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Published in: Nutrition & Metabolism 1/2005

Open Access 01-12-2005 | Review

Targeting energy metabolism in brain cancer: review and hypothesis

Authors: Thomas N Seyfried, Purna Mukherjee

Published in: Nutrition & Metabolism | Issue 1/2005

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Abstract

Malignant brain tumors are a significant health problem in children and adults and are often unmanageable. As a metabolic disorder involving the dysregulation of glycolysis and respiration, malignant brain cancer is potentially manageable through changes in metabolic environment. A radically different approach to brain cancer management is proposed that combines metabolic control analysis with the evolutionarily conserved capacity of normal cells to survive extreme shifts in physiological environment. In contrast to malignant brain tumors that are largely dependent on glycolysis for energy, normal neurons and glia readily transition to ketone bodies (β-hydroxybutyrate) for energy in vivo when glucose levels are reduced. The bioenergetic transition from glucose to ketone bodies metabolically targets brain tumors through integrated anti-inflammatory, anti-angiogenic, and pro-apoptotic mechanisms. The approach focuses more on the genomic flexibility of normal cells than on the genomic defects of tumor cells and is supported from recent studies in orthotopic mouse brain tumor models and in human pediatric astrocytoma treated with dietary energy restriction and the ketogenic diet.
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Literature
1.
go back to reference Kaiser J: No meeting of minds on childhood cancer. Science. 1999, 286: 1832-1834. 10.1126/science.286.5446.1832.CrossRef Kaiser J: No meeting of minds on childhood cancer. Science. 1999, 286: 1832-1834. 10.1126/science.286.5446.1832.CrossRef
2.
go back to reference Lowry JK, Snyder JJ, Lowry PW: Brain tumors in the elderly: recent trends in a Minnesota cohort study. Arch Neurol. 1998, 55: 922-928. 10.1001/archneur.55.7.922.CrossRef Lowry JK, Snyder JJ, Lowry PW: Brain tumors in the elderly: recent trends in a Minnesota cohort study. Arch Neurol. 1998, 55: 922-928. 10.1001/archneur.55.7.922.CrossRef
3.
go back to reference Kaatsch P, Rickert CH, Kuhl J, Schuz J, Michaelis J: Population-based epidemiologic data on brain tumors in German children. Cancer. 2001, 92: 3155-3164. 10.1002/1097-0142(20011215)92:12<3155::AID-CNCR10158>3.0.CO;2-C.CrossRef Kaatsch P, Rickert CH, Kuhl J, Schuz J, Michaelis J: Population-based epidemiologic data on brain tumors in German children. Cancer. 2001, 92: 3155-3164. 10.1002/1097-0142(20011215)92:12<3155::AID-CNCR10158>3.0.CO;2-C.CrossRef
4.
go back to reference Jukich PJ, McCarthy BJ, Surawicz TS, Freels S, Davis FG: Trends in incidence of primary brain tumors in the United States, 1985–1994. Neuro-oncol. 2001, 3: 141-151. 10.1215/S1522851700000557. Jukich PJ, McCarthy BJ, Surawicz TS, Freels S, Davis FG: Trends in incidence of primary brain tumors in the United States, 1985–1994. Neuro-oncol. 2001, 3: 141-151. 10.1215/S1522851700000557.
5.
go back to reference Zimmerman HM: The nature of gliomas as revealed by animal experimentation. Amer J Pathol. 1955, 31: 1-29. Zimmerman HM: The nature of gliomas as revealed by animal experimentation. Amer J Pathol. 1955, 31: 1-29.
6.
go back to reference Chang SM, Parney IF, Huang W, Anderson FA, Asher AL, Bernstein M, Lillehei KO, Brem H, Berger MS, Laws ER: Patterns of care for adults with newly diagnosed malignant glioma. Jama. 2005, 293: 557-564. 10.1001/jama.293.5.557.CrossRef Chang SM, Parney IF, Huang W, Anderson FA, Asher AL, Bernstein M, Lillehei KO, Brem H, Berger MS, Laws ER: Patterns of care for adults with newly diagnosed malignant glioma. Jama. 2005, 293: 557-564. 10.1001/jama.293.5.557.CrossRef
7.
go back to reference Fisher PG, Buffler PA: Malignant gliomas in 2005: where to GO from here?. Jama. 2005, 293: 615-617. 10.1001/jama.293.5.615.CrossRef Fisher PG, Buffler PA: Malignant gliomas in 2005: where to GO from here?. Jama. 2005, 293: 615-617. 10.1001/jama.293.5.615.CrossRef
8.
go back to reference Seyfried TN: Perspectives on brain tumor formation involving macrophages, glia, and neural stem cells. Perspect Biol Med. 2001, 44: 263-282.CrossRef Seyfried TN: Perspectives on brain tumor formation involving macrophages, glia, and neural stem cells. Perspect Biol Med. 2001, 44: 263-282.CrossRef
9.
go back to reference Sonnenschein C, Soto AM: The Society of Cells: Cancer and the Control of Cell Proliferation. 1999, New York: Springer-Verlag Sonnenschein C, Soto AM: The Society of Cells: Cancer and the Control of Cell Proliferation. 1999, New York: Springer-Verlag
10.
go back to reference Shapiro WR: Current therapy for brain tumors: back to the future. Arch Neurol. 1999, 56: 429-432. 10.1001/archneur.56.4.429.CrossRef Shapiro WR: Current therapy for brain tumors: back to the future. Arch Neurol. 1999, 56: 429-432. 10.1001/archneur.56.4.429.CrossRef
11.
