Reduced calcium-dependent mitochondrial damage underlies the reduced vulnerability of excitotoxicity-tolerant hippocampal neurons

J Neurochem. 2008 Mar;104(6):1686-99. doi: 10.1111/j.1471-4159.2007.05080.x. Epub 2007 Nov 23.

Abstract

In central neurons, over-stimulation of NMDA receptors leads to excessive mitochondrial calcium accumulation and damage, which is a critical step in excitotoxic death. This raises the possibility that low susceptibility to calcium overload-induced mitochondrial damage might characterize excitotoxicity-resistant neurons. In this study, we have exploited two complementary models of preconditioning-induced excitotoxicity resistance to demonstrate reduced calcium-dependent mitochondrial damage in NMDA-tolerant hippocampal neurons. We have further identified adaptations in mitochondrial calcium handling that account for enhanced mitochondrial integrity. In both models, enhanced tolerance was associated with improved preservation of mitochondrial membrane potential and structure. In the first model, which exhibited modest neuroprotection, mitochondria-dependent calcium deregulation was delayed, even though cytosolic and mitochondrial calcium loads were quantitatively unchanged, indicating that enhanced mitochondrial calcium capacity accounts for reduced injury. In contrast, the second model, which exhibited strong neuroprotection, displayed further delayed calcium deregulation and reduced mitochondrial damage because downregulation of NMDA receptor surface expression depressed calcium loading. Reducing calcium entry also modified the chemical composition of the calcium-buffering precipitates that form in calcium-loaded mitochondria. It thus appears that reduced mitochondrial calcium loading is a major factor underlying the robust neuroprotection seen in highly tolerant cells.

Publication types

  • Research Support, N.I.H., Intramural

MeSH terms

  • Adaptation, Physiological / physiology
  • Animals
  • Calcium / metabolism*
  • Calcium Phosphates / metabolism
  • Cell Survival / physiology
  • Cells, Cultured
  • Cytosol / metabolism
  • Down-Regulation / physiology
  • Excitatory Amino Acid Agonists / toxicity
  • Female
  • Hippocampus / cytology*
  • Ischemic Preconditioning
  • Mitochondria / metabolism*
  • N-Methylaspartate / toxicity
  • Neurons / cytology
  • Neurons / drug effects
  • Neurons / metabolism*
  • Neurotoxins / pharmacology*
  • Pregnancy
  • Rats
  • Receptors, N-Methyl-D-Aspartate / metabolism

Substances

  • Calcium Phosphates
  • Excitatory Amino Acid Agonists
  • Neurotoxins
  • Receptors, N-Methyl-D-Aspartate
  • N-Methylaspartate
  • calcium phosphate
  • Calcium