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Glutaminase 2 as a therapeutic target in glioblastoma
Rithvik K Veeramachaneni1, Robert K Suter1, Emma Rowland1
1Department of Oncology, Lombardi Comprehensive Cancer Center, Georgetown University, Washington, DC, USA.
Abstract:
Glioblastoma (GBM) is the most common malignant primary adult brain tumor. Despite standard-of-care treatment, which consists of surgical resection, temozolomide (TMZ) treatment, and radiotherapy, the prognosis for GBM patients remains poor with a five-year survival rate of 5 %. With treatment, the median survival time is 14 months, suggesting the dire need for new, more effective therapies. Glutaminolysis, the metabolic pathway by which cells can convert glutamine to ATP, is essential for the survival of GBM cells and represents a putative target for treatment. Glutamine replenishes tricarboxylic acid (TCA) cycle intermediates through glutaminolysis. The first step of glutaminolysis, the deamination of glutamine, can be carried out by either glutaminase 1 (GLS) or glutaminase 2 (GLS2). However, it is becoming increasingly clear that these enzymes have opposing functions in GBM; GLS induces deamination of glutamine, thereby acting in an oncogenic fashion, while GLS2 has non-enzymatic, tumor-suppressive functions that are repressed in GBM. In this review, we explore the important role of glutaminolysis and the opposing roles of GLS and GLS2 in GBM. Further, we provide a detailed discussion of GLS2's newly discovered non-enzymatic functions that can be targeted in GBM. We conclude by considering therapeutic approaches that have emerged from the understanding of GLS and GLS2's opposing roles in GBM.
Insights
Glioblastoma cells rely on glutaminolysis for survival. Targeting glutaminase 2 (GLS2) offers a promising therapeutic strategy against this aggressive brain cancer.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Pathways
Background:
- Glioblastoma (GBM) has a poor prognosis despite standard treatments.
- Glutaminolysis is crucial for GBM cell survival and ATP production.
- Glutaminase 1 (GLS) and glutaminase 2 (GLS2) play opposing roles in GBM.
Purpose of the Study:
- To review the role of glutaminolysis in GBM.
- To discuss the opposing functions of GLS and GLS2 in GBM.
- To explore therapeutic strategies targeting GLS2's non-enzymatic functions.
Main Methods:
- Literature review on glutaminolysis and its enzymes in GBM.
- Analysis of the oncogenic role of GLS.
- Investigation of GLS2's tumor-suppressive functions.
Main Results:
- GLS promotes GBM growth through glutamine deamination.
- GLS2 exhibits tumor-suppressive functions, often repressed in GBM.
- GLS2 possesses newly identified non-enzymatic functions relevant to GBM.
Conclusions:
- Glutaminolysis is a critical metabolic vulnerability in GBM.
- Targeting GLS2, particularly its non-enzymatic activities, presents a novel therapeutic avenue.
- Understanding the opposing roles of GLS and GLS2 can lead to improved GBM treatments.
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