go back to reference Sonnenschein C, Soto AM: Somatic mutation theory of carcinogenesis: why it should be dropped and replaced. Mol Carcinog. 2000, 29: 205-211. 10.1002/1098-2744(200012)29:4<205::AID-MC1002>3.0.CO;2-W.CrossRef Sonnenschein C, Soto AM: Somatic mutation theory of carcinogenesis: why it should be dropped and replaced. Mol Carcinog. 2000, 29: 205-211. 10.1002/1098-2744(200012)29:4<205::AID-MC1002>3.0.CO;2-W.CrossRef
12.
go back to reference Kiebish MA, Seyfried TN: Absence of pathogenic mitochondrial DNA mutations in mouse brain tumors. BMC Cancer. 2005, 5: 102-10.1186/1471-2407-5-102.CrossRef Kiebish MA, Seyfried TN: Absence of pathogenic mitochondrial DNA mutations in mouse brain tumors. BMC Cancer. 2005, 5: 102-10.1186/1471-2407-5-102.CrossRef
13.
go back to reference Stupp R, Mason WP, van den Bent MJ, Weller M, Fisher B, Taphoorn MJ, Belanger K, Brandes AA, Marosi C, Bogdahn U: Radiotherapy plus concomitant and adjuvant temozolomide for glioblastoma. N Engl J Med. 2005, 352: 987-996. 10.1056/NEJMoa043330.CrossRef Stupp R, Mason WP, van den Bent MJ, Weller M, Fisher B, Taphoorn MJ, Belanger K, Brandes AA, Marosi C, Bogdahn U: Radiotherapy plus concomitant and adjuvant temozolomide for glioblastoma. N Engl J Med. 2005, 352: 987-996. 10.1056/NEJMoa043330.CrossRef
14.
go back to reference Veech RL: The therapeutic implications of ketone bodies: the effects of ketone bodies in pathological conditions: ketosis, ketogenic diet, redox states, insulin resistance, and mitochondrial metabolism. Prostaglandins Leukot Essent Fatty Acids. 2004, 70: 309-319. 10.1016/j.plefa.2003.09.007.CrossRef Veech RL: The therapeutic implications of ketone bodies: the effects of ketone bodies in pathological conditions: ketosis, ketogenic diet, redox states, insulin resistance, and mitochondrial metabolism. Prostaglandins Leukot Essent Fatty Acids. 2004, 70: 309-319. 10.1016/j.plefa.2003.09.007.CrossRef
15.
go back to reference Greene AE, Todorova MT, Seyfried TN: Perspectives on the metabolic management of epilepsy through dietary reduction of glucose and elevation of ketone bodies. J Neurochem. 2003, 86: 529-537. 10.1046/j.1471-4159.2003.01862.x.CrossRef Greene AE, Todorova MT, Seyfried TN: Perspectives on the metabolic management of epilepsy through dietary reduction of glucose and elevation of ketone bodies. J Neurochem. 2003, 86: 529-537. 10.1046/j.1471-4159.2003.01862.x.CrossRef
17.
go back to reference Strohman R: Maneuvering in the complex path from genotype to phenotype. Science. 2002, 296: 701-703. 10.1126/science.1070534.CrossRef Strohman R: Maneuvering in the complex path from genotype to phenotype. Science. 2002, 296: 701-703. 10.1126/science.1070534.CrossRef
18.
go back to reference Kacser H, Burns JA: The molecular basis of dominance. Genetics. 1981, 97: 639-666. Kacser H, Burns JA: The molecular basis of dominance. Genetics. 1981, 97: 639-666.
19.
go back to reference Greenspan RJ: The flexible genome. Nat Rev Genet. 2001, 2: 383-387. 10.1038/35072018.CrossRef Greenspan RJ: The flexible genome. Nat Rev Genet. 2001, 2: 383-387. 10.1038/35072018.CrossRef
20.
go back to reference Seyfried TN, Mukherjee P, Adams E, Mulroony T, Abate LE: Metabolic Control of Brain Cancer: Role of Glucose and Ketone Bodies. Proc Amer Assoc Cancer Res. 2005, 46: 1147- Seyfried TN, Mukherjee P, Adams E, Mulroony T, Abate LE: Metabolic Control of Brain Cancer: Role of Glucose and Ketone Bodies. Proc Amer Assoc Cancer Res. 2005, 46: 1147-
21.
go back to reference Seyfried TN, Sanderson TM, El-Abbadi MM, McGowan R, Mukherjee P: Role of glucose and ketone bodies in the metabolic control of experimental brain cancer. Br J Cancer. 2003, 89: 1375-1382. 10.1038/sj.bjc.6601269.CrossRef Seyfried TN, Sanderson TM, El-Abbadi MM, McGowan R, Mukherjee P: Role of glucose and ketone bodies in the metabolic control of experimental brain cancer. Br J Cancer. 2003, 89: 1375-1382. 10.1038/sj.bjc.6601269.CrossRef
22.
go back to reference Kirsch WM, Schulz Q, Van Buskirk J, Nakane P: Anaerobic energy metabolism in brain tumors. Prog Exp Tumor Res. 1972, 17: 163-191.CrossRef Kirsch WM, Schulz Q, Van Buskirk J, Nakane P: Anaerobic energy metabolism in brain tumors. Prog Exp Tumor Res. 1972, 17: 163-191.CrossRef
23.
go back to reference Mangiardi JR, Yodice P: Metabolism of the malignant astrocytoma. Neurosurgery. 1990, 26: 1-19. 10.1097/00006123-199001000-00001.CrossRef Mangiardi JR, Yodice P: Metabolism of the malignant astrocytoma. Neurosurgery. 1990, 26: 1-19. 10.1097/00006123-199001000-00001.CrossRef
24.
go back to reference Lichtor T, Dohrmann GJ: Respiratory patterns in human brain tumors. Neurosurgery. 1986, 19: 896-899.CrossRef Lichtor T, Dohrmann GJ: Respiratory patterns in human brain tumors. Neurosurgery. 1986, 19: 896-899.CrossRef
25.
go back to reference Lowry OH, Passonneau JV, Hasselberger FX, Shulz DW: Effect of ischemia on known substrates and cofactors of the glycolytic pathway in brain. J Biol Chem. 1964, 239: 18-30. Lowry OH, Passonneau JV, Hasselberger FX, Shulz DW: Effect of ischemia on known substrates and cofactors of the glycolytic pathway in brain. J Biol Chem. 1964, 239: 18-30.
