7-Hydroxycoumarin Induces Vasorelaxation in Animals with Essential Hypertension: Focus on Potassium Channels and Intracellular Ca2+ Mobilization

Molecules. 2022 Oct 28;27(21):7324. doi: 10.3390/molecules27217324.

Abstract

Cardiovascular diseases (CVD) are the deadliest noncommunicable disease worldwide. Hypertension is the most prevalent risk factor for the development of CVD. Although there is a wide range of antihypertensive drugs, there still remains a lack of blood pressure control options for hypertensive patients. Additionally, natural products remain crucial to the design of new drugs. The natural product 7-hydroxycoumarin (7-HC) exhibits pharmacological properties linked to antihypertensive mechanisms of action. This study aimed to evaluate the vascular effects of 7-HC in an experimental model of essential hypertension. The isometric tension measurements assessed the relaxant effect induced by 7-HC (0.001 μM-300 μM) in superior mesenteric arteries isolated from hypertensive rats (SHR, 200-300 g). Our results suggest that the relaxant effect induced by 7-HC rely on K+-channels (KATP, BKCa, and, to a lesser extent, Kv) activation and also on Ca2+ influx from sarcolemma and sarcoplasmic reticulum mobilization (inositol 1,4,5-triphosphate (IP3) and ryanodine receptors). Moreover, 7-HC diminishes the mesenteric artery's responsiveness to α1-adrenergic agonist challenge and improves the actions of the muscarinic agonist and NO donor. The present work demonstrated that the relaxant mechanism of 7-HC in SHR involves endothelium-independent vasorelaxant factors. Additionally, 7-HC reduced vasoconstriction of the sympathetic agonist while improving vascular endothelium-dependent and independent relaxation.

Keywords: 7-hydroxycoumarin; hypertensive rats; isometric records; superior mesenteric artery superior; umbelliferone; vasorelaxation.

MeSH terms

  • Animals
  • Antihypertensive Agents / pharmacology
  • Endothelium, Vascular / metabolism
  • Essential Hypertension
  • Hypertension*
  • Potassium Channels / metabolism
  • Rats
  • Rats, Inbred SHR
  • Umbelliferones / pharmacology
  • Vasodilation*
  • Vasodilator Agents / pharmacology

Substances

  • Potassium Channels
  • Vasodilator Agents
  • Antihypertensive Agents
  • Umbelliferones