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Author Spotlight: Radiotherapy and Clonogenic Assays for Advancing Cancer Research and Personalized Medicine
Published on: April 5, 2024
Targeting AKT-Dependent Regulation of Antioxidant Defense Sensitizes AKT-E17K Expressing Cancer Cells to Ionizing
Isabell Goetting1, Safa Larafa1, Katharina Eul1
1Institute of Cell Biology (Cancer Research), University Hospital Essen, Essen, Germany.
Abstract:
Aberrant activation of the phosphatidyl-inositol-3-kinase/protein kinase B (AKT) pathway has clinical relevance to radiation resistance, but the underlying mechanisms are incompletely understood. Protection against reactive oxygen species (ROS) plays an emerging role in the regulation of cell survival upon irradiation. AKT-dependent signaling participates in the regulation of cellular antioxidant defense. Here, we were interested to explore a yet unknown role of aberrant activation of AKT in regulating antioxidant defense in response to IR and associated radiation resistance. We combined genetic and pharmacologic approaches to study how aberrant activation of AKT impacts cell metabolism, antioxidant defense, and radiosensitivity. Therefore, we used TRAMPC1 (TrC1) prostate cancer cells overexpressing the clinically relevant AKT-variant AKT-E17K with increased AKT activity or wildtype AKT (AKT-WT) and analyzed the consequences of direct AKT inhibition (MK2206) and inhibition of AKT-dependent metabolic enzymes on the levels of cellular ROS, antioxidant capacity, metabolic state, short-term and long-term survival without and with irradiation. TrC1 cells expressing the clinically relevant AKT1-E17K variant were characterized by improved antioxidant defense compared to TrC1 AKT-WT cells and this was associated with increased radiation resistance. The underlying mechanisms involved AKT-dependent direct and indirect regulation of cellular levels of reduced glutathione (GSH). Pharmacologic inhibition of specific AKT-dependent metabolic enzymes supporting defense against oxidative stress, e.g., inhibition of glutathione synthase and glutathione reductase, improved eradication of clonogenic tumor cells, particularly of TrC1 cells overexpressing AKT-E17K. We conclude that improved capacity of TrC1 AKT-E17K cells to balance antioxidant defense with provision of energy and other metabolites upon irradiation compared to TrC1 AKT-WT cells contributes to their increased radiation resistance. Our findings on the importance of glutathione de novo synthesis and glutathione regeneration for radiation resistance of TrC1 AKT-E17K cells offer novel perspectives for improving radiosensitivity in cancer cells with aberrant AKT activity by combining IR with inhibitors targeting AKT-dependent regulation of GSH provision.
Insights
Aberrant AKT activation enhances cancer cell antioxidant defense and radiation resistance by regulating glutathione levels. Inhibiting AKT-dependent pathways improves tumor cell eradication, offering new strategies to boost radiosensitivity.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Aberrant activation of the phosphatidyl-inositol-3-kinase/protein kinase B (AKT) pathway is linked to cancer radiation resistance.
- Cellular protection against reactive oxygen species (ROS) is crucial for survival after irradiation.
- AKT signaling influences cellular antioxidant defense mechanisms.
Purpose of the Study:
- To investigate the role of aberrant AKT activation in regulating antioxidant defense and radiation resistance.
- To explore how AKT impacts cell metabolism, antioxidant capacity, and radiosensitivity in prostate cancer cells.
- To identify potential therapeutic targets for enhancing radiosensitivity in cancers with hyperactive AKT.
Main Methods:
- Utilized TRAMPC1 (TrC1) prostate cancer cells with wildtype AKT (AKT-WT) or the activating AKT-E17K variant.
- Employed genetic and pharmacologic approaches, including AKT inhibition (MK2206) and targeting AKT-dependent metabolic enzymes.
- Assessed cellular ROS levels, antioxidant capacity, metabolic state, and short-term/long-term survival with and without irradiation.
Main Results:
- TrC1 cells overexpressing AKT-E17K exhibited enhanced antioxidant defense and increased radiation resistance compared to AKT-WT cells.
- AKT-dependent regulation of reduced glutathione (GSH) levels was identified as a key mechanism.
- Pharmacologic inhibition of glutathione synthesis and regeneration enzymes improved tumor cell eradication, especially in AKT-E17K cells.
Conclusions:
- Enhanced antioxidant defense and metabolic flexibility in AKT-E17K cells contribute to their radiation resistance.
- Targeting AKT-dependent glutathione synthesis and regeneration presents a novel strategy to improve radiosensitivity in cancers with aberrant AKT activity.
- Combining radiotherapy with inhibitors of AKT-dependent GSH provision may enhance cancer treatment outcomes.
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