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Published on: November 21, 2018
Aberrant Energy Metabolism in Tumors and Potential Therapeutic Targets
Shuhao Fan1,2, Jianhua Guo2, Hui Nie1,2
1Shandong First Medical University, Jinan, Shandong, People's Republic of China.
Abstract:
Energy metabolic reprogramming is frequently observed during tumor progression as tumor cells necessitate adequate energy production for rapid proliferation. Although current medical research shows promising prospects in studying the characteristics of tumor energy metabolism and developing anti-tumor drugs targeting energy metabolism, there is a lack of systematic compendiums and comprehensive reviews in this field. The objective of this study is to conduct a systematic review on the characteristics of tumor cells' energy metabolism, with a specific focus on comparing abnormalities between tumor and normal cells, as well as summarizing potential targets for tumor therapy. Additionally, this review also elucidates the aberrant mechanisms underlying four major energy metabolic pathways (glucose, lipid, glutamine, and mitochondria-dependent) during carcinogenesis and tumor progression. Through the utilization of graphical representations, we have identified anomalies in crucial energy metabolism pathways, encompassing transporter proteins (glucose transporter, CD36, and ASCT2), signaling molecules (Ras, AMPK, and PTEN), as well as transcription factors (Myc, HIF-1α, CREB-1, and p53). The key molecules responsible for aberrant energy metabolism in tumors may serve as potential targets for cancer therapy. Therefore, this review provides an overview of the distinct energy-generating pathways within tumor cells, laying the groundwork for developing innovative strategies for precise cancer treatment.
Insights
Tumor cells reprogram energy metabolism for rapid growth, altering pathways like glucose and lipid metabolism. Identifying these metabolic anomalies offers new targets for precise anti-cancer therapies.
Area of Science:
- Oncology
- Metabolic Biology
- Biochemistry
Background:
- Tumor progression is linked to significant energy metabolic reprogramming for rapid cell proliferation.
- Existing research highlights tumor energy metabolism but lacks systematic reviews and compendiums.
- Understanding these metabolic shifts is crucial for developing novel anti-cancer strategies.
Purpose of the Study:
- To systematically review tumor cell energy metabolism characteristics.
- To compare metabolic abnormalities between tumor and normal cells.
- To identify potential therapeutic targets for cancer treatment.
Main Methods:
- Systematic review of literature on tumor energy metabolism.
- Analysis of aberrant mechanisms in glucose, lipid, glutamine, and mitochondria-dependent pathways.
- Identification of key molecular players including transporters, signaling molecules, and transcription factors.
Main Results:
- Aberrant energy metabolism is a hallmark of cancer, affecting key pathways.
- Identified anomalies in transporters (e.g., glucose transporter, CD36, ASCT2).
- Highlighted dysregulation in signaling molecules (e.g., Ras, AMPK, PTEN) and transcription factors (e.g., Myc, HIF-1α, p53).
Conclusions:
- Key molecules driving aberrant tumor energy metabolism are potential therapeutic targets.
- This review provides a foundation for innovative, precise cancer treatment strategies.
- Understanding distinct tumor energy-generating pathways is vital for future drug development.
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