Targeting the Metabolic Response to Statin-Mediated Oxidative Stress Produces a Synergistic Antitumor Response
Grace H McGregor1,2, Andrew D Campbell1, Sigrid K Fey1,2
1Cancer Research UK Beatson Institute, Glasgow, United Kingdom.
Abstract:
Statins are widely prescribed inhibitors of the mevalonate pathway, acting to lower systemic cholesterol levels. The mevalonate pathway is critical for tumorigenesis and is frequently upregulated in cancer. Nonetheless, reported effects of statins on tumor progression are ambiguous, making it unclear whether statins, alone or in combination, can be used for chemotherapy. Here, using advanced mass spectrometry and isotope tracing, we showed that statins only modestly affected cancer cholesterol homeostasis. Instead, they significantly reduced synthesis and levels of another downstream product, the mitochondrial electron carrier coenzyme Q, both in cultured cancer cells and tumors. This compromised oxidative phosphorylation, causing severe oxidative stress. To compensate, cancer cells upregulated antioxidant metabolic pathways, including reductive carboxylation, proline synthesis, and cystine import. Targeting cystine import with an xCT transporter-lowering MEK inhibitor, in combination with statins, caused profound tumor cell death. Thus, statin-induced ROS production in cancer cells can be exploited in a combinatorial regimen. SIGNIFICANCE: Cancer cells induce specific metabolic pathways to alleviate the increased oxidative stress caused by statin treatment, and targeting one of these pathways synergizes with statins to produce a robust antitumor response.See related commentary by Cordes and Metallo, p. 151.
Insights
Statins reduce coenzyme Q, increasing oxidative stress in cancer cells. Combining statins with MEK inhibitors targeting cystine import causes significant tumor cell death, offering a novel chemotherapy strategy.
Area of Science:
- Biochemistry
- Oncology
- Metabolic pathways
Background:
- The mevalonate pathway is crucial for cancer development and often upregulated.
- Statins, inhibitors of this pathway, have ambiguous effects on tumor progression, questioning their use in chemotherapy.
Purpose of the Study:
- To investigate the precise effects of statins on cancer cell metabolism and identify potential therapeutic strategies.
- To explore the synergistic potential of combining statins with other targeted therapies.
Main Methods:
- Advanced mass spectrometry and isotope tracing were employed to analyze metabolic changes in cancer cells and tumors.
- Investigated the impact of statins on cholesterol homeostasis, coenzyme Q synthesis, and oxidative phosphorylation.
Main Results:
- Statins modestly affected cholesterol but significantly reduced coenzyme Q synthesis, impairing oxidative phosphorylation and inducing oxidative stress.
- Cancer cells upregulated antioxidant pathways, including reductive carboxylation, proline synthesis, and cystine import, to cope with stress.
- Combination therapy with statins and an xCT transporter-lowering MEK inhibitor led to substantial tumor cell death.
Conclusions:
- Statin-induced reactive oxygen species (ROS) production in cancer cells can be therapeutically exploited.
- Targeting compensatory metabolic pathways, such as cystine import, synergizes with statins for a potent antitumor response.
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