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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.
Background:
Hypoxia, a key feature of most solid tumours, including head and neck cancer, reduces radiotherapy efficacy by promoting radiation resistance through micro-environmental and genomic alterations. Addressing these resistance mechanisms is crucial, as radiotherapy remains central to managing locally advanced disease. Atovaquone, a mitochondrial electron transport chain complex III inhibitor, is reported to reduce tumour hypoxia in preclinical models, however, this response does not consistently enhance radiation sensitivity. This work examines the potential of atovaquone to modify the hypoxic response in models of head and neck squamous cell carcinoma (HNSCC), uncovering an adaptive resistance mechanism driven by integrated stress response (ISR) signaling that limits the radiosensitising potential of this approach.
Methods:
The bioenergetic response of HNSCC cells to atovaquone was assessed using the Seahorse XFe96 Analyzer with the XF Cell Mito Stress Test. Radiation dose modifying effects of atovaquone were tested by clonogenic survival assays, while ROS yields were analysed by flow cytometry. Western blotting and quantitative reverse transcription-PCR were employed to study activation of ISR signaling and the overall influence of atovaquone on the hypoxic response. Finally, the role of the ISR activation in modulating radiosensitivity was investigated using both siRNA and pharmacological inhibition of eIF2α, a central regulator of the ISR.
Results:
Herein we report that atovaquone significantly disrupts mitochondrial respiration, triggering phosphorylation of eIF2α, a pivotal regulator of the ISR, and a master regulator of protein synthesis. Notably, atovaquone also increased the autophagic load under hypoxia, while autophagy inhibition significantly enhanced apoptosis, improving radiation sensitivity. Combined eIF2α inhibition and atovaquone promotes cell cycle redistribution and significantly enhances mitochondrial ROS production and compared to atovaquone alone, restoring atovaquone mediated radiosensitisation.
Conclusions:
Our data highlight dual counter opposing impacts of atovaquone, serving as a hypoxic radiosensitiser though oxidative phosphorylation (OXPHOS) inhibition, but also in promoting stress induced ISR signaling, conferring resistance to radiation treatment. Importantly, if ISR activation is impeded, the metabolic radiosensitising properties of atovaquone is restored. These data provide a new insight to a molecular response that could help counteract hypoxia-induced radioresistance.
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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