26.
go back to reference Clarke DD, Sokoloff L: Circulation and energy metabolism in the brain. Basic Neurochemistry. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 637-669. sixth Clarke DD, Sokoloff L: Circulation and energy metabolism in the brain. Basic Neurochemistry. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 637-669. sixth
27.
28.
go back to reference Ebert D, Haller RG, Walton ME: Energy contribution of octanoate to intact rat brain metabolism measured by 13C nuclear magnetic resonance spectroscopy. J Neurosci. 2003, 23: 5928-5935. Ebert D, Haller RG, Walton ME: Energy contribution of octanoate to intact rat brain metabolism measured by 13C nuclear magnetic resonance spectroscopy. J Neurosci. 2003, 23: 5928-5935.
29.
go back to reference Allen NJ, Karadottir R, Attwell D: A preferential role for glycolysis in preventing the anoxic depolarization of rat hippocampal area CA1 pyramidal cells. J Neurosci. 2005, 25: 848-859. 10.1523/JNEUROSCI.4157-04.2005.CrossRef Allen NJ, Karadottir R, Attwell D: A preferential role for glycolysis in preventing the anoxic depolarization of rat hippocampal area CA1 pyramidal cells. J Neurosci. 2005, 25: 848-859. 10.1523/JNEUROSCI.4157-04.2005.CrossRef
30.
go back to reference Pellerin L, Pellegri G, Martin JL, Magistretti PJ: Expression of monocarboxylate transporter mRNAs in mouse brain: support for a distinct role of lactate as an energy substrate for the neonatal vs. adult brain. Proc Natl Acad Sci U S A. 1998, 95: 3990-3995. 10.1073/pnas.95.7.3990.CrossRef Pellerin L, Pellegri G, Martin JL, Magistretti PJ: Expression of monocarboxylate transporter mRNAs in mouse brain: support for a distinct role of lactate as an energy substrate for the neonatal vs. adult brain. Proc Natl Acad Sci U S A. 1998, 95: 3990-3995. 10.1073/pnas.95.7.3990.CrossRef
31.
go back to reference Pellerin L, Bergersen LH, Halestrap AP, Pierre K: Cellular and subcellular distribution of monocarboxylate transporters in cultured brain cells and in the adult brain. J Neurosci Res. 2005, 79: 55-64. 10.1002/jnr.20307.CrossRef Pellerin L, Bergersen LH, Halestrap AP, Pierre K: Cellular and subcellular distribution of monocarboxylate transporters in cultured brain cells and in the adult brain. J Neurosci Res. 2005, 79: 55-64. 10.1002/jnr.20307.CrossRef
32.
go back to reference Owen OE, Morgan AP, Kemp HG, Sullivan JM, Herrera MG, Cahill GF: Brain metabolism during fasting. J Clin Invest. 1967, 46: 1589-1595.CrossRef Owen OE, Morgan AP, Kemp HG, Sullivan JM, Herrera MG, Cahill GF: Brain metabolism during fasting. J Clin Invest. 1967, 46: 1589-1595.CrossRef
33.
go back to reference VanItallie TB, Nufert TH: Ketones: metabolism's ugly duckling. Nutr Rev. 2003, 61: 327-341. 10.1301/nr.2003.oct.327-341.CrossRef VanItallie TB, Nufert TH: Ketones: metabolism's ugly duckling. Nutr Rev. 2003, 61: 327-341. 10.1301/nr.2003.oct.327-341.CrossRef
34.
go back to reference Morris AA: Cerebral ketone body metabolism. J Inherit Metab Dis. 2005, 28: 109-121. 10.1007/s10545-005-5518-0.CrossRef Morris AA: Cerebral ketone body metabolism. J Inherit Metab Dis. 2005, 28: 109-121. 10.1007/s10545-005-5518-0.CrossRef
35.
go back to reference Cahill GF, Veech RL: Ketoacids? Good medicine?. Trans Am Clin Climatol Assoc. 2003, 114: 149-161. discussion 162–143 Cahill GF, Veech RL: Ketoacids? Good medicine?. Trans Am Clin Climatol Assoc. 2003, 114: 149-161. discussion 162–143
36.
go back to reference Mantis JG, Centeno NA, Todorova MT, McGowan R, Seyfried TN: Management of multifactorial idiopathic epilepsy in EL mice with caloric restriction and the ketogenic diet: role of glucose and ketone bodies. Nutr Metab (Lond). 2004, 1: 11-10.1186/1743-7075-1-11.CrossRef Mantis JG, Centeno NA, Todorova MT, McGowan R, Seyfried TN: Management of multifactorial idiopathic epilepsy in EL mice with caloric restriction and the ketogenic diet: role of glucose and ketone bodies. Nutr Metab (Lond). 2004, 1: 11-10.1186/1743-7075-1-11.CrossRef
37.
go back to reference Seyfried TN, Mukherjee P: Anti-Angiogenic and Pro-Apoptotic Effects of Dietary Restriction in Experimental Brain Cancer: Role of Glucose and Ketone Bodies. Integration/Interaction of Oncologic Growth. Edited by: Meadows GG. 2005, New York: Kluwer Academic, 15: 2 Seyfried TN, Mukherjee P: Anti-Angiogenic and Pro-Apoptotic Effects of Dietary Restriction in Experimental Brain Cancer: Role of Glucose and Ketone Bodies. Integration/Interaction of Oncologic Growth. Edited by: Meadows GG. 2005, New York: Kluwer Academic, 15: 2
38.
