Elucidating the Metabolic Plasticity of Cancer: Mitochondrial Reprogramming and Hybrid Metabolic States
Abstract
1. Introduction
2. Retrograde Regulation of Tumor Properties by Mitochondria
3. Significance of Mitochondrial Biogenesis and Respiration in EMT and Metastasis
4. Mitochondrial Dependency in Cancer Stemness
5. Emergence of a Hybrid Metabolic Phenotype in Cancer Cells
6. Cancer Mitochondrial Respiration Driven by Cancer-Associated Fibroblasts
7. Therapies towards Targeting the Metabolic Dependency of Cancer Cells
Acknowledgments
Conflicts of Interest
Abbreviations
2-DG | 2-deoxyglucose |
5mC | 5-methylcytosine |
AML | acute myeloid leukemia |
AMPK | AMP-activated protein kinase |
BCSCs | breast cancer stem cells |
BSCs | breast stem cells |
CAFs | cancer-associated fibroblasts |
Cav-1 | caveolin-1 |
chRCC | chromophobe renal cell carcinoma |
Cn | calcineurin |
CSCs | cancer stem cells |
CTCs | circulating tumor cells |
d-2HG | d-2-hydroxyglutarate |
DCA | dichloro-acetate |
DPYD | dihydropyrimidine dehydrogenase |
EMT | epithelial-to-mesenchymal transition |
EMT-TFs | EMT transcription factors |
ERRα | estrogen-related receptor α |
ESA | epithelial specific antigen |
ESCC | esophageal squamous cell carcinoma |
ETC | electron transport chain |
FAO | fatty acid -oxidation |
FH | fumarate hydratase |
HIF-1 | hypoxia-inducible factor-1 alpha |
HNSCC | head and neck squamous cell carcinoma |
hybrid E/M | hybrid epithelial/mesenchymal |
IDH | isocitrate dehydrogenase |
LDH | lactate dehydrogenase |
MET | mesenchymal-to-epithelial transition |
MITF | melanocyte lineage-specification transcription factor |
mtROS | mitochondrial reactive oxygen species |
mtDNA | mitochondrial DNA |
noxROS | NADPH oxidase-derived reactive oxygen species |
OXPHOS | oxidative phosphorylation |
PDAC | pancreatic ductal adenocarcinoma |
PDH | pyruvate dehydrogenase |
PGC-1 | peroxisome proliferator-activated receptor gamma coactivator 1 |
PKM2 | pyruvate kinase M2 isoform |
ROS | reactive oxygen species |
SDH | succinate dehydrogenase |
TNBC | triple negative breast cancer |
TCA | tricarboxylic acid |
TCGA | The Cancer Genome Atlas |
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Jia, D.; Park, J.H.; Jung, K.H.; Levine, H.; Kaipparettu, B.A. Elucidating the Metabolic Plasticity of Cancer: Mitochondrial Reprogramming and Hybrid Metabolic States. Cells 2018, 7, 21. https://doi.org/10.3390/cells7030021
Jia D, Park JH, Jung KH, Levine H, Kaipparettu BA. Elucidating the Metabolic Plasticity of Cancer: Mitochondrial Reprogramming and Hybrid Metabolic States. Cells. 2018; 7(3):21. https://doi.org/10.3390/cells7030021
Chicago/Turabian StyleJia, Dongya, Jun Hyoung Park, Kwang Hwa Jung, Herbert Levine, and Benny Abraham Kaipparettu. 2018. "Elucidating the Metabolic Plasticity of Cancer: Mitochondrial Reprogramming and Hybrid Metabolic States" Cells 7, no. 3: 21. https://doi.org/10.3390/cells7030021
APA StyleJia, D., Park, J. H., Jung, K. H., Levine, H., & Kaipparettu, B. A. (2018). Elucidating the Metabolic Plasticity of Cancer: Mitochondrial Reprogramming and Hybrid Metabolic States. Cells, 7(3), 21. https://doi.org/10.3390/cells7030021