Activity-dependent regulation of the BAX/BCL-2 pathway protects cortical neurons from apoptotic death during early

Jonas Schroer1, Davide Warm1, Federico De Rosa1

  • 1Institute of Physiology, University Medical Center of the Johannes Gutenberg University, Duesbergweg 6, 55128, Mainz, Germany.

Insights

Electrical activity in developing neurons regulates apoptosis by modulating the BAX/BCL-2 pathway. High activity promotes neuronal survival by decreasing the BAX/BCL-2 ratio, offering neuroprotection.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Cell Biology

Background:

  • Homeostatic removal of cortical neurons is vital during early brain development.
  • The BAX/BCL-2 pathway is a key regulator of apoptosis.
  • Electrical activity is a known pro-survival factor in neurons, but its precise mechanism is unclear.

Purpose of the Study:

  • To investigate the role of the BAX/BCL-2 pathway in activity-dependent neuronal survival during cortical development.
  • To determine how electrical activity regulates neuronal apoptosis.

Main Methods:

  • Studied the BAX/BCL-2 pathway and caspase activity in mouse cerebral cortex during early development.
  • Utilized cultured neurons with pharmacological manipulation of electrical activity.
  • Assessed neuronal survival in response to altered activity and caspase activation.

Main Results:

  • Developmental cell death peaks in the first postnatal week, coinciding with high BAX/BCL-2 ratios.
  • Pharmacological blockade of activity increases BAX, while elevated activity increases BCL-2.
  • Active neurons show lower BAX and higher BCL-2 expression, with increased tolerance to caspase activity.

Conclusions:

  • High electrical activity modulates BAX/BCL-2 expression, enhancing neuronal survival during development.
  • Activity-induced neuroprotection is linked to a downregulated BAX/BCL-2 ratio, not reduced caspase activity.
  • Neuronal activity may promote non-apoptotic functions of caspase-3.

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