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JC virus T-antigen regulates glucose metabolic pathways in brain tumor cells
Evan Noch1, Ilker Kudret Sariyer, Jennifer Gordon
1Department of Neuroscience and Center for Neurovirology, Temple University School of Medicine, Philadelphia, Pennsylvania, United States of America.
Abstract:
Recent studies have reported the detection of the human neurotropic virus, JCV, in a significant population of brain tumors, including medulloblastomas. Accordingly, expression of the JCV early protein, T-antigen, which has transforming activity in cell culture and in transgenic mice, results in the development of a broad range of tumors of neural crest and glial origin. Evidently, the association of T-antigen with a range of tumor-suppressor proteins, including p53 and pRb, and signaling molecules, such as β-catenin and IRS-1, plays a role in the oncogenic function of JCV T-antigen. We demonstrate that T-antigen expression is suppressed by glucose deprivation in medulloblastoma cells and in glioblastoma xenografts that both endogenously express T-antigen. Mechanistic studies indicate that glucose deprivation-mediated suppression of T-antigen is partly influenced by 5'-activated AMP kinase (AMPK), an important sensor of the AMP/ATP ratio in cells. In addition, glucose deprivation-induced cell cycle arrest in the G1 phase is blocked with AMPK inhibition, which also prevents T-antigen downregulation. Furthermore, T-antigen prevents G1 arrest and sustains cells in the G2 phase during glucose deprivation. On a functional level, T-antigen downregulation is partially dependent on reactive oxygen species (ROS) production during glucose deprivation, and T-antigen prevents ROS induction, loss of ATP production, and cytotoxicity induced by glucose deprivation. Additionally, we have found that T-antigen is downregulated by the glycolytic inhibitor, 2-deoxy-D-glucose (2-DG), and the pentose phosphate inhibitors, 6-aminonicotinamide and oxythiamine, and that T-antigen modulates expression of the glycolytic enzyme, hexokinase 2 (HK2), and the pentose phosphate enzyme, transaldolase-1 (TALDO1), indicating a potential link between T-antigen and metabolic regulation. These studies point to the possible involvement of JCV T-antigen in medulloblastoma proliferation and the metabolic phenotype and may enhance our understanding of the role of viral proteins in glycolytic tumor metabolism, thus providing useful targets for the treatment of virus-induced tumors.
Insights
The human neurotropic virus, JCV, and its T-antigen are linked to brain tumors. Glucose deprivation suppresses T-antigen via AMPK, impacting cell cycle and metabolism, offering potential therapeutic targets for virus-induced tumors.
Area of Science:
- Oncology
- Virology
- Molecular Biology
Background:
- The human neurotropic virus, JCV, is detected in brain tumors like medulloblastomas.
- JCV T-antigen expression is linked to tumor development and interacts with tumor suppressors and signaling molecules.
Purpose of the Study:
- To investigate the regulation of JCV T-antigen expression under glucose deprivation.
- To explore the role of T-antigen in cellular metabolism and response to metabolic stress in brain tumor cells.
Main Methods:
- Studied T-antigen expression in medulloblastoma cells and glioblastoma xenografts under glucose deprivation.
- Investigated the role of AMP-activated protein kinase (AMPK), reactive oxygen species (ROS), and glycolytic enzymes (HK2, TALDO1).
- Utilized glucose and pentose phosphate pathway inhibitors (2-DG, 6-aminonicotinamide, oxythiamine).
Main Results:
- Glucose deprivation suppresses T-antigen expression, partly mediated by AMPK.
- T-antigen expression influences cell cycle progression (G1/G2 arrest) and prevents ROS production during glucose deprivation.
- T-antigen modulates expression of glycolytic enzymes HK2 and TALDO1, suggesting a link to metabolic regulation.
Conclusions:
- JCV T-antigen plays a role in medulloblastoma proliferation and metabolic phenotype.
- Understanding T-antigen's interaction with cellular metabolism may reveal therapeutic targets for virus-induced brain tumors.
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