Thrombus formation on ruptured atherosclerotic plaques and rethrombosis on evolving thrombi

L Badimon1, J H Chesebro, J J Badimon

  • 1Cardiovascular Biology Research, Massachusetts General Hospital, Harvard Medical School, Boston 02114.

Circulation
|December 1, 1992
PubMed

Insights

Plaque rupture in coronary artery disease leads to thrombus formation. Local and systemic factors influence this process, and residual thrombus can cause reocclusion, even with anticoagulation.

Area of Science:

  • Cardiovascular Research
  • Thrombosis and Hemostasis
  • Atherosclerosis Pathogenesis

Background:

  • Unstable angina and myocardial infarction often involve eccentric coronary stenoses with irregular borders, indicating ruptured atherosclerotic plaques and thrombosis.
  • Angioscopy and autopsy confirm plaque rupture and thrombus formation as key events in acute coronary syndromes.

Purpose of the Study:

  • To investigate the local and systemic factors influencing thrombogenicity following atherosclerotic plaque rupture.
  • To understand the role of residual thrombus in reocclusion and the efficacy of anticoagulation.

Main Methods:

  • Simulated plaque rupture and thrombosis using an ex vivo perfusion chamber.
  • Studied thrombotic processes in an in vivo swine model.
  • Utilized recombinant hirudin to investigate the role of thrombin in rethrombosis.

Main Results:

  • Plaque rupture exposes substrates, leading to thrombus formation proportional to damage.
  • High shear rates in stenotic lesions enhance platelet deposition and thrombus growth.
  • Systemic factors like epinephrine, cholesterol, and impaired fibrinolysis can increase thrombogenicity.
  • Residual thrombus significantly contributes to reocclusion, even in heparinized blood.
  • Thrombin bound to fibrin within the original thrombus plays a role in rethrombosis.

Conclusions:

  • Local vessel wall factors (exposed substrate, fluid dynamics) and systemic factors (hormones, lipids, fibrinolysis) critically modulate thrombogenicity after plaque rupture.
  • Residual thrombus is a potent thrombogenic surface, contributing to reocclusion.
  • Targeting thrombin bound to fibrin may be a strategy to prevent reocclusion.

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