go back to reference Leino RL, Gerhart DZ, Duelli R, Enerson BE, Drewes LR: Diet-induced ketosis increases monocarboxylate transporter (MCT1) levels in rat brain. Neurochem Int. 2001, 38: 519-527. 10.1016/S0197-0186(00)00102-9.CrossRef Leino RL, Gerhart DZ, Duelli R, Enerson BE, Drewes LR: Diet-induced ketosis increases monocarboxylate transporter (MCT1) levels in rat brain. Neurochem Int. 2001, 38: 519-527. 10.1016/S0197-0186(00)00102-9.CrossRef
39.
go back to reference Koehler-Stec EM, Simpson IA, Vannucci SJ, Landschulz KT, Landschulz WH: Monocarboxylate transporter expression in mouse brain. Am J Physiol. 1998, 275: E516-524. Koehler-Stec EM, Simpson IA, Vannucci SJ, Landschulz KT, Landschulz WH: Monocarboxylate transporter expression in mouse brain. Am J Physiol. 1998, 275: E516-524.
40.
go back to reference Zhang F, Vannucci SJ, Philp NJ, Simpson IA: Monocarboxylate transporter expression in the spontaneous hypertensive rat: effect of stroke. J Neurosci Res. 2005, 79: 139-145. 10.1002/jnr.20312.CrossRef Zhang F, Vannucci SJ, Philp NJ, Simpson IA: Monocarboxylate transporter expression in the spontaneous hypertensive rat: effect of stroke. J Neurosci Res. 2005, 79: 139-145. 10.1002/jnr.20312.CrossRef
41.
go back to reference Pan JW, de Graaf RA, Rothman DL, Hetherington HP: 13C-[2,4]-b-hydroxybutyrate metabolism in human brain. J Neurochem. 2002, 81 (suppl 1): 45- Pan JW, de Graaf RA, Rothman DL, Hetherington HP: 13C-[2,4]-b-hydroxybutyrate metabolism in human brain. J Neurochem. 2002, 81 (suppl 1): 45-
42.
go back to reference Fredericks M, Ramsey RB: 3-Oxo acid coenzyme A transferase activity in brain and tumors of the nervous system. J Neurochem. 1978, 31: 1529-1531.CrossRef Fredericks M, Ramsey RB: 3-Oxo acid coenzyme A transferase activity in brain and tumors of the nervous system. J Neurochem. 1978, 31: 1529-1531.CrossRef
43.
go back to reference Bhagavan NV: Medical Biochemistry. 2002, New York: Harcourt, Fourth Bhagavan NV: Medical Biochemistry. 2002, New York: Harcourt, Fourth
44.
go back to reference Veech RL, Chance B, Kashiwaya Y, Lardy HA, Cahill GF: Ketone bodies, potential therapeutic uses. IUBMB Life. 2001, 51: 241-247.CrossRef Veech RL, Chance B, Kashiwaya Y, Lardy HA, Cahill GF: Ketone bodies, potential therapeutic uses. IUBMB Life. 2001, 51: 241-247.CrossRef
45.
go back to reference Laterra J, Keep R, Betz AL, Goldstein GW: Blood-brain-cerebrospinal fluid barriers. Basic Neurochemistry: Molecular, Cellular and Medical Aspects. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 671-689. sixth Laterra J, Keep R, Betz AL, Goldstein GW: Blood-brain-cerebrospinal fluid barriers. Basic Neurochemistry: Molecular, Cellular and Medical Aspects. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 671-689. sixth
46.
go back to reference Fanelli C, Di Vincenzo A, Modarelli F, Lepore M, Ciofetta M, Epifano L, Pampanelli S, Brunetti P, Bolli GB: Post-hypoglycaemic hyperketonaemia does not contribute to brain metabolism during insulin-induced hypoglycaemia in humans. Diabetologia. 1993, 36: 1191-1197. 10.1007/BF00401065.CrossRef Fanelli C, Di Vincenzo A, Modarelli F, Lepore M, Ciofetta M, Epifano L, Pampanelli S, Brunetti P, Bolli GB: Post-hypoglycaemic hyperketonaemia does not contribute to brain metabolism during insulin-induced hypoglycaemia in humans. Diabetologia. 1993, 36: 1191-1197. 10.1007/BF00401065.CrossRef
47.
go back to reference Kashiwaya Y, Takeshima T, Mori N, Nakashima K, Clarke K, Veech RL: D-beta-hydroxybutyrate protects neurons in models of Alzheimer's and Parkinson's disease. Proc Natl Acad Sci U S A. 2000, 97: 5440-5444. 10.1073/pnas.97.10.5440.CrossRef Kashiwaya Y, Takeshima T, Mori N, Nakashima K, Clarke K, Veech RL: D-beta-hydroxybutyrate protects neurons in models of Alzheimer's and Parkinson's disease. Proc Natl Acad Sci U S A. 2000, 97: 5440-5444. 10.1073/pnas.97.10.5440.CrossRef
48.
go back to reference Masuda R, Monahan JW, Kashiwaya Y: D-beta-hydroxybutyrate is neuroprotective against hypoxia in serum-free hippocampal primary cultures. J Neurosci Res. 2005, 80: 501-509. 10.1002/jnr.20464.CrossRef Masuda R, Monahan JW, Kashiwaya Y: D-beta-hydroxybutyrate is neuroprotective against hypoxia in serum-free hippocampal primary cultures. J Neurosci Res. 2005, 80: 501-509. 10.1002/jnr.20464.CrossRef
49.
go back to reference Nehlig A, Pereira de Vasconcelos A: Glucose and ketone body utilization by the brain of neonatal rats. Prog Neurobiol. 1993, 40: 163-221. 10.1016/0301-0082(93)90022-K.CrossRef Nehlig A, Pereira de Vasconcelos A: Glucose and ketone body utilization by the brain of neonatal rats. Prog Neurobiol. 1993, 40: 163-221. 10.1016/0301-0082(93)90022-K.CrossRef
50.
go back to reference Sato K, Kashiwaya Y, Keon CA, Tsuchiya N, King MT, Radda GK, Chance B, Clarke K, Veech RL: Insulin, ketone bodies, and mitochondrial energy transduction. Faseb J. 1995, 9: 651-658. Sato K, Kashiwaya Y, Keon CA, Tsuchiya N, King MT, Radda GK, Chance B, Clarke K, Veech RL: Insulin, ketone bodies, and mitochondrial energy transduction. Faseb J. 1995, 9: 651-658.
