Role of the Menkes copper-transporting ATPase in NMDA receptor-mediated neuronal toxicity
Open Access
- 3 October 2006
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (40), 14919-14924
- https://doi.org/10.1073/pnas.0605390103
Abstract
Menkes disease, a fatal neurodegenerative disorder resulting in seizures, hypotonia, and failure to thrive, is due to inherited loss-of-function mutations in the gene encoding a copper-transporting ATPase (Atp7a) on the X chromosome. Although affected patients exhibit signs and symptoms of copper deficiency, the mechanisms resulting in neurologic disease remain unknown. We recently discovered that Atp7a is required for the production of an NMDA receptor-dependent releasable copper pool within hippocampal neurons, a finding that suggests a role for copper in activity-dependent modulation of synaptic activity. In support of this hypothesis, we now demonstrate that copper chelation exacerbates NMDA-mediated excitotoxic cell death in primary hippocampal neurons, whereas the addition of copper is specifically protective and results in a significant decrease in cytoplasmic Ca2+ levels after NMDA receptor activation. Consistent with the known neuroprotective effect of NMDA receptor nitrosylation, we show here that this protective effect of copper depends on endogenous nitric oxide production in hippocampal neurons, demonstrating in vivo links among neuroprotection, copper metabolism, and nitrosylation. Atp7a is required for these copper-dependent effects: Hippocampal neurons isolated from newborn Mobr mice reveal a marked sensitivity to endogenous glutamate-mediated NMDA receptor-dependent excitotoxicity in vitro, and mild hypoxic/ischemic insult to these mice in vivo results in significantly increased caspase 3 activation and neuronal injury. Taken together, these data reveal a unique connection between copper homeostasis and NMDA receptor activity that is of broad relevance to the processes of synaptic plasticity and excitotoxic cell death.Keywords
This publication has 40 references indexed in Scilit:
- The Developmentally Regulated Expression of Menkes Protein ATP7A Suggests a Role in Axon Extension and SynaptogenesisDevelopmental Neuroscience, 2005
- Protein S-nitrosylation: purview and parametersNature Reviews Molecular Cell Biology, 2005
- Deaths in Children with Prader-Willi SyndromeHormone Research in Paediatrics, 2005
- Structure of the molybdopterin-bound Cnx1G domain links molybdenum and copper metabolismNature, 2004
- UNRAVELING THE MECHANISMS INVOLVED IN MOTOR NEURON DEGENERATION IN ALSAnnual Review of Neuroscience, 2004
- Mossy fiber Zn2+ spillover modulates heterosynapticN-methyl-d-aspartate receptor activity in hippocampal CA3 circuitsThe Journal of cell biology, 2002
- Excitotoxicity in neonatal hypoxiaMental Retardation and Developmental Disabilities Research Reviews, 2001
- Suppression of long-term potentiation in hippocampal slices by copperHippocampus, 1997
- Copper Modulation of NMDA Responses in Mouse and Rat Cultured Hippocampal NeuronsEuropean Journal of Neuroscience, 1996
- Nerve endings from rat brain tissue release copper upon depolarization. A possible role in regulating neuronal excitabilityNeuroscience Letters, 1989