Metabolic Reprogramming in Glioma

被引:257
作者
Strickland, Marie [1 ]
Stoll, Elizabeth A. [1 ]
机构
[1] Newcastle Univ, Inst Neurosci, Newcastle Upon Tyne, Tyne & Wear, England
关键词
glioma; cancer; brain tumors; mitochondria; metabolism; autophagy; catabolism; biosynthesis; ACTIVATED PROTEIN-KINASE; PENTOSE-PHOSPHATE PATHWAY; MITOCHONDRIAL COMPLEX III; HUMAN GLIOBLASTOMA CELLS; FATTY-ACID-METABOLISM; NEURAL STEM-CELLS; CANCER-CELLS; IN-VITRO; MALIGNANT GLIOMA; PRIMARY BRAIN;
D O I
10.3389/fcell.2017.00043
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Many cancers have long been thought to primarily metabolize glucose for energy production-a phenomenon known as the Warburg Effect, after the classic studies of Otto Warburg in the early twentieth century. Yet cancer cells also utilize other substrates, such as amino acids and fatty acids, to produce raw materials for cellular maintenance and energetic currency to accomplish cellular tasks. The contribution of these substrates is increasingly appreciated in the context of glioma, the most common form of malignant brain tumor. Multiple catabolic pathways are used for energy production within glioma cells, and are linked in many ways to anabolic pathways supporting cellular function. For example: glycolysis both supports energy production and provides carbon skeletons for the synthesis of nucleic acids; meanwhile fatty acids are used both as energetic substrates and as raw materials for lipid membranes. Furthermore, bio-energetic pathways are connected to pro-oncogenic signaling within glioma cells. For example: AMPK signaling links catabolism with cell cycle progression; mTOR signaling contributes to metabolic flexibility and cancer cell survival; the electron transport chain produces ATP and reactive oxygen species (ROS) which act as signaling molecules; Hypoxia Inducible Factors (HIFs) mediate interactions with cells and vasculature within the tumor environment. Mutations in the tumor suppressor p53, and the tricarboxylic acid cycle enzymes Isocitrate Dehydrogenase 1 and 2 have been implicated in oncogenic signaling as well as establishing metabolic phenotypes in genetically-defined subsets of malignant glioma. These pathways critically contribute to tumor biology. The aim of this review is two-fold. Firstly, we present the current state of knowledge regarding the metabolic strategies employed by malignant glioma cells, including aerobic glycolysis; the pentose phosphate pathway; one-carbon metabolism; the tricarboxylic acid cycle, which is central to amino acid metabolism; oxidative phosphorylation; and fatty acid metabolism, which significantly contributes to energy production in glioma cells. Secondly, we highlight processes (including the Randle Effect, AMPK signaling, mTOR activation, etc.) which are understood to link bio-energetic pathways with oncogenic signals, thereby allowing the glioma cell to achieve a pro-malignant state.
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页数:32
相关论文
共 244 条
[1]   The Ketogenic Diet Is an Effective Adjuvant to Radiation Therapy for the Treatment of Malignant Glioma [J].
Abdelwahab, Mohammed G. ;
Fenton, Kathryn E. ;
Preul, Mark C. ;
Rho, Jong M. ;
Lynch, Andrew ;
Stafford, Phillip ;
Scheck, Adrienne C. .
PLOS ONE, 2012, 7 (05)
[2]   A Role for Cytosolic Fumarate Hydratase in Urea Cycle Metabolism and Renal Neoplasia [J].
Adam, Julie ;
Yang, Ming ;
Bauerschmidt, Christina ;
Kitagawa, Mitsuhiro ;
O'Flaherty, Linda ;
Maheswaran, Pratheesh ;
Oezkan, Gizem ;
Sahgal, Natasha ;
Baban, Dilair ;
Kato, Keiko ;
Saito, Kaori ;
Iino, Keiko ;
Igarashi, Kaori ;
Stratford, Michael ;
Pugh, Christopher ;
Tennant, Daniel A. ;
Ludwig, Christian ;
Davies, Benjamin ;
Ratcliffe, Peter J. ;
El-Bahrawy, Mona ;
Ashrafian, Houman ;
Soga, Tomoyoshi ;
Pollard, Patrick J. .
CELL REPORTS, 2013, 3 (05) :1440-1448
[3]   Nrf2-driven TERT regulates pentose phosphate pathway in glioblastoma [J].
Ahmad, F. ;
Dixit, D. ;
Sharma, V. ;
Kumar, A. ;
Joshi, S. D. ;
Sarkar, C. ;
Sen, E. .
CELL DEATH & DISEASE, 2016, 7 :e2213-e2213
[4]   mTOR signaling in glioblastoma: lessons learned from bench to bedside [J].
Akhavan, David ;
Cloughesy, Timothy F. ;
Mischel, Paul S. .
NEURO-ONCOLOGY, 2010, 12 (08) :882-889
[5]   An efficient method for derivation and propagation of glioblastoma cell lines that conserves the molecular profile of their original tumours [J].
Al-Mayhani, Talal M. Fael ;
Ball, Siolian L. R. ;
Zhao, Jing-Wei ;
Fawcett, James ;
Lchimura, Koichi ;
Collins, Peter V. ;
Watts, Colin .
JOURNAL OF NEUROSCIENCE METHODS, 2009, 176 (02) :192-199
[6]   Response Assessment in Neuro-Oncology working group and European Association for Neuro-Oncology recommendations for the clinical use of PET imaging in gliomas [J].
Albert, Nathalie L. ;
Weller, Michael ;
Suchorska, Bogdana ;
Galldiks, Norbert ;
Soffietti, Riccardo ;
Kim, Michelle M. ;
La Fougere, Christian ;
Pope, Whitney ;
Law, Ian ;
Arbizu, Javier ;
Chamberlain, Marc C. ;
Vogelbaum, Michael ;
Ellingson, Ben M. ;
Tonn, Joerg C. .
NEURO-ONCOLOGY, 2016, 18 (09) :1199-1208
[7]  
Aldea M, 2011, J BUON, V16, P409
[8]   The role of LKB1 and AMPK in cellular responses to stress and damage [J].
Alexander, Angela ;
Walker, Cheryl L. .
FEBS LETTERS, 2011, 585 (07) :952-957
[9]   RETRACTED: Origin of the U87MG glioma cell line: Good news and bad news (Retracted article. See vol. 19, 2024) [J].
Allen, Marie ;
Bjerke, Mia ;
Edlund, Hanna ;
Nelander, Sven ;
Westermark, Bengt .
SCIENCE TRANSLATIONAL MEDICINE, 2016, 8 (354)
[10]  
[Anonymous], 2009, CBTRUS STAT REP PRIM