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ERRα Maintains Mitochondrial Oxidative Metabolism and Constitutes an Actionable Target in PGC1α-Elevated Melanomas
Chi Luo1,2, Eduardo Balsa1,2, Ajith Thomas1
1Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, Massachusetts.
Abstract:
The uncontrolled growth of tumors provides metabolic dependencies that can be harnessed for therapeutic benefit. Although tumor cells exhibit these increased metabolic demands due to their rapid proliferation, these metabolic processes are general to all cells, and furthermore, targeted therapeutic intervention can provoke compensatory adaptation that alters tumors' characteristics. As an example, a subset of melanomas depends on the transcriptional coactivator PGC1α function to sustain their mitochondrial energy-dependent survival. However, selective outgrowth of resistant PGC1α-independent tumor cells becomes endowed with an augmented metastatic phenotype. To find PGC1α-dependent components that would not affect metastasis in melanomas, an unbiased proteomic analyses was performed and uncovered the orphan nuclear receptor ERRα, which supports PGC1α's control of mitochondrial energetic metabolism, but does not affect the antioxidant nor antimetastatic regulatory roles. Specifically, genetic or pharmacologic inhibition of ERRα reduces the inherent bioenergetic capacity and decreases melanoma cell growth, but without altering the invasive characteristics. Thus, within this particularly aggressive subset of melanomas, which is characterized by heighted expression of PGC1α, ERRα specifically mediates prosurvival functions and represents a tangible therapeutic target.Implications: ERRα, a druggable protein, mediates the bioenergetic effects in melanomas defined by high PGC1α expression, suggesting a rational means for therapeutic targeting of this particularly aggressive melanoma subtype. Mol Cancer Res; 15(10); 1366-75. ©2017 AACR.
Insights
Targeting ERRα, a protein supporting PGC1α, can inhibit aggressive melanoma growth. This approach offers a therapeutic strategy by reducing tumor bioenergetics without promoting metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Pathways
Background:
- Tumor cells have metabolic dependencies exploitable for therapy.
- Melanomas with high PGC1α expression rely on it for survival but can develop resistance.
- PGC1α-independent cells may exhibit increased metastatic potential.
Purpose of the Study:
- To identify PGC1α-dependent targets in melanoma that do not influence metastatic properties.
- To investigate the role of ERRα in melanoma cell survival and bioenergetics.
Main Methods:
- Unbiased proteomic analysis to identify PGC1α-dependent components.
- Genetic and pharmacologic inhibition of ERRα.
- Assessment of melanoma cell growth, bioenergetic capacity, and invasive characteristics.
Main Results:
- Proteomic analysis identified ERRα as a PGC1α-dependent component.
- ERRα supports PGC1α's control of mitochondrial metabolism but not antioxidant or antimetastatic roles.
- Inhibition of ERRα decreased melanoma cell growth and bioenergetic capacity without affecting invasiveness.
Conclusions:
- ERRα mediates prosurvival functions in aggressive melanomas with high PGC1α expression.
- ERRα is a druggable target for selectively inhibiting melanoma bioenergetics.
- Targeting ERRα offers a potential therapeutic strategy for this aggressive melanoma subtype.
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