Ponatinib Induces Vascular Toxicity through the Notch-1 Signaling Pathway
Rosalinda Madonna1,2, Damiana Pieragostino3,4, Maria Concetta Cufaro4,5
1Institute of Cardiology, University of Pisa, 56124 Pisa, Italy.
Abstract:
Ponatinib, a third-generation tyrosine kinase inhibitor (TKI), is the only approved TKI that is effective against T315I mutations in patients with chronic myeloid leukemia (CML). Specific activation of Notch signaling in CML cells by ponatinib can be considered as the "on-target effect" on the tumor and represents a therapeutic approach for CML. Nevertheless, ponatinib-induced vascular toxicity remains a serious concern, with underlying mechanisms being poorly understood. We aimed to determine the mechanisms of ponatinib-induced vascular toxicity, defining associated signaling pathways and identifying potential rescue strategies. We exposed human umbilical endothelial cells (HUVECs) to ponatinib or vehicle in the presence or absence of the neutralizing factor anti-Notch-1 antibody for exposure times of 0-72 h. Label-free proteomics and network analysis showed that protein cargo of HUVECs treated with ponatinib triggered apoptosis and inhibited vasculature development. We validated the proteomic data showing the inhibition of matrigel tube formation, an up-regulation of cleaved caspase-3 and a downregulation of phosphorylated AKT and phosphorylated eNOS. We delineated the signaling of ponatinib-induced vascular toxicity, demonstrating that ponatinib inhibits endothelial survival, reduces angiogenesis and induces endothelial senescence and apoptosis via the Notch-1 pathway. Ponatinib induced endothelial toxicity in vitro. Hyperactivation of Notch-1 in the vessels can lead to abnormal vascular development and vascular dysfunction. By hyperactivating Notch-1 in the vessels, ponatinib exerts an "on-target off tumor effect", which leads to deleterious effects and may explain the drug's vasculotoxicity. Selective blockade of Notch-1 prevented ponatinib-induced vascular toxicity.
Insights
Ponatinib effectively treats chronic myeloid leukemia (CML) but causes vascular toxicity. This study reveals ponatinib hyperactivates Notch-1 signaling, leading to endothelial cell damage and potential therapeutic strategies.
Area of Science:
- Biomedical research
- Molecular biology
- Oncology
Background:
- Ponatinib is a tyrosine kinase inhibitor (TKI) crucial for treating chronic myeloid leukemia (CML), especially with T315I mutations.
- Despite its efficacy, ponatinib-induced vascular toxicity is a significant clinical concern with unclear mechanisms.
Purpose of the Study:
- To elucidate the mechanisms behind ponatinib-induced vascular toxicity.
- To identify signaling pathways involved and explore potential rescue strategies.
Main Methods:
- Human umbilical endothelial cells (HUVECs) were treated with ponatinib and analyzed using label-free proteomics.
- Key pathways were validated through experiments measuring matrigel tube formation, apoptosis markers (cleaved caspase-3), and signaling proteins (p-AKT, p-eNOS).
- The role of Notch-1 signaling was investigated using anti-Notch-1 antibodies.
Main Results:
- Ponatinib treatment induced apoptosis and inhibited vascular development in HUVECs.
- Proteomic analysis revealed significant alterations in protein cargo, validated by decreased tube formation and altered protein phosphorylation.
- Ponatinib was shown to inhibit endothelial survival, angiogenesis, and induce senescence and apoptosis, primarily through Notch-1 pathway hyperactivation.
Conclusions:
- Ponatinib-induced vascular toxicity is mediated by the hyperactivation of the Notch-1 pathway in endothelial cells.
- This
- on-target, off-tumor
- effect disrupts normal vascular function.
- Selective blockade of Notch-1 effectively prevented ponatinib-induced vascular toxicity, suggesting a potential therapeutic intervention.
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