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A Syngeneic Mouse Model of Metastatic Renal Cell Carcinoma for Quantitative and Longitudinal Assessment of Preclinical Therapies
Published on: April 12, 2017
Metastasis is promoted by a bioenergetic switch: new targets for progressive renal cell cancer
Sigrun Langbein1, Wilma M Frederiks, Axel zur Hausen
1Department of Urology, Academic Medical Center, University of Amsterdam, Meibergdreef 9, 1105 AZ Amsterdam, The Netherlands. sigrun.langbein@web.de
Abstract:
Targeted therapies have demonstrated clinical benefit with limited impact on long-term disease specific survival in the treatment of renal cell cancer (RCC). New opportunities for the treatment of tumors that are resistant or have relapsed, are needed. Increased anaerobic glucose fermentation to lactate (aerobic glycolysis), leading to oxygen- and mitochondria-independent ATP generation is a hallmark of aggressive cancer growth. This metabolic shift results in increased lactate production via cycling through the pentose phosphate pathway (PPP), and plays an important role in tumor immune escape, progression and resistance to immune-, radiation- and chemo-therapy. This study explored the activity and impact of the oxidative and nonoxidative branches of the PPP on RCC to evaluate new therapeutic options. Activity was determined in the oxidative branch by glucose-6-phosphate-dehydrogenase (G6PD) activity, and in the nonoxidative branch by the total transketolase activity and the specific expression of the transketolase-like-1 (TKTL1) protein. Transketolase and G6PD activity were intensely elevated in tumor tissues. Transketolase, but not G6PD activity, was more elevated in metastasizing tumors and TKTL1 protein was significantly overexpressed in progressing tumors (p = 0.03). Lethal tumors, where surrogate parameters such as grading and staging had failed to predict progression, showed intensive TKTL1 protein expression. RCC was found to have activated oxidative and nonoxidative glucose metabolism through the PPP, displaying a bioenergetic shift toward nonoxidative glucose fermentation in progressing tumors. The coexistence of cancer cells with differentially regulated energy supplies provides new insights in carcinogenesis and novel anticancer targets.
Insights
Renal cell cancer (RCC) exhibits increased glucose metabolism via the pentose phosphate pathway (PPP), particularly the nonoxidative branch in progressing tumors. This highlights TKTL1 as a potential therapeutic target for advanced RCC.
Area of Science:
- Oncology
- Cancer Metabolism
- Biochemistry
Background:
- Targeted therapies for renal cell cancer (RCC) show limited long-term survival benefits.
- Aggressive cancers, including RCC, exhibit increased aerobic glycolysis, a hallmark of tumor progression and therapeutic resistance.
- The pentose phosphate pathway (PPP) is implicated in tumor immune escape, progression, and resistance to various therapies.
Purpose of the Study:
- To investigate the role of the oxidative and nonoxidative branches of the PPP in RCC.
- To evaluate the potential of PPP enzymes and TKTL1 as therapeutic targets for RCC.
Main Methods:
- Assessed glucose-6-phosphate-dehydrogenase (G6PD) activity for the oxidative PPP branch.
- Measured total transketolase activity and TKTL1 protein expression for the nonoxidative PPP branch.
- Correlated enzyme activities and protein expression with tumor progression, metastasis, and lethality in RCC tissues.
Main Results:
- Both transketolase and G6PD activities were significantly elevated in RCC tumor tissues.
- Transketolase activity and TKTL1 protein expression were higher in metastasizing and progressing tumors, respectively.
- Intensive TKTL1 expression was observed in lethal tumors where conventional parameters failed to predict progression.
Conclusions:
- RCC activates both oxidative and nonoxidative glucose metabolism via the PPP.
- A bioenergetic shift towards nonoxidative glucose fermentation occurs in progressing RCC.
- Activated PPP, particularly TKTL1, represents a novel therapeutic target for advanced and lethal RCC.
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