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Published on: July 21, 2018
Targeting Glycolytic Metabolism in Cancer Therapy: Current Approaches and Future Perspectives
Shuang Li1, Jie Gong1, Baorong Kang1
1School of Pharmacy, Hunan University of Chinese Medicine, Changsha 410208, China.
Abstract:
Targeting the Warburg effect (aerobic glycolysis) in tumor cells represents a promising metabolic therapeutic strategy in cancer research. This review analyzes the regulatory mechanisms and therapeutic potential of key glycolysis pathway components, including glucose transporters (GLUTs) and glycolytic enzymes such as hexokinase 2 (HK2), phosphofructokinase (PFK), glyceraldehyde-3-phosphate dehydrogenase (GAPDH), pyruvate kinase M2 (PKM2), and lactate dehydrogenase A (LDHA). We evaluate the molecular mechanisms of various inhibitors and the current clinical development landscape, noting that limitations of monotherapy stem not only from tumor metabolic plasticity but also largely from the unacceptable toxicity of many inhibitors due to the essential role of glycolysis in normal cell metabolism. Furthermore, we explore the molecular basis of synergistic interactions between glycolysis inhibitors and chemotherapy, radiotherapy, immunotherapy, photothermal therapy, and targeted therapy, proposing that rational combination strategies may help overcome resistance and improve therapeutic efficacy. Finally, the review outlines future challenges and directions, emphasizing that the primary obstacle in metabolic treatments is achieving selective inhibition of glycolytic enzymes in cancer cells while sparing normal cells. To address this challenge, the development of high-selectivity agents, cancer-specific nanodelivery systems, precise biomarker identification, and innovative combination regimens based on metabolic-immune regulation is crucial for advancing glycolysis-targeted therapy toward clinical translation.
Insights
Targeting cancer
Area of Science:
- Oncology
- Metabolic pathways
- Cancer therapeutics
Background:
- The Warburg effect, or aerobic glycolysis, is a hallmark of cancer metabolism.
- Targeting this pathway offers a promising therapeutic strategy for cancer treatment.
- Key glycolysis components like GLUTs and enzymes (HK2, PFK, GAPDH, PKM2, LDHA) are crucial.
Purpose of the Study:
- To review regulatory mechanisms and therapeutic potential of glycolysis pathway components.
- To evaluate inhibitors, clinical landscape, and limitations of monotherapy.
- To explore synergistic interactions and future directions for glycolysis-targeted therapy.
Main Methods:
- Review of literature on glycolysis pathway components and their inhibitors.
- Analysis of molecular mechanisms of inhibitors and clinical development.
- Exploration of combination strategies with other cancer therapies.
Main Results:
- Monotherapy limitations arise from tumor metabolic plasticity and off-target toxicity in normal cells.
- Synergistic interactions observed between glycolysis inhibitors and chemotherapy, radiotherapy, immunotherapy, photothermal therapy, and targeted therapy.
- Rational combination strategies show potential to overcome resistance and enhance efficacy.
Conclusions:
- Achieving selective inhibition of cancer cell glycolysis while sparing normal cells is the primary challenge.
- Development of high-selectivity agents, cancer-specific nanodelivery, biomarkers, and metabolic-immune combination regimens are crucial.
- These advancements are vital for clinical translation of glycolysis-targeted cancer therapy.
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