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Immunofluorescence Imaging of DNA Damage and Repair Foci in Human Colon Cancer Cells
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Torin2 Suppresses Ionizing Radiation-Induced DNA Damage Repair
Durga Udayakumar1,2, Raj K Pandita1,2, Nobuo Horikoshi1,2
1a Department of Radiation Oncology and.
Abstract:
Several classes of inhibitors of the mammalian target of rapamycin (mTOR) have been developed based on its central role in sensing growth factor and nutrient levels to regulate cellular metabolism. However, its ATP-binding site closely resembles other phosphatidylinositol 3-kinase-related kinase (PIKK) family members, resulting in reactivity with these targets that may also be therapeutically useful. The ATP-competitive mTOR inhibitor, Torin2, shows biochemical activity against the DNA repair-associated proteins ATM, ATR and DNA-PK, which raises the possibility that Torin2 and related compounds might radiosensitize cancerous tumors. In this study Torin2 was also found to enhance ionizing radiation-induced cell killing in conditions where ATM was dispensable, confirming the requirement for multiple PIKK targets. Moreover, Torin2 did not influence the initial appearance of γ-H2AX foci after irradiation but significantly delayed the disappearance of radiation-induced γ-H2AX foci, indicating a DNA repair defect. Torin2 increased the number of radiation-induced S-phase specific chromosome aberrations and reduced the frequency of radiation-induced CtIP and Rad51 foci formation, suggesting that Torin2 works by blocking homologous recombination (HR)-mediated DNA repair resulting in an S-phase specific DNA repair defect. Accordingly, Torin2 reduced HR-mediated repair of I-Sce1-induced DNA damage and contributed to replication fork stalling. We conclude that radiosensitization of tumor cells by Torin2 is associated with disrupting ATR- and ATM-dependent DNA damage responses. Our findings support the concept of developing combination cancer therapies that incorporate ionizing radiation therapy and Torin2 or compounds with similar properties.
Insights
The mTOR inhibitor Torin2 enhances cancer cell killing by radiation, suggesting it could be a valuable addition to radiation therapy by disrupting DNA repair mechanisms.
Area of Science:
- Oncology
- Molecular Biology
- Radiotherapy
Background:
- Mammalian target of rapamycin (mTOR) regulates cellular metabolism.
- mTOR inhibitors like Torin2 also target other kinases, including ATM, ATR, and DNA-PK.
- These targets are involved in DNA repair and could influence cancer treatment outcomes.
Purpose of the Study:
- To investigate the potential of Torin2 as a radiosensitizer for cancer therapy.
- To determine the DNA repair pathways affected by Torin2 in combination with ionizing radiation.
Main Methods:
- Assessing Torin2's effect on ionizing radiation-induced cell killing in cancer cells.
- Analyzing the impact of Torin2 on DNA damage markers (γ-H2AX foci) and DNA repair protein formation (CtIP, Rad51).
- Evaluating Torin2's influence on homologous recombination repair and replication fork stability.
Main Results:
- Torin2 enhanced radiation-induced cancer cell death, even when ATM was not essential.
- Torin2 delayed the resolution of radiation-induced DNA damage and increased chromosomal aberrations.
- Torin2 inhibited homologous recombination repair and caused replication fork stalling, implicating ATR and ATM pathways.
Conclusions:
- Torin2 acts as a radiosensitizer by interfering with ATR- and ATM-dependent DNA damage responses.
- Combination therapy with ionizing radiation and Torin2 warrants further investigation for cancer treatment.
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