The hypertensive effect of sorafenib is abolished by sildenafil

Hubert Dabiré1, Fatou Dramé1, Nelly Cita1

  • 1U955 - IMRB, Inserm, UPEC, École Nationale Vétérinaire d'Alfort, Créteil, France.

Abstract

Insights

Sorafenib, a multikinase inhibitor, causes vasodilation in vitro but induces hypertension with chronic use. Sildenafil, a PDE-5 inhibitor, effectively counteracted this sorafenib-induced hypertension in rats.

Area of Science:

  • Pharmacology
  • Cardiovascular Research
  • Oncology Therapeutics

Background:

  • Tyrosine kinase inhibitors (TKIs) are known to cause hypertension, but their direct vasomotor effects are poorly understood.
  • Sorafenib, a multikinase inhibitor used for liver and kidney cancers, has uncharacterized vasomotor properties.
  • This study investigates sorafenib's vasomotor effects and explores sildenafil as a potential treatment for TKI-induced hypertension.

Purpose of the Study:

  • To elucidate the intrinsic vasomotor effects of sorafenib.
  • To determine if sildenafil can mitigate sorafenib-induced hypertension.

Main Methods:

  • Sorafenib concentration-response curves were generated in rat aortas (intact or denuded endothelium) with various inhibitors.
  • Acute intravenous administration of sorafenib was assessed for its effects on blood pressure in rats.
  • Rats received chronic sorafenib treatment (4 weeks) with or without sildenafil.

Main Results:

  • Sorafenib induced concentration-dependent relaxation in endothelium-intact aortas, mediated by prostaglandin and nitric oxide (NO) pathways.
  • Endothelium-independent relaxation involved Na/K-ATPase and soluble guanylate cyclase activation.
  • Chronic sorafenib administration in rats led to increased systolic blood pressure (SBP), which was abolished by co-administration of sildenafil.

Conclusions:

  • Sorafenib exhibits in vitro vasorelaxation, primarily via soluble guanylate cyclase activation.
  • Chronic sorafenib treatment induces hypertension in rats.
  • Sildenafil effectively counteracts TKI-induced hypertension, suggesting the cGMP pathway as a therapeutic target.

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