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Published on: January 24, 2017
Targeting mitochondrial complex I using BAY 87-2243 reduces melanoma tumor growth
Laura Schöckel1, Andrea Glasauer1, Farhan Basit2
1BPH, GDD, Global Therapeutic Research Group Oncology II, Bayer Pharma AG, Müllerstraße 178, 13353 Berlin, Germany.
Background:
Numerous studies have demonstrated that functional mitochondria are required for tumorigenesis, suggesting that mitochondrial oxidative phosphorylation (OXPHOS) might be a potential target for cancer therapy. In this study, we investigated the effects of BAY 87-2243, a small molecule that inhibits the first OXPHOS enzyme (complex I), in melanoma in vitro and in vivo.
Results:
BAY 87-2243 decreased mitochondrial oxygen consumption and induced partial depolarization of the mitochondrial membrane potential. This was associated with increased reactive oxygen species (ROS) levels, lowering of total cellular ATP levels, activation of AMP-activated protein kinase (AMPK), and reduced cell viability. The latter was rescued by the antioxidant vitamin E and high extracellular glucose levels (25 mM), indicating the involvement of ROS-induced cell death and a dependence on glycolysis for cell survival upon BAY 87-2243 treatment. BAY 87-2243 significantly reduced tumor growth in various BRAF mutant melanoma mouse xenografts and patient-derived melanoma mouse models. Furthermore, we provide evidence that inhibition of mutated BRAF using the specific small molecule inhibitor vemurafenib increased the OXPHOS dependency of BRAF mutant melanoma cells. As a consequence, the combination of both inhibitors augmented the anti-tumor effect of BAY 87-2243 in a BRAF mutant melanoma mouse xenograft model.
Conclusions:
Taken together, our results suggest that complex I inhibition has potential clinical applications as a single agent in melanoma and also might be efficacious in combination with BRAF inhibitors in the treatment of patients with BRAF mutant melanoma.
Insights
BAY 87-2243, a complex I inhibitor, reduces melanoma cell viability and tumor growth by disrupting mitochondrial oxidative phosphorylation (OXPHOS). Combining it with BRAF inhibitors enhances anti-tumor effects in BRAF-mutant melanoma.
Area of Science:
- Mitochondrial biology
- Cancer research
- Pharmacology
Background:
- Mitochondrial oxidative phosphorylation (OXPHOS) is crucial for cancer cell survival.
- Targeting OXPHOS presents a potential therapeutic strategy for cancer treatment.
- BAY 87-2243 is a novel inhibitor of complex I in the OXPHOS pathway.
Purpose of the Study:
- To investigate the anti-melanoma effects of BAY 87-2243, a complex I inhibitor.
- To explore the mechanisms underlying BAY 87-2243's action in melanoma cells.
- To evaluate the efficacy of BAY 87-2243 alone and in combination with BRAF inhibitors in melanoma models.
Main Methods:
- In vitro studies assessing mitochondrial function, cell viability, and metabolic changes.
- In vivo studies using melanoma xenografts and patient-derived models.
- Combination therapy studies with BRAF inhibitors (vemurafenib).
Main Results:
- BAY 87-2243 inhibited mitochondrial oxygen consumption, reduced membrane potential, and decreased ATP levels.
- Increased reactive oxygen species (ROS) and AMP-activated protein kinase (AMPK) activation were observed.
- BAY 87-2243 demonstrated significant tumor growth inhibition in vivo, which was enhanced by combination with vemurafenib in BRAF-mutant melanoma.
Conclusions:
- Complex I inhibition by BAY 87-2243 shows promise as a single-agent therapy for melanoma.
- Combination therapy with BRAF inhibitors may be particularly effective for BRAF-mutant melanoma patients.
- Targeting OXPHOS represents a viable strategy for melanoma treatment.
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