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Published on: June 30, 2023
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.
Aims:
Ischaemic cardiovascular disease is a major cause of morbidity and mortality worldwide. Despite promising results from pre-clinical animal models, VEGF-based strategies for therapeutic angiogenesis have yet to achieve successful reperfusion of ischaemic tissues in patients. Failure to restore efficient VEGF activity in the ischaemic organ remains a major problem in current pro-angiogenic therapeutic approaches. Plasma membrane calcium ATPase 4 (PMCA4) negatively regulates VEGF-activated angiogenesis via inhibition of the calcineurin/NFAT signalling pathway. PMCA4 activity is inhibited by the small molecule aurintricarboxylic acid (ATA). We hypothesize that inhibition of PMCA4 with ATA might enhance VEGF-induced angiogenesis.
Methods And Results:
We show that inhibition of PMCA4 with ATA in endothelial cells triggers a marked increase in VEGF-activated calcineurin/NFAT signalling that translates into a strong increase in endothelial cell motility and blood vessel formation. ATA enhances VEGF-induced calcineurin signalling by disrupting the interaction between PMCA4 and calcineurin at the endothelial-cell membrane. ATA concentrations at the nanomolar range, that efficiently inhibit PMCA4, had no deleterious effect on endothelial-cell viability or zebrafish embryonic development. However, high ATA concentrations at the micromolar level impaired endothelial cell viability and tubular morphogenesis, and were associated with toxicity in zebrafish embryos. In mice undergoing experimentally-induced hindlimb ischaemia, ATA treatment significantly increased the reperfusion of post-ischaemic limbs.
Conclusions:
Our study provides evidence for the therapeutic potential of targeting PMCA4 to improve VEGF-based pro-angiogenic interventions. This goal will require the development of refined, highly selective versions of ATA, or the identification of novel PMCA4 inhibitors.
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