51.
go back to reference Chance B, Sies H, Boveris A: Hydroperoxide metabolism in mammalian organs. Physiol Rev. 1979, 59: 527-605. Chance B, Sies H, Boveris A: Hydroperoxide metabolism in mammalian organs. Physiol Rev. 1979, 59: 527-605.
52.
go back to reference Rhodes CG, Wise RJ, Gibbs JM, Frackowiak RS, Hatazawa J, Palmer AJ, Thomas DG, Jones T: In vivo disturbance of the oxidative metabolism of glucose in human cerebral gliomas. Ann Neurol. 1983, 14: 614-626. 10.1002/ana.410140604.CrossRef Rhodes CG, Wise RJ, Gibbs JM, Frackowiak RS, Hatazawa J, Palmer AJ, Thomas DG, Jones T: In vivo disturbance of the oxidative metabolism of glucose in human cerebral gliomas. Ann Neurol. 1983, 14: 614-626. 10.1002/ana.410140604.CrossRef
53.
go back to reference Nagamatsu S, Nakamichi Y, Inoue N, Inoue M, Nishino H, Sawa H: Rat C6 glioma cell growth is related to glucose transport and metabolism. Biochem J. 1996, 319 (Pt 2): 477-482.CrossRef Nagamatsu S, Nakamichi Y, Inoue N, Inoue M, Nishino H, Sawa H: Rat C6 glioma cell growth is related to glucose transport and metabolism. Biochem J. 1996, 319 (Pt 2): 477-482.CrossRef
54.
go back to reference Roslin M, Henriksson R, Bergstrom P, Ungerstedt U, Bergenheim AT: Baseline levels of glucose metabolites, glutamate and glycerol in malignant glioma assessed by stereotactic microdialysis. J Neurooncol. 2003, 61: 151-160. 10.1023/A:1022106910017.CrossRef Roslin M, Henriksson R, Bergstrom P, Ungerstedt U, Bergenheim AT: Baseline levels of glucose metabolites, glutamate and glycerol in malignant glioma assessed by stereotactic microdialysis. J Neurooncol. 2003, 61: 151-160. 10.1023/A:1022106910017.CrossRef
55.
go back to reference Floridi A, Paggi MG, Fanciulli M: Modulation of glycolysis in neuroepithelial tumors. J Neurosurg Sci. 1989, 33: 55-64. Floridi A, Paggi MG, Fanciulli M: Modulation of glycolysis in neuroepithelial tumors. J Neurosurg Sci. 1989, 33: 55-64.
56.
go back to reference Galarraga J, Loreck DJ, Graham JF, DeLaPaz RL, Smith BH, Hallgren D, Cummins CJ: Glucose metabolism in human gliomas: correspondence of in situ and in vitro metabolic rates and altered energy metabolism. Metab Brain Dis. 1986, 1: 279-291. 10.1007/BF00999357.CrossRef Galarraga J, Loreck DJ, Graham JF, DeLaPaz RL, Smith BH, Hallgren D, Cummins CJ: Glucose metabolism in human gliomas: correspondence of in situ and in vitro metabolic rates and altered energy metabolism. Metab Brain Dis. 1986, 1: 279-291. 10.1007/BF00999357.CrossRef
57.
go back to reference Mies G, Paschen W, Ebhardt G, Hossmann KA: Relationship between of blood flow, glucose metabolism, protein synthesis, glucose and ATP content in experimentally-induced glioma (RG1 2.2) of rat brain. J Neurooncol. 1990, 9: 17-28. 10.1007/BF00167064.CrossRef Mies G, Paschen W, Ebhardt G, Hossmann KA: Relationship between of blood flow, glucose metabolism, protein synthesis, glucose and ATP content in experimentally-induced glioma (RG1 2.2) of rat brain. J Neurooncol. 1990, 9: 17-28. 10.1007/BF00167064.CrossRef
58.
go back to reference Oudard S, Boitier E, Miccoli L, Rousset S, Dutrillaux B, Poupon MF: Gliomas are driven by glycolysis: putative roles of hexokinase, oxidative phosphorylation and mitochondrial ultrastructure. Anticancer Res. 1997, 17: 1903-1911. Oudard S, Boitier E, Miccoli L, Rousset S, Dutrillaux B, Poupon MF: Gliomas are driven by glycolysis: putative roles of hexokinase, oxidative phosphorylation and mitochondrial ultrastructure. Anticancer Res. 1997, 17: 1903-1911.
