Oxidative metabolism, apoptosis and perinatal brain injury

D L Taylor1, A D Edwards, H Mehmet

  • 1Division of Paediatrics, Obstetrics and Gynaecology, Imperial College School of Medicine, Hammersmith Hospital, London, UK.

Insights

Perinatal hypoxic-ischaemic injury (HII) disrupts brain energy metabolism, leading to cell death and neurodevelopmental issues. Understanding these mechanisms, including apoptosis and mitochondrial dysfunction, is key to addressing HII

Area of Science:

  • Neuroscience
  • Biochemistry
  • Pathology

Background:

  • Perinatal hypoxic-ischaemic injury (HII) is a major cause of infant neurodevelopmental impairment.
  • HII leads to delayed disruption of cerebral energy metabolism, correlating with impairment severity.

Purpose of the Study:

  • To review pathological mechanisms of cell death in HII, focusing on oxidative metabolism disruption.
  • To explore molecular mechanisms of cerebral energy failure and cell death in HII, emphasizing apoptosis and mitochondria.

Main Methods:

  • Review of studies using 31P magnetic resonance spectroscopy in infants and animals.
  • Analysis of biochemical features of HII, including ATP loss and ionic imbalances.
  • Examination of cellular defense systems, oxidative stress, and reactive oxygen species.

Main Results:

  • HII causes ATP loss, ionic imbalances (Na+, Ca2+, K+), and oxidative stress.
  • Damage extends to lipids, proteins, and DNA, leading to cell death via apoptosis and necrosis.
  • Mitochondrial injury and ATP availability influence cell death pathways.

Conclusions:

  • Cell death in HII involves both apoptosis and necrosis, influenced by developmental stage, cell type, and mitochondrial status.
  • Disruption of oxidative metabolism is a key pathological mechanism in HII-induced brain injury.
  • Further research into apoptosis and mitochondria is crucial for understanding and treating HII.

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