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Updated: Sep 30, 2025

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Specific inhibition of the transporter MRP4/ABCC4 affects multiple signaling pathways and thrombus formation in human
Robert Wolf1, Sophie Grammbauer2, Raghavendra Palankar3
1Department of General Pharmacology, Center of Drug Absorption and Transport (C_DAT), Greifswald, Germany; German Center for Cardiovascular Research (DZHK), Partner Site Greifswald.
Abstract:
The multidrug resistance protein 4 (MRP4) is highly expressed in platelets and several lines of evidence point to an impact on platelet function. MRP4 represents a transporter for cyclic nucleotides as well as for certain lipid mediators. The aim of the present study was to comprehensively characterize the effect of a short-time specific pharmacological inhibition of MRP4 on signaling pathways in platelets. Transport assays in isolated membrane vesicles showed a concentrationdependent inhibition of MRP4-mediated transport of cyclic nucleotides, thromboxane (Tx)B2 and fluorescein (FITC)- labeled sphingosine-1-phosphate (S1P) by the selective MRP4 inhibitor Ceefourin-1. In ex vivo aggregometry studies in human platelets, Ceefourin-1 significantly inhibited platelet aggregation by about 30-50% when ADP or collagen was used as activating agents, respectively. Ceefourin-1 significantly lowered the ADP-induced activation of integrin aIIbb3, indicated by binding of FITC-fibrinogen (about 50% reduction at 50 mM Ceefourin-1), and reduced calcium influx. Furthermore, pre-incubation with Ceefourin-1 significantly increased PGE1- and cinaciguat-induced vasodilatorstimulated phosphoprotein (VASP) phosphorylation, indicating increased cytosolic cAMP as well as cGMP concentrations, respectively. The release of TxB2 from activated human platelets was also attenuated. Finally, selective MRP4 inhibition significantly reduced both the total area covered by thrombi and the average thrombus size by about 40% in a flow chamber model. In conclusion, selective MRP4 inhibition causes reduced platelet adhesion and thrombus formation under flow conditions. This finding is mechanistically supported by inhibition of integrin aIIbb3 activation, elevated VASP phosphorylation and reduced calcium influx, based on inhibited cyclic nucleotide and thromboxane transport as well as possible further mechanisms.
Insights
Selective inhibition of multidrug resistance protein 4 (MRP4) in platelets reduces platelet aggregation and thrombus formation. This MRP4 inhibition impacts key signaling pathways, offering potential therapeutic avenues for thrombotic disorders.
Area of Science:
- Biochemistry
- Pharmacology
- Hematology
Background:
- Multidrug resistance protein 4 (MRP4) is expressed in platelets and influences platelet function.
- MRP4 transports cyclic nucleotides and lipid mediators, suggesting a role in platelet signaling.
Purpose of the Study:
- To investigate the effects of short-term, specific MRP4 inhibition on platelet signaling pathways.
- To characterize the impact of the MRP4 inhibitor Ceefourin-1 on platelet aggregation and thrombus formation.
Main Methods:
- Transport assays in isolated membrane vesicles to assess MRP4-mediated transport.
- Ex vivo platelet aggregometry and integrin activation studies (e.g., FITC-fibrinogen binding).
- Flow chamber model to evaluate thrombus formation under shear stress.
Main Results:
- Ceefourin-1 inhibited MRP4 transport of cyclic nucleotides, thromboxane B2 (TxB2), and sphingosine-1-phosphate (S1P).
- Platelet aggregation induced by ADP or collagen was reduced by 30-50%.
- Integrin αIIbβ3 activation and calcium influx were decreased, while VASP phosphorylation increased, indicating elevated cAMP/cGMP levels. Thrombus formation was reduced by approximately 40%.
Conclusions:
- Selective MRP4 inhibition effectively reduces platelet adhesion and thrombus formation under flow conditions.
- Mechanisms include inhibition of integrin αIIbβ3 activation, increased VASP phosphorylation, and reduced calcium influx.
- Targeting MRP4 in platelets presents a potential strategy for managing thrombotic events.
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