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.

Cancer Research
|May 9, 2015
PubMed

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.

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