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Updated: Jun 22, 2026

Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
Coupling diverse routes of calcium entry to mitochondrial dysfunction and glutamate excitotoxicity
Ruslan I Stanika1, Natalia B Pivovarova, Christine A Brantner
1Laboratory of Neurobiology, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Overactivation of NMDA receptors (NMDARs) is a critical early step in glutamate-evoked excitotoxic injury of CNS neurons. Distinct NMDAR-coupled pathways specified by, for example, receptor location or subunit composition seem to govern glutamate-induced excitotoxic death, but there is much uncertainty concerning the underlying mechanisms of pathway selection. Here we ask whether, and if so how, route-specific vulnerability is coupled to Ca(2+) overload and mitochondrial dysfunction, which is also a known, central component of exitotoxic injury. In cultured hippocampal neurons, overactivation of only extrasynaptic NMDARs resulted in Ca(2+) entry strong enough to promote Ca(2+) overload, which subsequently leads to mitochondrial dysfunction and cell death. Receptor composition per se appears not to be a primary factor for specifying signal coupling, as NR2B inhibition abolished Ca(2+) loading and was protective only in predominantly NR2B-expressing young neurons. In older neurons expressing comparable levels of NR2A- and NR2B-containing NMDARs, amelioration of Ca(2+) overload required the inhibition of extrasynaptic receptors containing both NR2 subunits. Prosurvival synaptic stimuli also evoked Ca(2+) entry through both N2A- and NR2B-containing NMDARs, but, in contrast to excitotoxic activation of extrasynaptic NMDARs, produced only low-amplitude cytoplasmic Ca(2+) spikes and modest, nondamaging mitochondrial Ca(2+) accumulation. The results--showing that the various routes of excitotoxic Ca(2+) entry converge on a common pathway involving Ca(2+) overload-induced mitochondrial dysfunction--reconcile and unify many aspects of the "route-specific" and "calcium load-dependent" views of exitotoxic injury.
Insights
Overactivation of N-methyl-D-aspartate receptors (NMDARs) causes excitotoxic brain injury. Extrasynaptic NMDAR activation leads to calcium overload, mitochondrial dysfunction, and neuronal death, unifying pathway and calcium load theories.
Area of Science:
- Neuroscience
- Cell Biology
- Neurobiology
Background:
- Overactivation of N-methyl-D-aspartate receptors (NMDARs) is a key factor in excitotoxic injury to central nervous system (CNS) neurons.
- The specific pathways NMDARs activate, influenced by location or subunit composition, dictate excitotoxic death, but the mechanisms of pathway selection remain unclear.
Purpose of the Study:
- To investigate if route-specific vulnerability in excitotoxic injury is linked to calcium (Ca2+) overload and mitochondrial dysfunction.
- To elucidate the mechanisms by which different NMDAR activation pathways lead to neuronal death.
Main Methods:
- Cultured hippocampal neurons were used to study NMDAR activation.
- Specific inhibitors for NR2B and extrasynaptic NMDARs were employed.
- Calcium (Ca2+) imaging and assessment of mitochondrial function were performed.
Main Results:
- Overactivation of extrasynaptic NMDARs triggered significant Ca2+ entry, leading to Ca2+ overload, mitochondrial dysfunction, and cell death.
- While NR2B subunit inhibition protected young neurons, older neurons required inhibition of extrasynaptic receptors containing both NR2A and NR2B subunits.
- Prosurvival synaptic stimuli induced Ca2+ entry via both NR2A- and NR2B-containing NMDARs but resulted in non-damaging Ca2+ levels.
Conclusions:
- Different routes of excitotoxic Ca2+ entry converge on a common pathway of Ca2+ overload-induced mitochondrial dysfunction.
- This finding reconciles the 'route-specific' and 'calcium load-dependent' models of excitotoxic injury.
- Extrasynaptic NMDAR activation is a critical determinant of excitotoxic neuronal death via mitochondrial pathways.
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