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Targeting HER2 signaling pathway for radiosensitization: alternative strategy for therapeutic resistance
Mina No1, Eun Jung Choi, In Ah Kim
1Medical Science Research Institute, Seoul National University Bundang Hospital, School of Medicine, Seoul National University, Seoul, Korea.
Abstract:
Several studies have indicated the potential value of targeting HER-2 signaling to enhance the anti-tumor activity of ionizing radiation. However, therapeutic resistance resulting from several factors, including activation of the downstream pathway, represents a major obstacle to treatment. Here, we investigated whether inhibitors targeting downstream of HER-2 signaling would radiosensitize SKBR3 breast cancer cells that exhibit overamplification of HER2. Selective inhibition of MEK-ERK signaling using pharmacologic inhibitors (PD98059, UO126) did not increase the radiosensitivity of SKBR3 cells. Selective inhibition of the PI3K-AKT-mTOR pathway using pharmacologic inhibitors (LY294002, AKT inhibitor VIII, Rapamycin) significantly attenuated expression of p-AKT and p-70S6K, respectively and radiosensitized SKBR3 cells. MCF-7 cells those did not overexpress HER-2, showed less radiosensitization compared to SKBR3 cells by inhibition of this pathway. Pre-treatment with these inhibitors also caused significant abrogation of typical G(2) arrest following ionizing radiation and induced marked prolongation of gammaH2AX foci indicating impairment of DNA damage repair. A dual inhibitor of Class I PI3K and mTOR, PI103 effectively radiosensitized SKBR3 cells and showed significant prolongation of gammaH2AX foci. Inhibition of PI3K-AKT signaling was associated with downregulation of DNA-PKs, respectively. While apoptosis was the major mode of cell death when the cells were pretreated with LY294002 or AKT inhibitor VIII, the cells were pretreated by rapamycin or PI103 showed mixed mode of cell death including autophagy. Our results suggest possible mechanisms to counteract the HER-2 prosurvival signaling implicated in radioresistance, and offer an alternative strategy to overcome resistance to HER-2 inhibitors combined with radiation.
Insights
Targeting the PI3K-AKT-mTOR pathway, but not MEK-ERK, radiosensitized HER-2 overexpressing breast cancer cells. This approach impaired DNA repair and enhanced radiation therapy effectiveness, offering a strategy against radioresistance.
Area of Science:
- Oncology
- Molecular Biology
- Radiation Oncology
Background:
- Targeting Human Epidermal growth factor Receptor 2 (HER-2) signaling can enhance anti-tumor activity of ionizing radiation.
- Therapeutic resistance, often due to downstream pathway activation, hinders treatment efficacy.
Purpose of the Study:
- To investigate if inhibiting downstream HER-2 signaling radiosensitizes HER-2 overamplified SKBR3 breast cancer cells.
- To explore the mechanisms of radiosensitization and potential cell death pathways.
Main Methods:
- SKBR3 breast cancer cells were treated with pharmacologic inhibitors targeting MEK-ERK or PI3K-AKT-mTOR pathways.
- Cells were exposed to ionizing radiation, and radiosensitivity was assessed.
- Expression of key signaling proteins (p-AKT, p-70S6K), DNA damage repair (gammaH2AX foci), cell cycle arrest (G2), and cell death modes were analyzed.
Main Results:
- Selective inhibition of PI3K-AKT-mTOR pathway (using LY294002, AKT inhibitor VIII, Rapamycin) significantly radiosensitized SKBR3 cells.
- MEK-ERK pathway inhibition did not enhance radiosensitivity.
- PI3K-AKT-mTOR inhibition abrogated G2 arrest, prolonged gammaH2AX foci, and led to apoptosis or mixed cell death (including autophagy).
- MCF-7 cells (without HER-2 overexpression) showed less radiosensitization.
Conclusions:
- Inhibiting the PI3K-AKT-mTOR pathway is a viable strategy to radiosensitize HER-2 overexpressing breast cancer cells.
- This approach counteracts HER-2 prosurvival signaling, potentially overcoming resistance to HER-2 inhibitors combined with radiation.
- The findings suggest targeting DNA damage repair and cell death pathways as a means to enhance radiation therapy outcomes.
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