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.

Frontiers in Oncology
|July 25, 2022
PubMed

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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