ArticleMolecular cancer research : MCR2024
Crizotinib Enhances PARP Inhibitor Efficacy in Ovarian Cancer Cells and Xenograft Models by Inducing Autophagy.
Article in Molecular cancer research : MCR, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- Deep learning-driven QSAR and micro-scale MD simulation-guided strategy reveals non-toxic human HGFR inhibitors.Molecular diversity · 2026Article
- Exploring the optimal cutoff point and genomic characteristics for PARP inhibitor maintenance therapy in early recurrence of ovarian cancer.Journal of ovarian research · 2026Article
- Regulated cell death in ovarian cancer: molecular mechanisms and therapeutic targets.Frontiers in cell and developmental biology · 2026Review
- Overcoming Resistance to PARP Inhibitors in BRCA-Mutated Cancers: Mechanisms and Therapeutic Strategies.Journal of Cancer · 2026Review
- Targeting ferroptosis to overcome drug resistance in lung cancer.Translational lung cancer research · 2025Review
- Evaluation of crizotinib as radiosensitizer in sacral chordoma cells: effects of combined carbon ion particle therapy.Medical oncology (Northwood, London, England) · 2025Article
- PARP inhibitor BMN673 triggers PARylation-mediated ATF4-GDF15 pathway to drive autophagy and ferroptosis in ataxia telangiectasia mutated gene-deficient colorectal cancer cells.Molecular biomedicine · 2025Article
- CDCA5 knockdown potentiates olaparib sensitivity in BRCA1-mutated ovarian cancer through autophagy activation.Discover oncology · 2025Article
- LNS-8801 as a therapeutic agent for aggressive lymphomas: ROS-induced cytotoxicity and synergy with existing therapies.Blood advances · 2025Article
- Integrative multi-omics and machine learning approach reveals tumor microenvironment-associated prognostic biomarkers in ovarian cancer.Translational cancer research · 2024Article
- Review
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9 authors.
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Abstract
Poly (ADP-ribose) polymerase inhibitors (PARPi) can encounter resistance through various mechanisms, limiting their effectiveness. Our recent research showed that PARPi alone can induce drug resistance by promoting autophagy. Moreover, our studies have revealed that anaplastic lymphoma kinase (ALK) plays a role in regulating the survival of ovarian cancer cells undergoing autophagy. Here, we explored whether the ALK-inhibitor crizotinib could enhance the efficacy of PARPi by targeting drug-induced autophagic ovarian cancer cell and xenograft models. Our investigation demonstrates that crizotinib enhances the anti-tumor activity of PARPi across multiple ovarian cancer cells. Combination therapy with crizotinib and olaparib reduced cell viability and clonogenic growth in two-olaparib resistant cell lines. More importantly, this effect was consistently observed in patient-derived organoids. Furthermore, combined treatment with crizotinib and olaparib led to tumor regression in human ovarian xenograft models. Mechanistically, the combination resulted in increased levels of reactive oxygen species (ROS), induced DNA damage, and decreased the phosphorylation of AKT, mTOR, and ULK-1, contributing to increased olaparib-induced autophagy and apoptosis. Notably, pharmacologic, or genetic inhibition or autophagy reduced the sensitivity of ovarian cancer cell lines to olaparib and crizotinib treatment, underscoring the role of autophagy in cell death. Blocking ROS mitigated olaparib/crizotinib-induced autophagy and cell death while restoring levels of phosphorylated AKT, mTOR and ULK-1. These findings suggest that crizotinib can improve the therapeutic efficacy of olaparib by enhancing autophagy. Implications: The combination of crizotinib and PARPi presents a promising strategy, that could provide a novel approach to enhance outcomes for patients with ovarian cancer.
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