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Grade-Dependent Metabolic Reprogramming in Kidney Cancer Revealed by Combined Proteomics and Metabolomics Analysis
Hiromi I Wettersten1, A Ari Hakimi2, Dexter Morin3
1Division of Nephrology, Department of Internal Medicine, School of Medicine, University of California, Davis, California.
Abstract:
Kidney cancer [or renal cell carcinoma (RCC)] is known as "the internist's tumor" because it has protean systemic manifestations, suggesting that it utilizes complex, nonphysiologic metabolic pathways. Given the increasing incidence of this cancer and its lack of effective therapeutic targets, we undertook an extensive analysis of human RCC tissue employing combined grade-dependent proteomics and metabolomics analysis to determine how metabolic reprogramming occurring in this disease allows it to escape available therapeutic approaches. After validation experiments in RCC cell lines that were wild-type or mutant for the Von Hippel-Lindau tumor suppressor, in characterizing higher-grade tumors, we found that the Warburg effect is relatively more prominent at the expense of the tricarboxylic acid cycle and oxidative metabolism in general. Further, we found that the glutamine metabolism pathway acts to inhibit reactive oxygen species, as evidenced by an upregulated glutathione pathway, whereas the β-oxidation pathway is inhibited, leading to increased fatty acylcarnitines. In support of findings from previous urine metabolomics analyses, we also documented tryptophan catabolism associated with immune suppression, which was highly represented in RCC compared with other metabolic pathways. Together, our results offer a rationale to evaluate novel antimetabolic treatment strategies being developed in other disease settings as therapeutic strategies in RCC.
Insights
Kidney cancer (renal cell carcinoma) exhibits altered metabolism, including a prominent Warburg effect and suppressed beta-oxidation. These metabolic shifts in renal cell carcinoma may explain its resistance to therapies, suggesting new treatment strategies.
Area of Science:
- Oncology
- Metabolomics
- Proteomics
Background:
- Kidney cancer (renal cell carcinoma, RCC) presents with diverse systemic effects, indicating complex metabolic alterations.
- The increasing incidence and limited therapeutic targets for RCC necessitate understanding its metabolic reprogramming.
Purpose of the Study:
- To investigate metabolic reprogramming in human RCC tissue using integrated proteomics and metabolomics.
- To identify how metabolic changes in RCC contribute to therapeutic resistance.
Main Methods:
- Combined grade-dependent proteomics and metabolomics analysis of human RCC tissue.
- Validation experiments in RCC cell lines (Von Hippel-Lindau wild-type and mutant).
Main Results:
- Higher-grade RCC shows a more pronounced Warburg effect, with reduced tricarboxylic acid cycle and oxidative metabolism.
- Glutamine metabolism upregulates the glutathione pathway, inhibiting reactive oxygen species, while beta-oxidation is inhibited, increasing fatty acylcarnitines.
- Tryptophan catabolism, linked to immune suppression, is significantly elevated in RCC.
Conclusions:
- Metabolic reprogramming in RCC involves the Warburg effect, altered glutamine and fatty acid metabolism, and tryptophan catabolism.
- These findings provide a rationale for exploring novel antimetabolic treatment strategies for renal cell carcinoma.

