The tyrosine kinase inhibitor, nilotinib potentiates a prothrombotic state
Naif Alhawiti1, Kate L Burbury2, Faith A Kwa1
1Thrombosis and Vascular Diseases Laboratory, School of Health and Biomedical Sciences, RMIT University, Bundoora, Victoria, Australia.
Abstract:
Tyrosine kinase inhibitors (TKI) such as imatinib, nilotinib and dasatinib are now established as highly effective frontline therapies for chronic myeloid leukaemia (CML). Disease control is achieved in the majority of patients and survival is excellent such that recent focus has been on toxicities of these agents. Cumulative data have reported an excess of serious vascular complications, including arterial thrombosis and peripheral arterial occlusive disease, in patients receiving nilotinib in comparison with other TKIs, with resultant interest in delineating the pathophysiology and implications for rationale cardiovascular risk modification. To address this issue, we studied the effects of imatinib, nilotinib and dasatinib on platelet function and thrombus formation in human and mouse models using in vitro, ex vivo and in vivo approaches. In vitro studies demonstrated that dasatinib and imatinib but not nilotinib inhibited ADP, CRP, and collagen-induced platelet aggregation and moreover, that nilotinib potentiated PAR-1-mediated alpha granule release. Pretreatment of wild-type C57BL/6 mice with nilotinib but not imatinib or dasatinib, significantly increased thrombus growth and stability, on type I collagen under ex vivo arterial flow conditions and increased thrombus growth and stability following FeCl3-induced vascular injury of mesenteric arterioles and carotid artery injury in vivo. Whole blood from nilotinib-treated CML patients, demonstrated increased platelet adhesion ex vivo under flow, increased plasma soluble P- and E-selectin, sICAM-1, sVCAM-1, TNF-alpha, IL-6 levels and endogenous thrombin potential (ETP) levels in vivo, despite being on daily low-dose aspirin. These results demonstrate that nilotinib can potentiate platelet and endothelial activation and platelet thrombus formation ex vivo and in vivo.
Insights
Nilotinib, a tyrosine kinase inhibitor (TKI) for chronic myeloid leukaemia (CML), potentiates platelet activation and thrombus formation, unlike imatinib and dasatinib. This may explain increased vascular risks observed in patients treated with nilotinib.
Area of Science:
- Pharmacology
- Hematology
- Cardiovascular Medicine
Background:
- Tyrosine kinase inhibitors (TKIs) like imatinib, nilotinib, and dasatinib are effective for chronic myeloid leukaemia (CML).
- Recent focus is on TKI toxicities, particularly vascular complications associated with nilotinib.
Purpose of the Study:
- To investigate the effects of imatinib, nilotinib, and dasatinib on platelet function and thrombus formation.
- To understand the mechanisms behind nilotinib-associated vascular complications.
Main Methods:
- In vitro, ex vivo, and in vivo studies using human and mouse models.
- Assessed platelet aggregation, granule release, adhesion, and thrombus formation under various conditions.
- Measured plasma markers of endothelial activation and coagulation in CML patients.
Main Results:
- Dasatinib and imatinib inhibited platelet aggregation; nilotinib did not but potentiated PAR-1-mediated alpha granule release.
- Nilotinib increased thrombus growth and stability in mouse models (ex vivo and in vivo).
- Nilotinib-treated CML patients showed increased platelet adhesion, endothelial activation markers, and thrombin potential.
Conclusions:
- Nilotinib, unlike imatinib and dasatinib, potentiates platelet and endothelial activation.
- Nilotinib enhances platelet thrombus formation ex vivo and in vivo.
- Findings suggest a mechanism for increased vascular risk in CML patients treated with nilotinib.
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