59.
go back to reference Tisdale MJ: Biology of cachexia. J Natl Cancer Inst. 1997, 89: 1763-1773. 10.1093/jnci/89.23.1763.CrossRef Tisdale MJ: Biology of cachexia. J Natl Cancer Inst. 1997, 89: 1763-1773. 10.1093/jnci/89.23.1763.CrossRef
60.
go back to reference Patel MS, Russell JJ, Gershman H: Ketone-body metabolism in glioma and neuroblastoma cells. Proc Natl Acad Sci U S A. 1981, 78: 7214-7218.CrossRef Patel MS, Russell JJ, Gershman H: Ketone-body metabolism in glioma and neuroblastoma cells. Proc Natl Acad Sci U S A. 1981, 78: 7214-7218.CrossRef
61.
go back to reference Roeder LM, Poduslo SE, Tildon JT: Utilization of ketone bodies and glucose by established neural cell lines. J Neurosci Res. 1982, 8: 671-682. 10.1002/jnr.490080412.CrossRef Roeder LM, Poduslo SE, Tildon JT: Utilization of ketone bodies and glucose by established neural cell lines. J Neurosci Res. 1982, 8: 671-682. 10.1002/jnr.490080412.CrossRef
62.
go back to reference Sawai M, Yashiro M, Nishiguchi Y, Ohira M, Hirakawa K: Growth-inhibitory effects of the ketone body, monoacetoacetin, on human gastric cancer cells with succinyl-CoA: 3-oxoacid CoA-transferase (SCOT) deficiency. Anticancer Res. 2004, 24: 2213-2217. Sawai M, Yashiro M, Nishiguchi Y, Ohira M, Hirakawa K: Growth-inhibitory effects of the ketone body, monoacetoacetin, on human gastric cancer cells with succinyl-CoA: 3-oxoacid CoA-transferase (SCOT) deficiency. Anticancer Res. 2004, 24: 2213-2217.
63.
go back to reference Tisdale MJ: Role of acetoacetyl-CoA synthetase in acetoacetate utilization by tumor cells. Cancer Biochem Biophys. 1984, 7: 101-107. Tisdale MJ: Role of acetoacetyl-CoA synthetase in acetoacetate utilization by tumor cells. Cancer Biochem Biophys. 1984, 7: 101-107.
64.
go back to reference Portais JC, Voisin P, Merle M, Canioni P: Glucose and glutamine metabolism in C6 glioma cells studied by carbon 13 NMR. Biochimie. 1996, 78: 155-164. 10.1016/0300-9084(96)89500-9.CrossRef Portais JC, Voisin P, Merle M, Canioni P: Glucose and glutamine metabolism in C6 glioma cells studied by carbon 13 NMR. Biochimie. 1996, 78: 155-164. 10.1016/0300-9084(96)89500-9.CrossRef
65.
go back to reference Meixensberger J, Herting B, Roggendorf W, Reichmann H: Metabolic patterns in malignant gliomas. J Neurooncol. 1995, 24: 153-161. 10.1007/BF01078485.CrossRef Meixensberger J, Herting B, Roggendorf W, Reichmann H: Metabolic patterns in malignant gliomas. J Neurooncol. 1995, 24: 153-161. 10.1007/BF01078485.CrossRef
66.
go back to reference Pedersen PL: Tumor mitochondria and the bioenergetics of cancer cells. Prog Exp Tumor Res. 1978, 22: 190-274.CrossRef Pedersen PL: Tumor mitochondria and the bioenergetics of cancer cells. Prog Exp Tumor Res. 1978, 22: 190-274.CrossRef
67.
go back to reference Warburg O: The Metabolism of Tumours. 1931, New York: Richard R. Smith Warburg O: The Metabolism of Tumours. 1931, New York: Richard R. Smith
68.
69.
go back to reference Cuezva JM, Chen G, Alonso AM, Isidore A, Misek DE, Hanash SM, Beer DG: The bioenergetic signature of lung adenocarcinomas is a molecular marker of cancer diagnosis and prognosis. Carcinogenesis. 2004, 25: 1157-1163. 10.1093/carcin/bgh113.CrossRef Cuezva JM, Chen G, Alonso AM, Isidore A, Misek DE, Hanash SM, Beer DG: The bioenergetic signature of lung adenocarcinomas is a molecular marker of cancer diagnosis and prognosis. Carcinogenesis. 2004, 25: 1157-1163. 10.1093/carcin/bgh113.CrossRef
70.
go back to reference Aisenberg AC: The Glycolysis and Respiration of Tumors. 1961, New York: Academic Press Aisenberg AC: The Glycolysis and Respiration of Tumors. 1961, New York: Academic Press
71.
go back to reference Ikezaki K, Black KL, Conklin SG, Becker DP: Histochemical evaluation of energy metabolism in rat glioma. Neurol Res. 1992, 14: 289-293. Ikezaki K, Black KL, Conklin SG, Becker DP: Histochemical evaluation of energy metabolism in rat glioma. Neurol Res. 1992, 14: 289-293.
72.
go back to reference Schlame M, Rua D, Greenberg ML: The biosynthesis and functional role of cardiolipin. Prog Lipid Res. 2000, 39: 257-288. 10.1016/S0163-7827(00)00005-9.CrossRef Schlame M, Rua D, Greenberg ML: The biosynthesis and functional role of cardiolipin. Prog Lipid Res. 2000, 39: 257-288. 10.1016/S0163-7827(00)00005-9.CrossRef
73.
go back to reference Canuto RA, Biocca ME, Muzio G, Dianzani MU: Fatty acid composition of phospholipids in mitochondria and microsomes during diethylnitrosamine carcinogenesis in rat liver. Cell Biochem Funct. 1989, 7: 11-19. 10.1002/cbf.290070104.CrossRef Canuto RA, Biocca ME, Muzio G, Dianzani MU: Fatty acid composition of phospholipids in mitochondria and microsomes during diethylnitrosamine carcinogenesis in rat liver. Cell Biochem Funct. 1989, 7: 11-19. 10.1002/cbf.290070104.CrossRef
74.
