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Updated: Jan 19, 2026
Homologous Recombination and Strand Invasion
Simultaneous targeting of DNA replication and homologous recombination in glioblastoma with a polyether ionophore
Yi Chieh Lim1,2, Kathleen S Ensbey1, Carolin Offenhäuser1
1Cell and Molecular Biology Department, QIMR Berghofer MRI, Queensland, Australia.
Background:
Despite significant endeavor having been applied to identify effective therapies to treat glioblastoma (GBM), survival outcomes remain intractable. The greatest nonsurgical benefit arises from radiotherapy, though tumors typically recur due to robust DNA repair. Patients could therefore benefit from therapies with the potential to prevent DNA repair and synergize with radiotherapy. In this work, we investigated the potential of salinomycin to enhance radiotherapy and further uncover novel dual functions of this ionophore to induce DNA damage and prevent repair.
Methods:
In vitro primary GBM models and ex vivo GBM patient explants were used to determine the mechanism of action of salinomycin by immunoblot, flow cytometry, immunofluorescence, immunohistochemistry, and mass spectrometry. In vivo efficacy studies were performed using orthotopic GBM animal xenograft models. Salinomycin derivatives were synthesized to increase drug efficacy and explore structure-activity relationships.
Results:
Here we report novel dual functions of salinomycin. Salinomycin induces toxic DNA lesions and prevents subsequent recovery by targeting homologous recombination (HR) repair. Salinomycin appears to target the more radioresistant GBM stem cell-like population and synergizes with radiotherapy to significantly delay tumor formation in vivo. We further developed salinomycin derivatives which display greater efficacy in vivo while retaining the same beneficial mechanisms of action.
Conclusion:
Our findings highlight the potential of salinomycin to induce DNA lesions and inhibit HR to greatly enhance the effect of radiotherapy. Importantly, first-generation salinomycin derivatives display greater efficacy and may pave the way for clinical testing of these agents.
Insights
Salinomycin shows dual action against glioblastoma (GBM) by causing DNA damage and blocking repair, enhancing radiotherapy effectiveness. New derivatives show improved efficacy for potential clinical trials.
Area of Science:
- Oncology
- Cancer Therapeutics
- DNA Repair Mechanisms
Background:
- Glioblastoma (GBM) remains a challenging cancer with poor survival rates.
- Radiotherapy is a primary treatment, but tumor recurrence due to DNA repair limits its efficacy.
- Novel therapies that prevent DNA repair and synergize with radiotherapy are needed for GBM patients.
Purpose of the Study:
- To investigate salinomycin's potential to enhance radiotherapy for glioblastoma.
- To uncover salinomycin's dual functions in inducing DNA damage and inhibiting DNA repair.
- To develop more effective salinomycin derivatives for GBM treatment.
Main Methods:
- Utilized in vitro GBM models and ex vivo patient explants for mechanistic studies.
- Employed immunoblot, flow cytometry, immunofluorescence, immunohistochemistry, and mass spectrometry.
- Conducted in vivo efficacy studies in orthotopic GBM xenograft models and synthesized salinomycin derivatives.
Main Results:
- Salinomycin induces DNA lesions and inhibits homologous recombination (HR) repair, preventing cancer cell recovery.
- The drug targets radioresistant glioblastoma stem-like cells, synergizing with radiotherapy to delay tumor formation.
- Developed salinomycin derivatives demonstrated enhanced in vivo efficacy while maintaining the same mechanism of action.
Conclusions:
- Salinomycin effectively induces DNA damage and inhibits HR, significantly potentiating radiotherapy effects.
- First-generation salinomycin derivatives show promise for enhanced efficacy and potential clinical application.
- This study provides a foundation for developing novel salinomycin-based therapies for glioblastoma.
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