Platelet Reactivity And Circulating Platelet-Derived Microvesicles Are Differently Affected By P2Y12 Receptor

Bernadeta Chyrchel1, Anna Drożdż2, Dorota Długosz3

  • 1Second Department of Cardiology, Jagiellonian University Medical College, Cracow, Poland.

Insights

Dual antiplatelet therapy with ticagrelor or prasugrel significantly reduces platelet-derived microvesicles (PMVs) compared to clopidogrel. Ticagrelor shows a unique association with reduced total PMVs, suggesting pleiotropic effects beyond antiplatelet activity.

Area of Science:

  • Cardiovascular Medicine
  • Hematology
  • Pharmacology

Background:

  • Platelet-derived microvesicles (PMVs) are implicated in procoagulant, pro-inflammatory, and pro-atherosclerotic processes.
  • PMVs constitute the majority of circulating microvesicles and are shed from platelet membranes.

Purpose of the Study:

  • To compare plasma PMV numbers in relation to platelet reactivity during dual antiplatelet therapy (DAPT) with P2Y12 inhibitors.
  • To investigate differences in PMV release among clopidogrel, prasugrel, and ticagrelor users.

Main Methods:

  • Quantification of plasma PMVs using flow cytometry (CD62P and CD42 positivity).
  • Measurement of ADP-induced platelet aggregation via multiple-electrode aggregometry.
  • Study population: Men treated with DAPT post-acute coronary syndrome before discharge.

Main Results:

  • Ticagrelor and prasugrel demonstrated superior platelet inhibition compared to clopidogrel.
  • CD42+/CD62P+ PMVs were significantly lower with ticagrelor and prasugrel versus clopidogrel.
  • Ticagrelor use was associated with a substantial reduction in total CD42+ PMVs, independent of anti-aggregatory effects.

Conclusions:

  • Potent P2Y12 inhibitors like ticagrelor and prasugrel reduce activated PMVs (CD42+/CD62P+).
  • Ticagrelor's effect on total PMVs (CD42+) appears independent of its anti-aggregatory action, suggesting novel pleiotropic effects.
  • Ticagrelor may be associated with lower overall PMV release compared to thienopyridines.

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