Atovaquone-induced activation of the PERK/eIF2α signaling axis mitigates metabolic radiosensitisation

Jie Feng1, Varun Pathak2, Niall M Byrne1

  • 1School of Pharmacy, Queen's University Belfast, BT9 7BL, Belfast, Northern Ireland, UK.

Abstract

Insights

Atovaquone disrupts tumor cell respiration, initially sensitizing cancer cells to radiation. However, it triggers an adaptive stress response that confers resistance, limiting its effectiveness. Inhibiting this stress response restores atovaquone

Area of Science:

  • Oncology
  • Cancer Biology
  • Radiotherapy Research

Background:

  • Hypoxia is a major challenge in head and neck cancer radiotherapy, reducing treatment efficacy by inducing radiation resistance.
  • Atovaquone, a mitochondrial inhibitor, has shown potential in reducing tumor hypoxia but its radiosensitizing effects are inconsistent.
  • An adaptive resistance mechanism involving integrated stress response (ISR) signaling limits atovaquone's radiosensitizing potential in head and neck squamous cell carcinoma (HNSCC).

Purpose of the Study:

  • To investigate the effects of atovaquone on the hypoxic response in HNSCC models.
  • To uncover the role of integrated stress response (ISR) signaling in mediating resistance to atovaquone-mediated radiosensitization.
  • To explore strategies for overcoming atovaquone-induced radioresistance.

Main Methods:

  • Assessed bioenergetic response using Seahorse XFe96 Analyzer.
  • Evaluated radiosensitizing effects via clonogenic survival assays and ROS yield analysis.
  • Investigated ISR signaling activation and its role in radiosensitivity using Western blotting, qRT-PCR, siRNA, and pharmacological inhibition of eIF2α.

Main Results:

  • Atovaquone disrupted mitochondrial respiration and triggered ISR activation via eIF2α phosphorylation.
  • Autophagy increased under hypoxia with atovaquone; autophagy inhibition enhanced apoptosis and radiosensitivity.
  • Combined eIF2α inhibition and atovaquone enhanced ROS production and restored radiosensitization.

Conclusions:

  • Atovaquone has dual effects: radiosensitization via OXPHOS inhibition and radioresistance via ISR signaling.
  • Impeding ISR activation restores the radiosensitizing properties of atovaquone.
  • Targeting ISR signaling offers a novel strategy to counteract hypoxia-induced radioresistance in HNSCC.

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