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Glutamine Flux Imaging Using Genetically Encoded Sensors
Published on: July 31, 2014
Decrease of Intracellular Glutamine by STF-62247 Results in the Accumulation of Lipid Droplets in von Hippel-Lindau
Mathieu Johnson1,2, Sarah Nowlan1,2, Gülsüm Sahin1,2
1Department of Chemistry and Biochemistry, Université de Moncton, Moncton, NB, Canada.
Abstract:
Kidney cancer is one of the top ten cancer diagnosed worldwide and its incidence has increased the last 20 years. Clear Cell Renal Cell Carcinoma (ccRCC) are characterized by mutations that inactivate the von Hippel-Lindau (VHL) tumor suppressor gene and evidence indicated alterations in metabolic pathways, particularly in glutamine metabolism. We previously identified a small molecule, STF-62247, which target VHL-deficient renal tumors by affecting late-stages of autophagy and lysosomal signaling. In this study, we investigated ccRCC metabolism in VHL-deficient and proficient cells exposed to the small molecule. Metabolomics profiling using 1H NMR demonstrated that STF-62247 increases levels of glucose, pyruvate, glycerol 3-phosphate while glutamate, asparagine, and glutathione significantly decreased. Diminution of glutamate and glutamine was further investigated using mass spectrometry, western blot analyses, enzymatic activities, and viability assays. We found that expression of SLC1A5 increases in VHL-deficient cells treated with STF-62247, possibly to stimulate glutamine uptake intracellularly to counteract the diminution of this amino acid. However, exogenous addition of glutamine was not able to rescue cell viability induced by the small molecule. Instead, our results showed that VHL-deficient cells utilize glutamine to produce fatty acid in response to STF-62247. Surprisingly, this occurs through oxidative phosphorylation in STF-treated cells while control cells use reductive carboxylation to sustain lipogenesis. We also demonstrated that STF-62247 stimulated expression of stearoyl-CoA desaturase (SCD1) and peripilin2 (PLIN2) to generate accumulation of lipid droplets in VHL-deficient cells. Moreover, the carnitine palmitoyltransferase 1A (CPT1A), which control the entry of fatty acid into mitochondria for β-oxidation, also increased in response to STF-62247. CPT1A overexpression in ccRCC is known to limit tumor growth. Together, our results demonstrated that STF-62247 modulates cellular metabolism of glutamine, an amino acid involved in the autophagy-lysosome process, to support lipogenesis, which could be implicated in the signaling driving to cell death.
Insights
The small molecule STF-62247 alters kidney cancer cell metabolism, shifting glutamine use from reductive carboxylation to fatty acid production via oxidative phosphorylation, leading to cell death signaling.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Clear Cell Renal Cell Carcinoma (ccRCC) incidence is rising globally.
- ccRCC is linked to von Hippel-Lindau (VHL) gene mutations and altered glutamine metabolism.
- STF-62247 is a novel small molecule targeting VHL-deficient tumors by affecting autophagy and lysosomal signaling.
Purpose of the Study:
- To investigate the metabolic effects of STF-62247 on VHL-deficient and proficient ccRCC cells.
- To elucidate the role of glutamine metabolism in ccRCC response to STF-62247.
- To identify key metabolic pathways and genes modulated by STF-62247.
Main Methods:
- Metabolomics profiling using 1H NMR and mass spectrometry.
- Western blot analyses and enzymatic activity assays.
- Cell viability assays and gene expression analysis (SCD1, PLIN2, CPT1A).
Main Results:
- STF-62247 increased glucose and pyruvate, decreased glutamate and glutamine.
- VHL-deficient cells upregulate SLC1A5 for glutamine uptake but cannot rescue viability.
- Glutamine fuels fatty acid synthesis via oxidative phosphorylation in STF-62247 treated cells, unlike controls using reductive carboxylation.
- STF-62247 upregulates SCD1, PLIN2, and CPT1A, promoting lipid droplet accumulation and mitochondrial fatty acid oxidation.
Conclusions:
- STF-62247 profoundly alters ccRCC cellular metabolism, particularly glutamine utilization.
- The drug induces lipogenesis through oxidative phosphorylation and increases CPT1A expression, potentially driving cell death.
- Targeting glutamine metabolism and lipogenesis represents a promising therapeutic strategy for VHL-deficient ccRCC.
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