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Loss of SETD2 Induces a Metabolic Switch in Renal Cell Carcinoma Cell Lines toward Enhanced Oxidative Phosphorylation
Jingping Liu1,2, Paul D Hanavan2, Katon Kras2
1Key Laboratory of Transplant Engineering and Immunology, West China Hospital , Sichuan University , Chengdu , Sichuan 610041 , P. R. China.
Abstract:
SETD2, a histone H3 lysine trimethyltransferase, is frequently inactivated and associated with recurrence of clear cell renal cell carcinoma (ccRCC). However, the impact of SETD2 loss on metabolic alterations in ccRCC is still unclear. In this study, SETD2 null isogenic 38E/38F clones derived from 786-O cells were generated by zinc finger nucleases, and subsequent metabolic, genomic, and cellular phenotypic changes were analyzed by targeted metabolomics, RNA sequencing, and biological methods, respectively. Our results showed that compared with parental 786-O cells, 38E/38F cells had elevated levels of MTT/Alamar blue levels, ATP, glycolytic/mitochondrial respiratory capacity, citrate synthase (CS) activity, and TCA metabolites such as aspartate, malate, succinate, fumarate, and α-ketoglutarate. The 38E/38F cells also utilized alternative sources beyond pyruvate to generate acetyl-CoA for the TCA cycle. Moreover, 38E/38F cells showed disturbed gene networks mainly related to mitochondrial metabolism and the oxidation of fatty acids and glucose, which was associated with increased PGC1α, mitochondrial mass, and cellular size/complexity. Our results indicate that SETD2 deficiency induces a metabolic switch toward enhanced oxidative phosphorylation in ccRCC, which can be related to PGC1α-mediated metabolic networks. Therefore, this current study lays the foundation for the further development of a global metabolic analysis of cancer cells in individual patients, which ultimately will have significant potential for the discovery of novel therapeutics and precision medicine in SETD2-inactivated ccRCC.
Insights
Loss of SETD2 in clear cell renal cell carcinoma (ccRCC) boosts oxidative phosphorylation and alters metabolic networks. This finding offers potential for novel therapeutics in SETD2-inactivated ccRCC.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Research
Background:
- SETD2 (histone H3 lysine trimethyltransferase) inactivation is linked to clear cell renal cell carcinoma (ccRCC) recurrence.
- The metabolic impact of SETD2 loss in ccRCC remains largely unexplored.
Purpose of the Study:
- To investigate the metabolic, genomic, and phenotypic consequences of SETD2 deficiency in ccRCC.
- To elucidate the role of SETD2 in regulating cellular metabolism and mitochondrial function in ccRCC.
Main Methods:
- Generation of SETD2 null isogenic ccRCC cell lines (38E/38F) using zinc finger nucleases.
- Analysis of metabolic profiles via targeted metabolomics.
- Assessment of genomic and cellular changes using RNA sequencing and biological assays.
Main Results:
- SETD2-deficient cells exhibited increased cellular metabolism, ATP levels, and enhanced glycolytic/mitochondrial respiratory capacity.
- Elevated levels of key tricarboxylic acid (TCA) cycle metabolites and alternative acetyl-CoA sources were observed.
- Disturbed gene networks related to mitochondrial metabolism and fatty acid/glucose oxidation, alongside increased PGC1α and mitochondrial mass, were identified.
Conclusions:
- SETD2 deficiency promotes a metabolic shift towards heightened oxidative phosphorylation in ccRCC, potentially mediated by PGC1α.
- These findings provide a foundation for developing global metabolic analyses for precision medicine and novel therapeutics in SETD2-inactivated ccRCC.
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