Deregulated Metabolic Pathways in Ovarian Cancer: Cause and Consequence
Abstract
1. Introduction
1.1. Somatic Driver Mutations
1.1.1. Her-2/neu
1.1.2. c-MYC
1.1.3. KRAS
1.1.4. BTAK
1.1.5. TP53
1.1.6. BRCA1
1.1.7. BRCA2
1.1.8. PTEN
2. Deregulated Metabolic Pathways in Ovarian Cancer
2.1. Glycolysis
Outcome of Somatic Driver Mutations in Glycolysis
2.2. Tricarboxylic Acid Cycle
Outcome of Somatic Driver Mutations in the TCA Cycle
2.3. Amino Acid Metabolism
Outcome of Somatic Driver Mutations in Amino Acid Metabolism
2.4. Fatty Acid Metabolism
Outcome of Somatic Driver Mutations in Fatty Acid Metabolism
Metabolic Pathway | Metabolic Proteins | Differential Expression | References |
---|---|---|---|
Glycolysis | GLUT1 | Overexpression | [73,74] |
HK2 | Overexpression | [77] | |
PFK | Overexpression | [89,90] | |
LDHA | Overexpression | [80,81] | |
Tricarboxylic acid cycle | IDH1 | Overexpression | [118] |
SDHB | Reduced expression | [125,126] | |
CS | Overexpression | [127] | |
Amino acid metabolism | LAT1 | Overexpression | [168,193] |
ASCT2 | Overexpression | [144,145] | |
BCAT1 | Overexpression | [197,198] | |
GLS | Overexpression | [147,148] | |
ASS1 | Overexpression | [187] | |
BCKDK | Overexpression | [199] | |
CAT1 | Overexpression | [182] | |
ASCT1 | Overexpression | [168] | |
SHMT2 | Overexpression | [178] | |
PSAT1 | Overexpression | [175] | |
PHGDH | Overexpression | [173] | |
Fatty acid metabolism | CD36 | Overexpression | |
FABP4 | Overexpression | [221] | |
ACLY | Overexpression | [236,237,238] | |
ACC | Overexpression | [236,237,238] | |
FASN | Overexpression | [226,227,228] | |
SCD1 | Overexpression | [229] | |
FADS2 | Overexpression | [231] |
3. FDA-Approved Drugs Targeting Ovarian Cancer and Their Role in Cancer Metabolism
3.1. Chemotherapeutic Drugs
3.2. Monoclonal Antibodies
3.3. Small Molecule Inhibitors
Class of the Drug | FDA-Approved Drug | Role of the Drug in Cancer Metabolism | References |
---|---|---|---|
Chemotherapeutic drugs | Melphalan | Melphalan efficiently targeted the DNA repair mechanisms in ovarian cancer patients with BRCA1/2 mutations. | [247,248,249] |
Carboplatin | Carboplatin in combination with PFK158 promoted lipophagy in chemoresistant cells. | [251] | |
Cisplatin | Cisplatin interacted with GSH and regulated ROS homeostasis. Cisplatin redirected the cancer cells from the aerobic glycolysis to oxidative phosphorylation. Cisplatin downregulated HK2 and PDK. | [253,254,255,256,257,258] | |
Cyclophosphamide | Cyclophosphamide was identified to trigger ferroptosis by increasing the ROS and intracellular iron levels and by decreasing GSH levels. | [261] | |
Doxorubicin | Doxorubicin stimulated fatty acid oxidation and inhibit de novo lipogenesis by the activation of p53. Doxorubicin induced ROS in the mitochondria, with the help of NADPH oxidase enzyme. | [263,264] | |
Gemcitabine hydrochloride | The overexpression of the FASN enzyme promoted resistance in cancer cells that were treated with gemcitabine. | [266] | |
Paclitaxel | Paclitaxel decreased the levels of glucose-1,6-bisphosphate and fructose-1,6-bisphosphate and caused the detachment of phosphofructokinase from the cytoskeleton of cancer cells. | [269] | |
Topotecan hydrochloride | Topotecan in combination with DT-13 inhibited HK2 activity which in turn suppressed aerobic glycolysis. | [271] | |
Monoclonal antibodies | Bevacizumab | Bevacizumab induced lipid metabolic rewiring and upregulated pathways that are involved in lipid metabolism in ovarian cancer. | [273] |
Mirvetuximab soravtansine-gynx | Mirvetuximab deregulated folate metabolism by binding and blocking FOLR1 receptor. | [275] | |
Small molecule inhibitors | Olaparib | Enacted metabolic reprogramming of glutamine-derived amino acids and lipid metabolism in Olaparib-treated cancer cells. Olaparib caused metabolic shift from anaerobic glycolysis to tricarboxylic acid cycle which was induced resulting in increased ATP synthesis. | [278,281,282] |
Niraparib tosylate | Niraparib-adapted tumor cells had lesser levels of stored glucose as GSK3 phosphorylates the enzyme glycogen synthase. Niraparib induced a metabolic shift to tri-carboxylic acid cycle from anaerobic glycolysis which resulted in increased ATP synthesis. | [280,281,282] |
4. Conclusions and Future Perspective
Author Contributions
Funding
Conflicts of Interest
References
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Class of the Gene | Frequency of Somatic Mutations | Frequency of Germline Mutations | Gene | Genetic Alterations | References |
---|---|---|---|---|---|
Oncogenes | 0.9% | Her-2/neu | Amplification | [22,23,24] | |
c-MYC | Amplification Copy Number Variation | [25,26,27] | |||
0.6% | KRAS | Mutations in codon 12 and 13 | [28,29,30] | ||
BTAK | Amplification | [31,32] | |||
Tumor Suppressor Genes | 95.9% | TP53 | Loss of Heterozygosity Driver Mutations Missense Mutations | [33,34,35,36,37,38] | |
3.5% | 8.2% | BRCA1 | Germline and Somatic mutations | [36,37,38] | |
3.2% | 7.9% | BRCA2 | Germline and Somatic mutations | [39,40,41] | |
0.6% | PTEN | Driver Mutations | [39,40,41,42,43] |
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Murali, R.; Balasubramaniam, V.; Srinivas, S.; Sundaram, S.; Venkatraman, G.; Warrier, S.; Dharmarajan, A.; Gandhirajan, R.K. Deregulated Metabolic Pathways in Ovarian Cancer: Cause and Consequence. Metabolites 2023, 13, 560. https://doi.org/10.3390/metabo13040560
Murali R, Balasubramaniam V, Srinivas S, Sundaram S, Venkatraman G, Warrier S, Dharmarajan A, Gandhirajan RK. Deregulated Metabolic Pathways in Ovarian Cancer: Cause and Consequence. Metabolites. 2023; 13(4):560. https://doi.org/10.3390/metabo13040560
Chicago/Turabian StyleMurali, Roopak, Vaishnavi Balasubramaniam, Satish Srinivas, Sandhya Sundaram, Ganesh Venkatraman, Sudha Warrier, Arun Dharmarajan, and Rajesh Kumar Gandhirajan. 2023. "Deregulated Metabolic Pathways in Ovarian Cancer: Cause and Consequence" Metabolites 13, no. 4: 560. https://doi.org/10.3390/metabo13040560
APA StyleMurali, R., Balasubramaniam, V., Srinivas, S., Sundaram, S., Venkatraman, G., Warrier, S., Dharmarajan, A., & Gandhirajan, R. K. (2023). Deregulated Metabolic Pathways in Ovarian Cancer: Cause and Consequence. Metabolites, 13(4), 560. https://doi.org/10.3390/metabo13040560