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.

Journal of Neurochemistry
|September 28, 2023
PubMed

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.

Related Concept Videos

Neurogenesis and Regeneration of Nervous Tissue01:15

Neurogenesis and Regeneration of Nervous Tissue

In the CNS, neurogenesis, the birth of new neurons from stem cells, is limited to the hippocampus in adults. In other regions of the brain and spinal cord, neurogenesis is almost non-existent due to inhibitory influences from neuroglia, especially oligodendrocytes, and the absence of growth-stimulating cues. The myelin produced by oligodendrocytes in the CNS inhibits neuronal regeneration. Furthermore, astrocytes proliferate rapidly after neuronal damage, forming scar tissue that physically...
Neuroplasticity01:01

Neuroplasticity

Neuroplasticity reflects the brain's remarkable capacity to adapt and evolve, responding dynamically to learning, experiences, or injury by reorganizing its neural circuitry. This reorganization involves creating new neural connections and refining old ones through a series of biological processes that contribute to the brain's lifelong development and adaptability.
Role of Neurotransmitters in Memory01:23

Role of Neurotransmitters in Memory

Neurotransmitters are integral to the brain's communication system, enabling neurons to transmit signals across synapses. This chemical exchange underpins various cognitive functions, including memory processes. The role of neurotransmitters in memory is multifaceted, influencing the encoding, consolidation, and retrieval of memories through their action on different neural circuits.
 Glutamate and Synaptic Plasticity
Glutamate, the brain's main excitatory neurotransmitter, is critical for...
Gut-Brain Axis01:22

Gut-Brain Axis

The gut–brain axis is a bidirectional communication system that connects the gastrointestinal tract and the brain. This interaction is mediated through multiple pathways, including the vagus nerve, hormonal signals, immune responses, and chemical messengers produced by gut microbes.Microbial Contributions to Brain FunctionGut microbiota contributes significantly to brain function by producing neuroactive compounds. These include neuroactive compounds that influence neurotransmitters such as...
Encephalitis ll: Pathophysiology01:26

Encephalitis ll: Pathophysiology

Encephalitis is inflammation of the brain parenchyma caused by direct viral invasion or immune-mediated mechanisms triggered by infections or tumors. Both processes lead to neuronal injury, disrupted neurotransmission, and diverse neurological symptoms, often with overlapping clinical and pathological features.Autoimmune EncephalitisIn autoimmune encephalitis, antibodies target neuronal antigens on cell surfaces, synapses, or within neurons. A key example is anti-NMDAR encephalitis, which can...
Secondary Spinal Cord Injury llI: Pathophysiology01:25

Secondary Spinal Cord Injury llI: Pathophysiology

Early Ischemia and Ionic ImbalanceWithin minutes of spinal cord injury, a secondary cascade begins, progressing over hours to weeks. Vascular damage reduces blood flow, causing ischemia and mitochondrial dysfunction. ATP depletion leads to ion pump failure, membrane depolarization, sodium influx, potassium efflux, and water accumulation, resulting in cellular swelling. Increased intracellular calcium further disrupts mitochondria and accelerates cellular injury.Excitotoxicity and Neuronal...