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Updated: May 14, 2026

In Vivo Detection and Analysis of Rb Protein SUMOylation in Human Cells
Published on: November 2, 2017
Control of glutamine metabolism by the tumor suppressor Rb
M R Reynolds1, A N Lane2, B Robertson3
11] Department of Medicine, University of Louisville, Louisville, KY, USA [2] Department of Biochemistry and Molecular Biology, University of Louisville, Louisville, KY, USA [3] Molecular Targets Group, University of Louisville, Louisville, KY, USA.
Abstract:
Retinoblastoma (Rb) protein is a tumor suppressor that is dysregulated in a majority of human cancers. Rb functions to inhibit cell cycle progression in part by directly disabling the E2F family of cell cycle-promoting transcription factors. Because the de novo synthesis of multiple glutamine-derived anabolic precursors is required for cell cycle progression, we hypothesized that Rb also may directly regulate proteins involved in glutamine metabolism. We examined glutamine metabolism in mouse embryonic fibroblasts (MEFs) isolated from mice that have triple knock-outs (TKO) of all three Rb family members (Rb-1, Rbl1 and Rbl2) and found that loss of global Rb function caused a marked increase in (13)C-glutamine uptake and incorporation into glutamate and tricarboxylic acid cycle (TCA) intermediates in part via upregulated expression of the glutamine transporter ASCT2 and the activity of glutaminase 1 (GLS1). The Rb-controlled transcription factor E2F-3 altered glutamine uptake by direct regulation of ASCT2 mRNA and protein expression, and E2F-3 was observed to associate with the ASCT2 promoter. We next examined the functional consequences of the observed increase in glutamine uptake and utilization and found that glutamine exposure potently increased oxygen consumption, whereas glutamine deprivation selectively decreased ATP concentration in the Rb TKO MEFs but not the wild-type (WT) MEFs. In addition, TKO MEFs exhibited elevated production of glutathione from exogenous glutamine and had increased expression of gamma-glutamylcysteine ligase relative to WT MEFs. Importantly, this metabolic shift towards glutamine utilization was required for the proliferation of Rb TKO MEFs but not for the proliferation of the WT MEFs. Last, addition of the TCA cycle intermediate α-ketoglutarate to the Rb TKO MEFs reversed the inhibitory effects of glutamine deprivation on ATP, GSH levels and viability. Taken together, these studies demonstrate that the Rb/E2F cascade directly regulates a major energetic and anabolic pathway that is required for neoplastic growth.
Insights
The Retinoblastoma (Rb) protein, a tumor suppressor, directly regulates glutamine metabolism. Loss of Rb function enhances glutamine uptake and utilization, fueling cancer cell proliferation.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Pathways
Background:
- Retinoblastoma (Rb) protein is a critical tumor suppressor.
- Rb inhibits cell cycle progression by regulating E2F transcription factors.
- Cell cycle progression relies on glutamine-derived precursors.
Purpose of the Study:
- To investigate the hypothesis that Rb regulates glutamine metabolism.
- To understand the role of Rb/E2F in metabolic reprogramming.
- To identify the impact of Rb loss on cancer cell energetics.
Main Methods:
- Analysis of glutamine metabolism in Rb-deficient mouse embryonic fibroblasts (MEFs).
- Assessment of glutamine transporter ASCT2 and glutaminase 1 (GLS1) expression and activity.
- Investigation of E2F-3 binding to the ASCT2 promoter.
- Measurement of ATP, oxygen consumption, and glutathione production.
- Evaluation of proliferation rates under varying glutamine conditions.
Main Results:
- Loss of Rb function significantly increased glutamine uptake and incorporation into TCA cycle intermediates.
- Upregulation of ASCT2 and GLS1 activity was observed in Rb-deficient MEFs.
- E2F-3 directly regulated ASCT2 expression.
- Rb-deficient MEFs showed increased oxygen consumption and glutathione production.
- Glutamine utilization was essential for Rb-deficient MEF proliferation.
Conclusions:
- The Rb/E2F pathway directly controls glutamine metabolism.
- This metabolic regulation is crucial for neoplastic growth.
- Targeting glutamine metabolism could be a therapeutic strategy for Rb-dysregulated cancers.
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