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Published on: November 21, 2016
Glycolysis Dependency as a Hallmark of SF3B1-Mutated Cells
Raquel Vivet-Noguer1, Malcy Tarin1, Christine Canbezdi1
1Translational Research Department, Institut Curie, PSL Research University, 75248 Paris, France.
Abstract:
SF3B1 mutations are recurrent in cancer and result in aberrant splicing of a previously defined set of genes. Here, we investigated the fate of aberrant transcripts induced by mutant SF3B1 and the related functional consequences. We first demonstrate that mutant SF3B1 does not alter global nascent protein synthesis, suggesting target-dependent consequences. Polysome profiling revealed that 35% of aberrantly spliced transcripts are more translated than their corresponding canonically spliced transcripts. This mostly occurs in genes with enriched metabolic functions. Furthermore, LC-MS/MS analysis showed that mutant SF3B1 impacts the abundance of proteins involved in metabolism. Functional metabolic characterization revealed that mutant SF3B1 decreases mitochondrial respiration and promotes glycolysis to compensate for defective mitochondrial metabolism. Hence, mutant SF3B1 induces glycolysis dependency, which sensitizes cells to glycolysis inhibition. Overall, we provide evidence of the oncogenic involvement of mutant SF3B1 in uveal melanoma through a metabolic switch to glycolysis, revealing vulnerability to glycolysis inhibitors as a promising therapeutic strategy.
Insights
Mutant SF3B1 (splicing factor 3B subunit 1) drives cancer by altering gene splicing and promoting glycolysis. This metabolic shift creates a vulnerability to glycolysis inhibitors, offering a potential therapeutic strategy for uveal melanoma.
Area of Science:
- Molecular Biology
- Cancer Biology
- Metabolomics
Background:
- Mutations in SF3B1 are common in cancers, leading to abnormal gene splicing.
- The functional consequences of SF3B1 mutations on transcript fate and cellular metabolism are not fully understood.
Purpose of the Study:
- To investigate the impact of mutant SF3B1 on aberrant transcript translation and protein abundance.
- To determine the functional metabolic consequences of SF3B1 mutations in cancer.
- To explore therapeutic strategies targeting metabolic alterations induced by mutant SF3B1.
Main Methods:
- Polysome profiling to assess mRNA translation.
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) for protein abundance analysis.
- Functional metabolic assays including mitochondrial respiration and glycolysis measurements.
Main Results:
- Mutant SF3B1 leads to increased translation of a subset of aberrantly spliced transcripts, particularly those involved in metabolism.
- SF3B1 mutations alter protein abundance in metabolic pathways.
- Cells with mutant SF3B1 exhibit decreased mitochondrial respiration and increased glycolysis, creating a dependency on glycolysis.
- This dependency sensitizes cancer cells to glycolysis inhibitors.
Conclusions:
- Mutant SF3B1 promotes oncogenesis in uveal melanoma via a metabolic switch to glycolysis.
- Targeting glycolysis represents a promising therapeutic approach for cancers with SF3B1 mutations.
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