go back to reference Elstrom RL, Bauer DE, Buzzai M, Karnauskas R, Harris MH, Plas DR, Zhuang H, Cinalli RM, Alavi A, Rudin CM: Akt stimulates aerobic glycolysis in cancer cells. Cancer Res. 2004, 64: 3892-3899. 10.1158/0008-5472.CAN-03-2904.CrossRef Elstrom RL, Bauer DE, Buzzai M, Karnauskas R, Harris MH, Plas DR, Zhuang H, Cinalli RM, Alavi A, Rudin CM: Akt stimulates aerobic glycolysis in cancer cells. Cancer Res. 2004, 64: 3892-3899. 10.1158/0008-5472.CAN-03-2904.CrossRef
75.
go back to reference Nebeling LC, Miraldi F, Shurin SB, Lerner E: Effects of a ketogenic diet on tumor metabolism and nutritional status in pediatric oncology patients: two case reports. J Am Coll Nutr. 1995, 14: 202-208.CrossRef Nebeling LC, Miraldi F, Shurin SB, Lerner E: Effects of a ketogenic diet on tumor metabolism and nutritional status in pediatric oncology patients: two case reports. J Am Coll Nutr. 1995, 14: 202-208.CrossRef
76.
go back to reference Stafstrom CE, Bough KJ: The ketogenic diet for the treatment of epilepsy: a challenge for nutritional neuroscientists. Nutr Neurosci. 2003, 6: 67-79. 10.1080/1028415031000084427.CrossRef Stafstrom CE, Bough KJ: The ketogenic diet for the treatment of epilepsy: a challenge for nutritional neuroscientists. Nutr Neurosci. 2003, 6: 67-79. 10.1080/1028415031000084427.CrossRef
77.
go back to reference Freeman JM, Freeman JB, Kelly MT: The Ketogenic Diet: A Treatment for Epilepsy. 2000, New York: Demos, third Freeman JM, Freeman JB, Kelly MT: The Ketogenic Diet: A Treatment for Epilepsy. 2000, New York: Demos, third
78.
go back to reference Stewart JW, Koehler K, Jackson W, Hawley J, Wang W, Au A, Myers R, Birt DF: Prevention of mouse skin tumor promotion by dietary energy restriction requires an intact adrenal gland and glucocorticoid supplementation restores inhibition. Carcinogenesis. 2005, 26: 1077-1084. 10.1093/carcin/bgi051.CrossRef Stewart JW, Koehler K, Jackson W, Hawley J, Wang W, Au A, Myers R, Birt DF: Prevention of mouse skin tumor promotion by dietary energy restriction requires an intact adrenal gland and glucocorticoid supplementation restores inhibition. Carcinogenesis. 2005, 26: 1077-1084. 10.1093/carcin/bgi051.CrossRef
79.
go back to reference Zhu Z, Jiang W, Thompson HJ: Mechanisms by which energy restriction inhibits rat mammary carcinogenesis: in vivo effects of corticosterone on cell cycle machinery in mammary carcinomas. Carcinogenesis. 2003, 24: 1225-1231. 10.1093/carcin/bgg077.CrossRef Zhu Z, Jiang W, Thompson HJ: Mechanisms by which energy restriction inhibits rat mammary carcinogenesis: in vivo effects of corticosterone on cell cycle machinery in mammary carcinomas. Carcinogenesis. 2003, 24: 1225-1231. 10.1093/carcin/bgg077.CrossRef
80.
go back to reference Patel NV, Finch CE: The glucocorticoid paradox of caloric restriction in slowing brain aging. Neurobiol Aging. 2002, 23: 707-717. 10.1016/S0197-4580(02)00017-9.CrossRef Patel NV, Finch CE: The glucocorticoid paradox of caloric restriction in slowing brain aging. Neurobiol Aging. 2002, 23: 707-717. 10.1016/S0197-4580(02)00017-9.CrossRef
81.
go back to reference Mukherjee P, Abate LE, Seyfried TN: Antiangiogenic and proapoptotic effects of dietary restriction on experimental mouse and human brain tumors. Clin Cancer Res. 2004, 10: 5622-5629. 10.1158/1078-0432.CCR-04-0308.CrossRef Mukherjee P, Abate LE, Seyfried TN: Antiangiogenic and proapoptotic effects of dietary restriction on experimental mouse and human brain tumors. Clin Cancer Res. 2004, 10: 5622-5629. 10.1158/1078-0432.CCR-04-0308.CrossRef
82.
go back to reference Mukherjee P, El-Abbadi MM, Kasperzyk JL, Ranes MK, Seyfried TN: Dietary restriction reduces angiogenesis and growth in an orthotopic mouse brain tumour model. Br J Cancer. 2002, 86: 1615-1621. 10.1038/sj.bjc.6600298.CrossRef Mukherjee P, El-Abbadi MM, Kasperzyk JL, Ranes MK, Seyfried TN: Dietary restriction reduces angiogenesis and growth in an orthotopic mouse brain tumour model. Br J Cancer. 2002, 86: 1615-1621. 10.1038/sj.bjc.6600298.CrossRef
83.
go back to reference Duan W, Lee J, Guo Z, Mattson MP: Dietary restriction stimulates BDNF production in the brain and thereby protects neurons against excitotoxic injury. J Mol Neurosci. 2001, 16: 1-12. 10.1385/JMN:16:1:1.CrossRef Duan W, Lee J, Guo Z, Mattson MP: Dietary restriction stimulates BDNF production in the brain and thereby protects neurons against excitotoxic injury. J Mol Neurosci. 2001, 16: 1-12. 10.1385/JMN:16:1:1.CrossRef
84.
go back to reference Birt DF, Yaktine A, Duysen E: Glucocorticoid mediation of dietary energy restriction inhibition of mouse skin carcinogenesis. J Nutr. 1999, 129: 571S-574S. Birt DF, Yaktine A, Duysen E: Glucocorticoid mediation of dietary energy restriction inhibition of mouse skin carcinogenesis. J Nutr. 1999, 129: 571S-574S.
