Regulation of GAP43/calmodulin complex formation via calcineurin-dependent mechanism in differentiated PC12 cells

Tomasz Boczek1, Bozena Ferenc, Malwina Lisek

  • 1Department of Molecular Neurochemistry, Medical University of Lodz, 6/8 Mazowiecka Str., 92-215, Lodz, Poland, tomasz.boczek@umed.lodz.pl.

Insights

Age-related decline in plasma membrane calcium pump (PMCA) impacts neurodegenerative diseases. Our study reveals how PMCA2 and PMCA3 regulate calcium signaling, potentially protecting neurons from overload and insults.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Biochemistry

Background:

  • Age-related decline in plasma membrane calcium pump (PMCA) is linked to neurodegenerative diseases.
  • PMCA2 and PMCA3 isoforms are crucial for rapid calcium removal in excitable cells.
  • Previous work showed PMCA suppression affects cell differentiation, apoptosis, and calcium channel activity.

Purpose of the Study:

  • To elucidate a novel mechanism by which PMCA2 and PMCA3 regulate intracellular calcium homeostasis in differentiated PC12 cells.
  • To investigate the role of PMCA isoforms in the regulation of GAP43 phosphorylation and calmodulin complex formation.
  • To explore the interplay between PMCA, calcineurin, and calcium channels in neuronal function.

Main Methods:

  • Utilized differentiated PC12 cells with suppressed PMCA2 or PMCA3 expression.
  • Analyzed the ratio of phosphorylated GAP43 (pGAP43) to GAP43.
  • Assessed the formation of GAP43/calmodulin (CaM) complexes.
  • Investigated calcineurin (CaN) activity and its interaction with PMCA isoforms.

Main Results:

  • Down-regulation of PMCA2 or PMCA3 altered GAP43/pGAP43 levels.
  • Disruption of PMCA/calcineurin interaction led to increased CaN activity and GAP43 hypophosphorylation.
  • Enhanced GAP43/CaM complex formation was observed in PMCA-deficient cells, potentially limiting free CaM.
  • A negative feedback loop involving CaM, GAP43, and CaN was suggested to regulate P/Q and L-type calcium channels.

Conclusions:

  • PMCA2 and PMCA3 actively regulate local calcineurin activity and downstream processes in differentiated PC12 cells.
  • The identified PMCA- and CaN-dependent mechanism may protect against age-related calcium overload in neurons.
  • This pathway offers a potential strategy to reduce neuronal vulnerability to neurodegenerative insults.

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