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Updated: Mar 8, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Protein disulfide isomerase inhibition blocks thrombin generation in humans by interfering with platelet factor V
Jack D Stopa1, Donna Neuberg2, Maneka Puligandla2
1Division of Hemostasis and Thrombosis, Beth Israel Deaconess Medical Center and Harvard Medical School.
Abstract:
BACKGROUND: Protein disulfide isomerase (PDI) is required for thrombus formation. We previously demonstrated that glycosylated quercetin flavonoids such as isoquercetin inhibit PDI activity and thrombus formation in animal models, but whether extracellular PDI represents a viable anticoagulant target in humans and how its inhibition affects blood coagulation remain unknown. METHODS: We evaluated effects of oral administration of isoquercetin on platelet-dependent thrombin generation in healthy subjects and patients with persistently elevated anti-phospholipid antibodies. RESULTS: Following oral administration of 1,000 mg isoquercetin to healthy adults, the measured peak plasma quercetin concentration (9.2 μM) exceeded its IC50 for inhibition of PDI by isoquercetin in vitro (2.5 ± 0.4 μM). Platelet-dependent thrombin generation decreased by 51% in the healthy volunteers compared with baseline (P = 0.0004) and by 64% in the anti-phospholipid antibody cohort (P = 0.015) following isoquercetin ingestion. To understand how PDI affects thrombin generation, we evaluated substrates of PDI identified using an unbiased mechanistic-based substrate trapping approach. These studies identified platelet factor V as a PDI substrate. Isoquercetin blocked both platelet factor Va and thrombin generation with an IC50 of ~5 μM. Inhibition of PDI by isoquercetin ingestion resulted in a 53% decrease in the generation of platelet factor Va (P = 0.001). Isoquercetin-mediated inhibition was reversed with addition of exogenous factor Va. CONCLUSION: These studies show that oral administration of isoquercetin inhibits PDI activity in plasma and diminishes platelet-dependent thrombin generation predominantly by blocking the generation of platelet factor Va. These pharmacodynamic and mechanistic observations represent an important step in the development of a novel class of antithrombotic agents targeting PDI. TRIAL REGISTRATION: Clinicaltrials.gov (NCT01722669) FUNDING: National Heart, Lung, and Blood Institute (U54 HL112302) and Quercegen Pharma.
Insights
Isoquercetin, a flavonoid, inhibits protein disulfide isomerase (PDI) in humans, reducing thrombin generation and platelet factor Va. This study highlights PDI as a novel antithrombotic target.
Area of Science:
- Biochemistry
- Pharmacology
- Hematology
Background:
- Protein disulfide isomerase (PDI) is crucial for thrombus formation.
- Previous studies showed quercetin flavonoids inhibit PDI and thrombus in animal models.
- The role of extracellular PDI as an anticoagulant target in humans was unknown.
Purpose of the Study:
- To determine if extracellular PDI is a viable anticoagulant target in humans.
- To investigate the effects of isoquercetin on blood coagulation.
- To explore the mechanism by which PDI inhibition affects thrombin generation.
Main Methods:
- Oral administration of isoquercetin to healthy subjects and patients with antiphospholipid antibodies.
- Measurement of plasma quercetin concentrations and platelet-dependent thrombin generation.
- Identification of PDI substrates using mechanistic-based substrate trapping; platelet factor V identified.
Main Results:
- Plasma quercetin levels exceeded PDI inhibition IC50 after isoquercetin ingestion.
- Significant reduction in platelet-dependent thrombin generation (51% in healthy, 64% in antiphospholipid cohort).
- Isoquercetin inhibited platelet factor Va generation (53% decrease) and thrombin generation, effects reversible with exogenous factor Va.
Conclusions:
- Oral isoquercetin inhibits plasma PDI activity and reduces platelet-dependent thrombin generation.
- Inhibition of platelet factor Va generation is the primary mechanism.
- These findings support PDI as a novel antithrombotic target.
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