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Published on: July 10, 2018
Glutamate-induced and NMDA receptor-mediated neurodegeneration entails P2Y1 receptor activation
Ana P Simões1, Carla G Silva1, Joana M Marques1
1CNC-Center for Neuroscience and Cell Biology, University of Coimbra, 3004-504, Coimbra, Portugal.
Abstract:
Despite the characteristic etiologies and phenotypes, different brain disorders rely on common pathogenic events. Glutamate-induced neurotoxicity is a pathogenic event shared by different brain disorders. Another event occurring in different brain pathological conditions is the increase of the extracellular ATP levels, which is now recognized as a danger and harmful signal in the brain, as heralded by the ability of P2 receptors (P2Rs) to affect a wide range of brain disorders. Yet, how ATP and P2R contribute to neurodegeneration remains poorly defined. For that purpose, we now examined the contribution of extracellular ATP and P2Rs to glutamate-induced neurodegeneration. We found both in vitro and in vivo that ATP/ADP through the activation of P2Y1R contributes to glutamate-induced neuronal death in the rat hippocampus. We found in cultured rat hippocampal neurons that the exposure to glutamate (100 µM) for 30 min triggers a sustained increase of extracellular ATP levels, which contributes to NMDA receptor (NMDAR)-mediated hippocampal neuronal death through the activation of P2Y1R. We also determined that P2Y1R is involved in excitotoxicity in vivo as the blockade of P2Y1R significantly attenuated rat hippocampal neuronal death upon the systemic administration of kainic acid or upon the intrahippocampal injection of quinolinic acid. This contribution of P2Y1R fades with increasing intensity of excitotoxic conditions, which indicates that P2Y1R is not contributing directly to neurodegeneration, rather behaving as a catalyst decreasing the threshold from which glutamate becomes neurotoxic. Moreover, we unraveled that such excitotoxicity process began with an early synaptotoxicity that was also prevented/attenuated by the antagonism of P2Y1R, both in vitro and in vivo. This should rely on the observed glutamate-induced calpain-mediated axonal cytoskeleton damage, most likely favored by a P2Y1R-driven increase of NMDAR-mediated Ca2+ entry selectively in axons. This may constitute a degenerative mechanism shared by different brain diseases, particularly relevant at initial pathogenic stages.
Insights
Extracellular ATP and P2Y1 receptors worsen glutamate excitotoxicity in the brain. Blocking P2Y1R reduces neuronal death and synaptotoxicity, suggesting a role in common brain disorder pathogenesis.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Glutamate excitotoxicity and increased extracellular ATP are common pathogenic events in brain disorders.
- The precise role of ATP and P2 receptors (P2Rs) in neurodegeneration is not fully understood.
Purpose of the Study:
- To investigate the contribution of extracellular ATP and P2Rs to glutamate-induced neurodegeneration.
- To elucidate the role of P2Y1 receptor (P2Y1R) in excitotoxicity and synaptotoxicity.
Main Methods:
- In vitro studies using cultured rat hippocampal neurons.
- In vivo studies involving systemic kainic acid administration and intrahippocampal quinolinic acid injection in rats.
- Assessment of neuronal death, extracellular ATP levels, and synaptotoxicity.
Main Results:
- Extracellular ATP, via P2Y1R activation, contributes to glutamate-induced neuronal death in the rat hippocampus.
- P2Y1R blockade attenuated neuronal death in vivo during excitotoxic conditions.
- P2Y1R acts as a catalyst, lowering the threshold for glutamate neurotoxicity and affecting early synaptotoxicity.
Conclusions:
- P2Y1R plays a significant role in glutamate excitotoxicity and synaptotoxicity, potentially as a shared mechanism in various brain diseases.
- Targeting P2Y1R may offer therapeutic strategies for early-stage neurodegenerative conditions.
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