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Mitochondria: the hidden engines of traumatic brain injury-driven neurodegeneration: the hidden engines of traumatic brain injury-driven neurodegeneration

  • Olusola A Olatona
  • , Sydney P Sterben
  • , Sahan B S Kansakar
  • , Aviva J Symes
  • , Volha Liaudanskaya

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

Mitochondria play a critical role in brain energy metabolism, cellular signaling, and homeostasis, making their dysfunction a key driver of secondary injury progression in traumatic brain injury (TBI). This review explores the relationship between mitochondrial bioenergetics, metabolism, oxidative stress, and neuroinflammation in the post-TBI brain. Mitochondrial dysfunction disrupts adenosine triphosphate (ATP) production, exacerbates calcium dysregulation, and generates reactive oxygen species, triggering a cascade of neuronal damage and neurodegenerative processes. Moreover, damaged mitochondria release damage-associated molecular patterns (DAMPs) such as mitochondrial DNA (mtDNA), Cytochrome C, and ATP, triggering inflammatory pathways that amplify tissue injury. We discuss the metabolic shifts that occur post-TBI, including the transition from oxidative phosphorylation to glycolysis and the consequences of metabolic inflexibility. Potential therapeutic interventions targeting mitochondrial dynamics, bioenergetic support, and inflammation modulation are explored, highlighting emerging strategies such as mitochondrial-targeted antioxidants, metabolic substrate supplementation, and pharmacological regulators of mitochondrial permeability transition pores. Understanding these mechanisms is crucial for developing novel therapeutic approaches to mitigate neurodegeneration and enhance recovery following brain trauma.
Original languageAmerican English
Pages (from-to)1570596
JournalFrontiers in Cellular Neuroscience
Volume19
DOIs
StatePublished - 2025

Keywords

  • bioenergetics
  • brain injury
  • metabolism
  • mitochondria
  • neurodegeneration

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