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Deciphering the Controversial Role of TP53 Inducible Glycolysis and Apoptosis Regulator (TIGAR) in Cancer Metabolism
Fatima I AlMaazmi1,2,3, Lara J Bou Malhab2, Leen ElDohaji1,2
1College of Medicine, University of Sharjah, Sharjah 27272, United Arab Emirates.
Abstract:
Tumor metabolism has emerged as a critical target in cancer therapy, revolutionizing our understanding of how cancer cells grow, survive, and respond to treatment. Historically, cancer research focused on genetic mutations driving tumorigenesis, but in recent decades, metabolic reprogramming has been recognized as a hallmark of cancer. The TP53 inducible glycolysis and apoptosis regulator, or TIGAR, affects a wide range of cellular and molecular processes and plays a key role in cancer cell metabolism by regulating the balance between glycolysis and antioxidant defense mechanisms. Cancer cells often exhibit a shift towards aerobic glycolysis (the Warburg effect), which allows rapid energy production and gives rise to biosynthetic intermediates for proliferation. By inhibiting glycolysis, TIGAR can reduce the proliferation rate of cancer cells, particularly in early-stage tumors or specific tissue types. This metabolic shift may limit the resources available for rapid cell division, thereby exerting a tumor-suppressive effect. However, this metabolic shift also leads to increased levels of reactive oxygen species (ROS), which can damage the cell if not properly managed. TIGAR helps protect cancer cells from excessive ROS by promoting the pentose phosphate pathway (PPP), which generates NADPH-a key molecule involved in antioxidant defense. Through its actions, TIGAR decreases the glycolytic flux while increasing the diversion of glucose-6-phosphate into the PPP. This reduces ROS levels and supports biosynthesis and cell survival by maintaining the balance of nucleotides and lipids. The role of TIGAR has been emerging as a prognostic and potential therapeutic target in different types of cancers. This review highlights the role of TIGAR in different types of cancer, evaluating its potential role as a diagnostic marker and a therapeutic target.
Insights
TP53 inducible glycolysis and apoptosis regulator (TIGAR) impacts cancer metabolism by balancing glycolysis and antioxidant defenses. TIGAR shows potential as a diagnostic marker and therapeutic target in various cancers.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Cancer metabolism is a critical therapeutic target, with metabolic reprogramming recognized as a hallmark of cancer.
- The TP53 inducible glycolysis and apoptosis regulator (TIGAR) influences cellular processes and cancer cell metabolism.
- Cancer cells often utilize aerobic glycolysis (Warburg effect) for energy and biosynthesis.
Purpose of the Study:
- To review the role of TIGAR in various cancer types.
- To evaluate TIGAR's potential as a diagnostic marker.
- To assess TIGAR as a therapeutic target in oncology.
Main Methods:
- Literature review on TIGAR's function in cancer metabolism.
- Analysis of TIGAR's impact on glycolysis and the pentose phosphate pathway (PPP).
- Evaluation of TIGAR's prognostic and therapeutic implications in different cancers.
Main Results:
- TIGAR regulates the balance between glycolysis and antioxidant defense mechanisms.
- By inhibiting glycolysis, TIGAR can reduce cancer cell proliferation and exert a tumor-suppressive effect.
- TIGAR promotes the pentose phosphate pathway (PPP), generating NADPH to manage reactive oxygen species (ROS) and support cell survival.
Conclusions:
- TIGAR plays a dual role in cancer, influencing both proliferation and ROS management.
- TIGAR's complex role in cancer metabolism suggests its potential as a prognostic and therapeutic target.
- Further research into TIGAR could lead to novel diagnostic and therapeutic strategies for cancer treatment.
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