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Published on: July 10, 2018
Excitotoxicity in vitro by NR2A- and NR2B-containing NMDA receptors
Jakob von Engelhardt1, Irinel Coserea, Verena Pawlak
1IZN and Department of Clinical Neurobiology, University Hospital of Neurology, INF 364, 69120 Heidelberg, Germany.
Abstract:
Excitotoxicity, exacerbating acute brain damage from brain trauma or stroke, is mediated in part by excessive Ca(2+)-influx from prolonged NMDA receptor activation. However, the contribution to excitotoxicity by each of the main NMDAR subtypes in glutamatergic forebrain neurons, the NR2A- and NR2B-types, has remained enigmatic. Here, we investigated this issue by use of pharmacological and genetic tools in cultured cortical neurons. In wild-type neurons the contribution of the NMDA receptor subtypes to excitotoxicity changed with the age of the cultures. The blockade of NR2B-containing NMDA receptors prevented NMDA-mediated toxicity in young cultures after 14days in vitro (DIV14), but both subtypes triggered excitotoxicity in older (DIV21) cultures. Notably, blocking either of the two subtypes failed to prevent NMDA-elicited cell death, indicating that the remaining subtype triggers cell demise. Intriguingly, a neuroprotective aspect of the NR2A subtype became apparent at submaximal NMDA concentration only at DIV21. The NR2A subtype mediated NMDA toxicity as well as partial protection only if it carried a functional C-terminal domain. Upon deletion of this domain in the NR2A subtype, excitotoxicity was mediated entirely via the NR2B subtype, both at DIV14 and DIV21. Our findings predict that successful therapeutic intervention in stroke based on currently available NMDA receptor subtype-selective blockers is unlikely.
Insights
Excitotoxicity from NMDA receptor activation contributes to brain damage. Both NR2A and NR2B subtypes mediate this, with roles changing with neuronal age, complicating stroke therapies.
Area of Science:
- Neuroscience
- Cell Biology
Background:
- Excitotoxicity, driven by excessive calcium influx via NMDA receptors, worsens acute brain injury from trauma and stroke.
- The specific roles of NR2A and NR2B NMDA receptor subtypes in this process within glutamatergic forebrain neurons remain unclear.
Purpose of the Study:
- To investigate the distinct contributions of NR2A and NR2B NMDA receptor subtypes to excitotoxicity in cultured cortical neurons.
- To determine how these contributions change with neuronal maturation.
Main Methods:
- Utilized pharmacological and genetic tools in cultured cortical neurons.
- Examined NMDA receptor subtype function at different developmental stages (DIV14 and DIV21).
Main Results:
- NR2B blockade prevented excitotoxicity in young (DIV14) neurons, while both NR2A and NR2B contributed in older (DIV21) neurons.
- Blocking either subtype alone was insufficient to prevent cell death in older cultures, indicating redundancy.
- A functional C-terminal domain of NR2A was crucial for its dual role in toxicity and protection at DIV21.
Conclusions:
- The age-dependent roles of NR2A and NR2B NMDA receptor subtypes in excitotoxicity suggest complex mechanisms.
- Current NMDA receptor subtype-selective blockers may be ineffective for stroke treatment due to these dynamic contributions.
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