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.

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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