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Ionized Intracellular Calcium Concentration Predicts Excitotoxic Neuronal Death: Observations with Low-affinity Fluorescent Calcium Indicators

Overview
Journal J Neurosci
Specialty Neurology
Date 1997 Sep 1
PMID 9254679
Citations 49
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Abstract

Cytosolic calcium ([Ca2+]i) is an important mediator of neuronal signal transduction, participating in diverse biochemical reactions that elicit changes in synaptic efficacy, metabolic rate, and gene transcription. Excessive [Ca2+]i also has been implicated as a cause of acute neuronal injury, although measurement of [Ca2+]i in living neurons by fluorescent calcium indicators has not consistently demonstrated a correlation between [Ca2+]i and the likelihood of neuronal death after a variety of potentially lethal insults. Using fluorescence videomicroscopy and microinjected calcium indicators, we measured [Ca2+]i in cultured cortical neurons during intense activation with either NMDA (300 microM) or AMPA (450 microM). At these concentrations NMDA killed >80% of the cultured neurons by the next day, whereas neuronal death from AMPA was <20%. Using the conventional calcium indicator, fura-2/AM, we estimated [Ca2+]i elevations to be approximately 300-400 nM during exposure to either glutamate agonist. In contrast, indicators with lower affinity for calcium, benzothiazole coumarin (BTC), and fura-2/dextran reported [Ca2+]i levels >5 microM during lethal NMDA exposure, but [Ca2+]i levels were <1.5 microM during nonlethal activation of AMPA receptors or voltage-gated calcium channels. Fura-2 reported [Ca2+]i responses during brief exposure to glutamate, NMDA, AMPA, kainate, and elevated extracellular K+ between 0.5 and 1 microM. With the use of BTC, only NMDA and glutamate exposures resulted in micromolar [Ca2+]i levels. Neurotoxic glutamate receptor activation is associated with sustained, micromolar [Ca2+]i elevation. The widely used calcium indicator fura-2 selectively underestimates [Ca2+]i, depending on the route of entry, even at levels that appear to be within its range of detection.

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References
1.
Koh J, Goldberg M, Hartley D, Choi D . Non-NMDA receptor-mediated neurotoxicity in cortical culture. J Neurosci. 1990; 10(2):693-705. PMC: 6570171. View

2.
Dubinsky J, Rothman S . Intracellular calcium concentrations during "chemical hypoxia" and excitotoxic neuronal injury. J Neurosci. 1991; 11(8):2545-51. PMC: 6575510. View

3.
Connor J, Tseng H, Hockberger P . Depolarization- and transmitter-induced changes in intracellular Ca2+ of rat cerebellar granule cells in explant cultures. J Neurosci. 1987; 7(5):1384-400. PMC: 6568833. View

4.
Tymianski M, Charlton M, Carlen P, Tator C . Source specificity of early calcium neurotoxicity in cultured embryonic spinal neurons. J Neurosci. 1993; 13(5):2085-104. PMC: 6576557. View

5.
Lu Y, Yin H, Chiang J, Weiss J . Ca(2+)-permeable AMPA/kainate and NMDA channels: high rate of Ca2+ influx underlies potent induction of injury. J Neurosci. 1996; 16(17):5457-65. PMC: 6578887. View