Oral verapamil inhibits platelet thrombus formation in humans

L L-Lacoste1, J Y Lam, J Hung

  • 1Department of Medicine, Montreal Heart Institute, Quebec, Canada.

Circulation
|February 1, 1994
PubMed

Insights

Verapamil, a calcium antagonist, inhibits platelet aggregation and thrombus formation in patients with coronary disease. This antithrombotic effect may help prevent acute coronary events linked to plaque rupture.

Area of Science:

  • Cardiovascular Medicine
  • Pharmacology
  • Thrombosis Research

Background:

  • Calcium antagonists like verapamil are known vasodilators used for coronary disease.
  • Previous studies suggested verapamil inhibits platelet aggregation in vitro.
  • The in vivo antithrombotic effects of verapamil and its potentiation of aspirin's effects remained unclear.

Purpose of the Study:

  • To investigate the antithrombotic effects of verapamil in patients with stable coronary disease.
  • To determine if verapamil can potentiate the antithrombotic effects of aspirin.

Main Methods:

  • 18 stable coronary patients were studied under three conditions: baseline, verapamil SR (240 mg/d) alone for 7 days, and verapamil SR plus aspirin (325 mg/d) for 7 days.
  • Platelet thrombus formation was assessed using porcine aortic media in a flow chamber at arterial shear rates.
  • Whole blood platelet aggregation was measured in response to thrombin stimulation.

Main Results:

  • Verapamil SR significantly reduced platelet thrombus formation (from 7.0 to 3.1 μm²).
  • The combination of verapamil SR and aspirin further reduced thrombus formation (to 2.6 μm²).
  • Verapamil SR significantly inhibited platelet aggregation ex vivo, an effect not significantly enhanced by aspirin.

Conclusions:

  • Verapamil exhibits beneficial antithrombotic effects in patients with ischemic heart disease by inhibiting platelet aggregation and thrombus formation.
  • These antithrombotic properties of verapamil may contribute to preventing acute coronary ischemic events.
  • The study highlights a potential mechanism for verapamil's benefit beyond vasodilation.
Abstract