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Updated: Jun 18, 2026

Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Fundamental Neurochemistry Review: Microglial immunometabolism in traumatic brain injury
Nathan R Strogulski1, Luis V Portela2, Brian M Polster3
1School of Biochemistry and Immunology, Trinity Biomedical Sciences Institute, Trinity College Dublin, Dublin, Ireland.
Abstract:
Traumatic brain injury (TBI) is a devastating neurological disorder caused by a physical impact to the brain that promotes diffuse damage and chronic neurodegeneration. Key mechanisms believed to support secondary brain injury include mitochondrial dysfunction and chronic neuroinflammation. Microglia and brain-infiltrating macrophages are responsible for neuroinflammatory cytokine and reactive oxygen species (ROS) production after TBI. Their production is associated with loss of homeostatic microglial functions such as immunosurveillance, phagocytosis, and immune resolution. Beyond providing energy support, mitochondrial metabolic pathways reprogram the pro- and anti-inflammatory machinery in immune cells, providing a critical immunometabolic axis capable of regulating immunologic response to noxious stimuli. In the brain, the capacity to adapt to different environmental stimuli derives, in part, from microglia's ability to recognize and respond to changes in extracellular and intracellular metabolite levels. This capacity is met by an equally plastic metabolism, capable of altering immune function. Microglial pro-inflammatory activation is associated with decreased mitochondrial respiration, whereas anti-inflammatory microglial polarization is supported by increased oxidative metabolism. These metabolic adaptations contribute to neuroimmune responses, placing mitochondria as a central regulator of post-traumatic neuroinflammation. Although it is established that profound neurometabolic changes occur following TBI, key questions related to metabolic shifts in microglia remain unresolved. These include (a) the nature of microglial mitochondrial dysfunction after TBI, (b) the hierarchical positions of different metabolic pathways such as glycolysis, pentose phosphate pathway, glutaminolysis, and lipid oxidation during secondary injury and recovery, and (c) how immunometabolism alters microglial phenotypes, culminating in chronic non-resolving neuroinflammation. In this basic neurochemistry review article, we describe the contributions of immunometabolism to TBI, detail primary evidence of mitochondrial dysfunction and metabolic impairments in microglia and macrophages, discuss how major metabolic pathways contribute to post-traumatic neuroinflammation, and set out future directions toward advancing immunometabolic phenotyping in TBI.
Insights
Traumatic brain injury (TBI) triggers neuroinflammation via mitochondrial dysfunction in microglia. Understanding immunometabolism shifts is key to resolving chronic neuroinflammation after TBI.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- Traumatic brain injury (TBI) causes diffuse brain damage and neurodegeneration.
- Mitochondrial dysfunction and neuroinflammation are key mechanisms of secondary brain injury.
- Microglia and macrophages drive neuroinflammation via cytokine and reactive oxygen species (ROS) production, impairing homeostatic functions.
Purpose of the Study:
- To review the role of immunometabolism in TBI.
- To detail mitochondrial dysfunction and metabolic impairments in microglia and macrophages post-TBI.
- To explore how metabolic pathways influence neuroinflammation and identify future research directions.
Main Methods:
- This is a review article synthesizing existing research.
- It focuses on basic neurochemistry and immunometabolism.
- Evidence of mitochondrial dysfunction and metabolic shifts in immune cells is discussed.
Main Results:
- Microglial metabolic reprogramming influences immune responses, with pro-inflammatory activation linked to decreased mitochondrial respiration and anti-inflammatory polarization to increased oxidative metabolism.
- Mitochondria are central regulators of post-TBI neuroinflammation.
- Key questions remain regarding microglial mitochondrial dysfunction, the roles of specific metabolic pathways (e.g., glycolysis, glutaminolysis), and their impact on microglial phenotypes.
Conclusions:
- Immunometabolism critically regulates neuroinflammation following TBI.
- Mitochondrial dysfunction and altered metabolic pathways in microglia contribute to chronic neuroinflammation.
- Further research into immunometabolic phenotyping is needed to advance TBI treatment strategies.
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