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Updated: Feb 28, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Hemostasis-Sparing Antiplatelet Therapy: Current Concepts and Emerging Targets in Arterial Thrombosis
Ji Won Park1, Eun Bee Oh1, Tong-Shin Chang1,2
1College of Pharmacy, Seoul National University, Seoul 08826, Republic of Korea.
Insights
New antiplatelet strategies selectively inhibit thrombosis while sparing hemostasis, reducing bleeding risk. Precision-based prevention tailors therapy to individual patient needs for safer cardiovascular care.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
- Hematology
Background:
- Arterial thrombosis is a major cause of cardiovascular events, despite current dual antiplatelet therapy (DAPT).
- Existing DAPT (aspirin, P2Y12 inhibitors) carries bleeding risks and lacks selectivity for pathological thrombosis over normal hemostasis.
- Need for safer antiplatelet therapies that minimize bleeding complications.
Purpose of the Study:
- To review recent advances in antiplatelet therapy development.
- To highlight novel hemostasis-sparing strategies targeting specific platelet pathways.
- To discuss the integration of these strategies with precision medicine for thrombosis prevention.
Main Methods:
- Review of current literature on platelet biology and antiplatelet drug development.
- Focus on novel agents targeting upstream adhesion receptors and intracellular signaling nodes.
- Discussion of clinical and translational studies evaluating mechanistic selectivity and bleeding profiles.
Main Results:
- Emerging hemostasis-sparing agents show antithrombotic efficacy with reduced bleeding risk.
- Targeting specific platelet pathways (e.g., GPVI, BTK) demonstrates mechanistic selectivity.
- Individualized risk assessment, platelet function testing, and genetic profiling are key to tailoring therapy.
Conclusions:
- A paradigm shift is occurring from broad platelet suppression to rational, context-adaptive antiplatelet therapy.
- Hemostasis-sparing strategies offer a safer alternative to current DAPT.
- Precision-based thrombosis prevention integrates novel agents with patient-specific risk evaluation for optimized outcomes.
Abstract:
Arterial thrombosis remains a leading cause of cardiovascular morbidity and mortality despite widespread use of dual antiplatelet therapy (DAPT) with aspirin and P2Y12 inhibitors. Although these agents reduce ischemic events, their efficacy is counterbalanced by dose-dependent bleeding and their inability to distinguish pathological platelet activation from physiological hemostasis. Recent advances in platelet biology have shifted therapeutic development toward hemostasis-sparing antiplatelet strategies- approaches designed to selectively inhibit thrombosis while preserving baseline hemostatic function. These strategies target upstream adhesion receptors (GPVI, GPIb-vWF, CLEC-2) and receptor-proximal intracellular signaling nodes (SYK, BTK, PI3Kβ, PLCγ2, NADPH oxidases) that are preferentially engaged under high-shear or strongly prothrombotic conditions. Early-phase clinical and translational studies of such agents demonstrate antithrombotic efficacy with minimal impact on bleeding time, supporting their mechanistic selectivity. In parallel, contemporary clinical practice increasingly utilizes individualized risk assessment, platelet function testing, and genetic profiling to tailor treatment intensity. This integration of mechanism-selective agents with patient-specific risk evaluation forms the basis of precision-based thrombosis prevention, a framework aimed at aligning the duration and depth of platelet inhibition with the dynamic balance between ischemic and bleeding risk. Together, these developments mark a paradigm shift from broad platelet suppression toward rational, context-adaptive, and safer antiplatelet therapy.
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