traumatic brain injury, which involves a complex multicellular cascade. Microglia play an important role in secondary injury and can be activated in response to traumatic brain injury. In this article, we review the origin and classification of microglia as well as the dynamic changes of microglia in traumatic brain injury. We also clarify the microglial polarization pathways and the therapeutic drugs targeting activated microglia. We found that regulating the signaling pathways involved in pro-inflammatory and anti-inflammatory microglia, such as the Toll-like receptor 4 /nuclear factor-kappa B, mitogen-activated protein kinase, Janus kinase/signal transducer and activator of transcription, phosphoinositide 3-kinase/protein kinase B, Notch, and high mobility group box 1 pathways, can alleviate the inflammatory response triggered by microglia in traumatic brain injury, thereby exerting neuroprotective effects. We also reviewed the strategies developed on the basis of these pathways, such as drug and cell replacement therapies. Drugs that modulate inflammatory factors, such as rosuvastatin, have been shown to promote the polarization of anti-inflammatory microglia and reduce the inflammatory response caused by traumatic brain injury. Mesenchymal stem cells possess anti-inflammatory properties, and clinical studies have confirmed their significant efficacy and safety in patients with traumatic brain injury. Additionally, advancements in mesenchymal stem cell-delivery methods-such as combinations of novel biomaterials, genetic engineering, and mesenchymal stem cell exosome therapy-have greatly enhanced the efficiency and therapeutic effects of mesenchymal stem cells in animal models. However, numerous challenges in the application of drug and mesenchymal stem cell treatment strategies remain to be addressed. In the future, new technologies, such as single-cell RNA sequencing and transcriptome analysis, can facilitate further experimental studies. Moreover, research involving non-human primates can help translate these treatment strategies to clinical practice.
Insights
Microglia activation drives secondary injury in traumatic brain injury (TBI). Targeting microglial pathways with drugs or mesenchymal stem cells shows neuroprotective potential, offering new therapeutic avenues for TBI recovery.
Area of Science:
- Neuroscience
- Immunology
- Regenerative Medicine
Background:
- Traumatic brain injury (TBI) encompasses primary and secondary injuries, with secondary injuries causing significant disability.
- Microglia, immune cells in the brain, are activated by TBI and play a crucial role in the secondary injury cascade.
- Understanding microglial dynamics and polarization is key to developing effective TBI treatments.
Purpose of the Study:
- To review the origin, classification, and dynamic changes of microglia in TBI.
- To clarify microglial polarization pathways and identify therapeutic targets.
- To discuss current and emerging treatment strategies for TBI involving microglia modulation.
Main Methods:
- Literature review of microglial function in TBI.
- Analysis of signaling pathways regulating microglial polarization (e.g., TLR4/NF-κB, MAPK, JAK/STAT, PI3K/Akt, Notch, HMGB1).
- Evaluation of therapeutic approaches including drug therapy and mesenchymal stem cell (MSC) treatments.
Main Results:
- Modulating pro-inflammatory and anti-inflammatory microglial pathways can exert neuroprotective effects in TBI.
- Drugs like rosuvastatin can promote anti-inflammatory microglia polarization.
- Mesenchymal stem cells demonstrate efficacy and safety in TBI patients, with enhanced delivery methods showing promise.
Conclusions:
- Targeting microglial signaling pathways offers a promising strategy for TBI neuroprotection.
- Drug and cell-based therapies, particularly those involving mesenchymal stem cells, represent viable treatment options.
- Further research using advanced technologies and non-human primate models is needed to translate findings into clinical practice.
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