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Vasoactivity of rucaparib, a PARP-1 inhibitor, is a complex process that involves myosin light chain kinase, P2
Cian M McCrudden1, Martin G O'Rourke1, Kim E Cherry1
1School of Pharmacy, Queen's University Belfast, Belfast, United Kingdom.
Abstract:
Therapeutic inhibition of poly(ADP-ribose) polymerase (PARP), as monotherapy or to supplement the potencies of other agents, is a promising strategy in cancer treatment. We previously reported that the first PARP inhibitor to enter clinical trial, rucaparib (AG014699), induced vasodilation in vivo in xenografts, potentiating response to temozolomide. We now report that rucaparib inhibits the activity of the muscle contraction mediator myosin light chain kinase (MLCK) 10-fold more potently than its commercially available inhibitor ML-9. Moreover, rucaparib produces additive relaxation above the maximal degree achievable with ML-9, suggesting that MLCK inhibition is not solely responsible for dilation. Inhibition of nitric oxide synthesis using L-NMMA also failed to impact rucaparib's activity. Rucaparib contains the nicotinamide pharmacophore, suggesting it may inhibit other NAD+-dependent processes. NAD+ exerts P2 purinergic receptor-dependent inhibition of smooth muscle contraction. Indiscriminate blockade of the P2 purinergic receptors with suramin abrogated rucaparib-induced vasodilation in rat arterial tissue without affecting ML-9-evoked dilation, although the specific receptor subtypes responsible have not been unequivocally identified. Furthermore, dorsal window chamber and real time tumor vessel perfusion analyses in PARP-1-/- mice indicate a potential role for PARP in dilation of tumor-recruited vessels. Finally, rucaparib provoked relaxation in 70% of patient-derived tumor-associated vessels. These data provide tantalising evidence of the complexity of the mechanism underlying rucaparib-mediated vasodilation.
Insights
Rucaparib, a PARP inhibitor, causes vasodilation by affecting P2 purinergic receptors, not just MLCK. This complex mechanism may enhance cancer treatment by dilating tumor vessels.
Area of Science:
- Oncology
- Pharmacology
- Vascular Biology
Background:
- Poly(ADP-ribose) polymerase (PARP) inhibitors are a promising cancer therapy.
- Rucaparib, a PARP inhibitor, previously showed vasodilation in vivo.
- The precise mechanism of rucaparib-induced vasodilation requires further investigation.
Purpose of the Study:
- To elucidate the mechanism of rucaparib-induced vasodilation.
- To compare rucaparib's effects with known vasodilators and inhibitors.
- To investigate the role of PARP and purinergic receptors in rucaparib's vascular effects.
Main Methods:
- In vitro enzyme inhibition assays comparing rucaparib and ML-9 on myosin light chain kinase (MLCK).
- Assessment of rucaparib's vasodilation in rat arterial tissue with and without nitric oxide synthase inhibition (L-NMMA) and P2 purinergic receptor blockade (suramin).
- In vivo studies in PARP-1-/- mice using dorsal window chambers and tumor vessel perfusion analysis, alongside patient-derived tumor-associated vessel studies.
Main Results:
- Rucaparib is a more potent inhibitor of MLCK than ML-9.
- Rucaparib-induced vasodilation is partially abrogated by P2 purinergic receptor blockade but not by nitric oxide inhibition.
- PARP appears to play a role in tumor-recruited vessel dilation, with rucaparib inducing relaxation in 70% of patient-derived tumor vessels.
Conclusions:
- Rucaparib-induced vasodilation involves P2 purinergic receptors, suggesting a complex mechanism beyond simple MLCK inhibition.
- PARP may regulate the dilation of tumor-associated vasculature.
- These findings offer novel insights into rucaparib's mechanism of action and potential for enhancing cancer therapy.
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