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March 1, 2004Current Molecular Medicine274 citations

Mitochondrial Dysfunction and Glutamate Excitotoxicity Studied in Primary Neuronal Cultures

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DNDavid G. Nicholls

Key Points

  • To synthesize evidence on how mitochondrial bioenergetics, calcium homeostasis, and oxidative stress drive glutamate-induced excitotoxic cell death in primary neuronal culture models.
  • Synthesized literature on primary dissociated neuronal culture models used over a 15-year period to study excitotoxic neurodegeneration.
  • Analyzed cellular pathways connecting NMDA receptor overactivation, calcium handling, ATP production, and reactive oxygen species generation and detoxification.
  • Identified mitochondria as the central hub regulating calcium homeostasis, ATP generation, and reactive oxygen species balance under excitotoxic conditions.
  • Showed that excessive NMDA receptor activation compromises mitochondrial function, reducing neuronal resilience to metabolic stress and activating downstream pathways of excitotoxic cell death.

Abstract

Primary dissociated neuronal cultures have been intensively exploited for the past 15 years as model systems to investigate excitotoxic neuronal degeneration. Even this simplified system contains a complex web of interactions between calcium homeostasis, ATP production and the generation and detoxification of reactive oxygen species. There is increasing realization that the mitochondrion occupies the center stage in these processes. This review covers the normal bioenergetics of the cultured neuron, the ways in which mitochondrial dysfunction impacts upon the ability of the neuron to withstand excitotoxic stress, the nature of the stresses imposed by NMDA receptor activation and possible molecular mechanisms of excitotoxic cell death.

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Cite This Study

David G. Nicholls (2004) studied this question.

synapsesocial.com/papers/69d80a325c3030ff03d18cadhttps://doi.org/10.2174/1566524043479239
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