Selective inhibition of plasma membrane calcium ATPase 4 improves angiogenesis and vascular reperfusion

Sathishkumar Kurusamy1, Dolores López-Maderuelo2, Robert Little3

  • 1Cardiovascular Molecular Pharmacology Laboratory, School of Pharmacy, University of Wolverhampton, Wolverhampton, UK.

Insights

Inhibiting Plasma membrane calcium ATPase 4 (PMCA4) with aurintricarboxylic acid (ATA) enhances vascular endothelial growth factor (VEGF)-induced blood vessel formation. This approach shows therapeutic potential for improving reperfusion in ischemic tissues.

Area of Science:

  • Cardiovascular Research
  • Molecular Biology
  • Cell Biology

Background:

  • Ischaemic cardiovascular disease causes significant global morbidity and mortality.
  • VEGF-based therapies for therapeutic angiogenesis have shown limited success in patients due to impaired VEGF activity.
  • Plasma membrane calcium ATPase 4 (PMCA4) negatively regulates VEGF-activated angiogenesis by inhibiting the calcineurin/NFAT pathway.

Purpose of the Study:

  • To investigate the potential of inhibiting PMCA4 with aurintricarboxylic acid (ATA) to enhance VEGF-induced angiogenesis.
  • To explore the mechanism by which ATA affects VEGF signalling and endothelial cell function.

Main Methods:

  • Inhibition of PMCA4 in endothelial cells using ATA.
  • Assessment of calcineurin/NFAT signalling activation.
  • Evaluation of endothelial cell motility and blood vessel formation.
  • Testing ATA toxicity in endothelial cells and zebrafish embryos.
  • In vivo studies in mice with experimentally-induced hindlimb ischaemia.

Main Results:

  • ATA treatment significantly increased VEGF-activated calcineurin/NFAT signalling in endothelial cells.
  • This resulted in enhanced endothelial cell motility and blood vessel formation.
  • ATA disrupted the PMCA4-calcineurin interaction at the cell membrane.
  • Low ATA concentrations (nanomolar) were effective and non-toxic, while high concentrations (micromolar) showed toxicity.
  • ATA treatment improved reperfusion in mice with hindlimb ischaemia.

Conclusions:

  • Targeting PMCA4 with ATA demonstrates therapeutic potential for enhancing VEGF-based pro-angiogenic therapies.
  • Further development of selective ATA analogs or novel PMCA4 inhibitors is needed for clinical application.
Abstract

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