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Published on: September 5, 2015
Electrophysiological mechanisms of delayed excitotoxicity: positive feedback loop between NMDA receptor current and
C M Norris1, E M Blalock, O Thibault
1Department of Molecular and Biomedical Pharmacology, University of Kentucky, MS-305, UKMC, Lexington, KY 40536-0298, USA.
Abstract:
Delayed excitotoxic neuronal death after insult from exposure to high glutamate concentrations appears important in several CNS disorders. Although delayed excitotoxicity is known to depend on NMDA receptor (NMDAR) activity and Ca(2+) elevation, the electrophysiological mechanisms underlying postinsult persistence of NMDAR activation are not well understood. Membrane depolarization and nonspecific cationic current in the postinsult period were reported previously, but were not sensitive to NMDAR antagonists. Here, we analyzed mechanisms of the postinsult period using parallel current- and voltage-clamp recording and Ca(2+) imaging in primary hippocampal cultured neurons. We also compared more vulnerable older neurons [about 22 days in vitro (DIV)] to more resistant younger (about 15 DIV) neurons, to identify processes selectively associated with cell death in older neurons. During exposure to a modest glutamate insult (20 microM, 5 min), similar degrees of Ca(2+) elevation, membrane depolarization, action potential block, and increased inward current occurred in younger and older neurons. However, after glutamate withdrawal, these processes recovered rapidly in younger but not in older neurons. The latter also exhibited a concurrent postinsult increase in spontaneous miniature excitatory postsynaptic currents, reflecting glutamate release. Importantly, postinsult NMDAR antagonist administration reversed all of these persisting responses in older cells. Conversely, repolarization of the membrane by voltage clamp immediately after glutamate exposure reversed the NMDAR-dependent Ca(2+) elevation. Together, these data suggest that, in vulnerable neurons, excitotoxic insult induces a sustained positive feedback loop between NMDAR-dependent current and depolarization-mediated glutamate release, which persists after withdrawal of exogenous glutamate and drives Ca(2+) elevation and delayed excitotoxicity.
Insights
Delayed excitotoxicity, a key factor in CNS disorders, involves persistent NMDA receptor (NMDAR) activation. This study reveals a positive feedback loop between NMDAR current and glutamate release drives neuronal death in vulnerable neurons.
Area of Science:
- Neuroscience
- Cell Biology
- Neuropharmacology
Background:
- Delayed excitotoxic neuronal death is crucial in CNS disorders.
- Mechanisms of persistent NMDA receptor (NMDAR) activation post-insult are unclear.
- Previous studies noted depolarization and currents insensitive to NMDAR antagonists.
Purpose of the Study:
- To elucidate the electrophysiological mechanisms of persistent NMDAR activation after glutamate insult.
- To compare vulnerable older neurons with resistant younger neurons to identify cell death pathways.
- To investigate the role of a positive feedback loop in delayed excitotoxicity.
Main Methods:
- Primary hippocampal neurons (15 and 22 DIV) were used.
- Parallel current- and voltage-clamp recordings were performed.
- Calcium imaging and NMDAR antagonist administration were employed.
Main Results:
- Older, vulnerable neurons showed persistent depolarization and NMDAR activity post-insult, unlike younger neurons.
- A post-insult increase in spontaneous miniature excitatory postsynaptic currents indicated glutamate release.
- NMDAR antagonist administration reversed these persistent responses in older neurons.
Conclusions:
- Vulnerable neurons develop a sustained positive feedback loop between NMDAR current and depolarization-driven glutamate release after insult.
- This loop persists after glutamate withdrawal, driving calcium elevation and delayed excitotoxicity.
- Targeting this feedback loop may offer therapeutic strategies for CNS disorders.
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