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Updated: May 13, 2026

Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
Mitochondrial Ca2+ uptake from plasma membrane Cav3.2 protein channels contributes to ischemic toxicity in PC12 cells
Yves Gouriou1, Philippe Bijlenga, Nicolas Demaurex
1Department of Cell Physiology and Metabolism, University of Geneva, Geneva CH-1211, Switzerland.
Abstract:
T-type Ca(2+) channel inhibitors protect hippocampal CA1 neurons from delayed death after global ischemia in rats, suggesting that Cav3.1, Cav3.2, or Cav3.3 channels generate cytotoxic Ca(2+) elevations during anoxia. To test this hypothesis, we measured the Ca(2+) concentration changes evoked by oxygen and glucose deprivation (OGD) in the cytosol and in the mitochondria of PC12 cells. OGD evoked long-lasting cytosolic Ca(2+) elevations that were reduced by Cav3.2 inhibition (50 μm Ni(2+)) and Cav3.1/Cav3.2 silencing and potentiated by Cav3.2 overexpression. The kinetics of the sustained cytosolic Ca(2+) elevations occurring during OGD directly correlated to the extent of cell death measured 20 h after reoxygenation, which was decreased by Ni(2+) and Cav3.1/Cav3.2 silencing and increased by Cav3.2 overexpression. Ni(2+) and Cav3.1/Cav3.2 silencing delayed the decline of cellular ATP during OGD, consistent with a reduction in the Ca(2+) load actively extruded by plasma membrane Ca(2+) pumps. The cytosolic Ca(2+) elevations were paralleled by mitochondrial Ca(2+) elevations that were also increased by Cav3.2 overexpression and decreased by Ni(2+) but not by Cav3.1/Cav3.2 silencing. Overexpression and silencing of the mitochondrial Ca(2+) uniporter, the major mitochondrial Ca(2+) uptake protein, revealed that the cytotoxicity was correlated to the amplitude of the mitochondrial, rather than the cytosolic, Ca(2+) elevations. Selective activation of T-type Ca(2+) channels evoked both cytosolic and mitochondrial Ca(2+) elevations, but only the mitochondrial responses were reduced by Cav3.1/Cav3.2 silencing. We conclude that the opening of Cav3.2 channels during ischemia contribute to the entry of Ca(2+) ions that are transmitted to mitochondria, resulting in a deleterious mitochondrial Ca(2+) overload.
Insights
T-type calcium channels, specifically Cav3.2, contribute to cell death during oxygen-glucose deprivation by causing mitochondrial calcium overload. Inhibiting these channels protects neurons from ischemic injury.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Global ischemia induces delayed neuronal death, particularly in hippocampal CA1 neurons.
- T-type calcium channels (Cav3.1, Cav3.2, Cav3.3) are implicated in cytotoxic calcium elevations during anoxia.
Purpose of the Study:
- To investigate the role of T-type calcium channels in mediating cytotoxic calcium elevations during oxygen and glucose deprivation (OGD).
- To determine whether Cav3.2 channels contribute to mitochondrial calcium overload and subsequent cell death.
Main Methods:
- Measured cytosolic and mitochondrial calcium changes in PC12 cells during OGD.
- Utilized Cav3.2 inhibition (Ni2+), Cav3.1/Cav3.2 silencing, and Cav3.2 overexpression.
- Assessed cell death and cellular ATP levels post-reoxygenation.
- Manipulated the mitochondrial calcium uniporter to evaluate its role.
Main Results:
- OGD induced sustained cytosolic calcium elevations, reduced by Cav3.2 inhibition/silencing and potentiated by Cav3.2 overexpression.
- Cytosolic calcium elevation kinetics correlated with cell death.
- Mitochondrial calcium elevations paralleled cytosolic changes, enhanced by Cav3.2 overexpression and reduced by Ni2+.
- Cytotoxicity correlated with mitochondrial, not cytosolic, calcium elevation amplitude.
Conclusions:
- Cav3.2 channel opening during ischemia facilitates calcium entry into cells.
- This calcium is transmitted to mitochondria, causing deleterious mitochondrial calcium overload.
- Targeting Cav3.2 channels may offer neuroprotection against ischemic injury.
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