85.
go back to reference Spindler SR: Rapid and reversible induction of the longevity, anticancer and genomic effects of caloric restriction. Mech Ageing Dev. 2005 Spindler SR: Rapid and reversible induction of the longevity, anticancer and genomic effects of caloric restriction. Mech Ageing Dev. 2005
86.
go back to reference Chung HY, Kim HJ, Kim KW, Choi JS, Yu BP: Molecular inflammation hypothesis of aging based on the anti-aging mechanism of calorie restriction. Microsc Res Tech. 2002, 59: 264-272. 10.1002/jemt.10203.CrossRef Chung HY, Kim HJ, Kim KW, Choi JS, Yu BP: Molecular inflammation hypothesis of aging based on the anti-aging mechanism of calorie restriction. Microsc Res Tech. 2002, 59: 264-272. 10.1002/jemt.10203.CrossRef
87.
go back to reference Weindruch R, Walford RL: The retardation of aging and disease by dietary restriction. 1988, Springfield, IL: Thomas Weindruch R, Walford RL: The retardation of aging and disease by dietary restriction. 1988, Springfield, IL: Thomas
88.
go back to reference Tannenbaum A: Nutrition and cancer. Physiopathology of Cancer. Edited by: Homburger F. 1959, NY: Paul B. Hober, 517-562. Tannenbaum A: Nutrition and cancer. Physiopathology of Cancer. Edited by: Homburger F. 1959, NY: Paul B. Hober, 517-562.
89.
go back to reference Rebrin I, Kamzalov S, Sohal RS: Effects of age and caloric restriction on glutathione redox state in mice. Free Radic Biol Med. 2003, 35: 626-635. 10.1016/S0891-5849(03)00388-5.CrossRef Rebrin I, Kamzalov S, Sohal RS: Effects of age and caloric restriction on glutathione redox state in mice. Free Radic Biol Med. 2003, 35: 626-635. 10.1016/S0891-5849(03)00388-5.CrossRef
90.
go back to reference Aronen HJ, Pardo FS, Kennedy DN, Belliveau JW, Packard SD, Hsu DW, Hochberg FH, Fischman AJ, Rosen BR: High microvascular blood volume is associated with high glucose uptake and tumor angiogenesis in human gliomas. Clin Cancer Res. 2000, 6: 2189-2200. Aronen HJ, Pardo FS, Kennedy DN, Belliveau JW, Packard SD, Hsu DW, Hochberg FH, Fischman AJ, Rosen BR: High microvascular blood volume is associated with high glucose uptake and tumor angiogenesis in human gliomas. Clin Cancer Res. 2000, 6: 2189-2200.
91.
go back to reference Tannenbaum A: The genesis and growth of tumors: II. Effects of caloric restriction per se. Cancer Res. 1942, 2: 460-467. Tannenbaum A: The genesis and growth of tumors: II. Effects of caloric restriction per se. Cancer Res. 1942, 2: 460-467.
92.
go back to reference Mukherjee P, Sotnikov AV, Mangian HJ, Zhou JR, Visek WJ, Clinton SK: Energy intake and prostate tumor growth, angiogenesis, and vascular endothelial growth factor expression. J Natl Cancer Inst. 1999, 91: 512-523. 10.1093/jnci/91.6.512.CrossRef Mukherjee P, Sotnikov AV, Mangian HJ, Zhou JR, Visek WJ, Clinton SK: Energy intake and prostate tumor growth, angiogenesis, and vascular endothelial growth factor expression. J Natl Cancer Inst. 1999, 91: 512-523. 10.1093/jnci/91.6.512.CrossRef
93.
go back to reference Pennathur S, Ido Y, Heller JI, Byun J, Danda R, Pergola P, Williamson JR, Heinecke JW: Reactive carbonyls and polyunsaturated fatty acids produce a hydroxyl radical-like species: A potential pathway for oxidative damage of retinal proteins in diabetes. J Biol Chem. 2005 Pennathur S, Ido Y, Heller JI, Byun J, Danda R, Pergola P, Williamson JR, Heinecke JW: Reactive carbonyls and polyunsaturated fatty acids produce a hydroxyl radical-like species: A potential pathway for oxidative damage of retinal proteins in diabetes. J Biol Chem. 2005
94.
go back to reference Andersson AK, Ronnback L, Hansson E: Lactate induces tumour necrosis factor-alpha, interleukin-6 and interleukin-1beta release in microglial- and astroglial-enriched primary cultures. J Neurochem. 2005, 93: 1327-1333. 10.1111/j.1471-4159.2005.03132.x.CrossRef Andersson AK, Ronnback L, Hansson E: Lactate induces tumour necrosis factor-alpha, interleukin-6 and interleukin-1beta release in microglial- and astroglial-enriched primary cultures. J Neurochem. 2005, 93: 1327-1333. 10.1111/j.1471-4159.2005.03132.x.CrossRef
95.
go back to reference Dong W, Selgrade MK, Gilmour IM, Lange RW, Park P, Luster MI, Kari FW: Altered alveolar macrophage function in calorie-restricted rats. Am J Respir Cell Mol Biol. 1998, 19: 462-469.CrossRef Dong W, Selgrade MK, Gilmour IM, Lange RW, Park P, Luster MI, Kari FW: Altered alveolar macrophage function in calorie-restricted rats. Am J Respir Cell Mol Biol. 1998, 19: 462-469.CrossRef
96.
go back to reference Potts R: Humanity's Descent: The Consequences of Ecological Instability. 1996, New York: William Morrow & Co., Inc Potts R: Humanity's Descent: The Consequences of Ecological Instability. 1996, New York: William Morrow & Co., Inc
97.
go back to reference Harold FM: The Vital Force: A Study of Bioenergetics. 1986, New York: W. H. Freeman Harold FM: The Vital Force: A Study of Bioenergetics. 1986, New York: W. H. Freeman
98.
go back to reference Albers RW, Siegel GJ: Membrane transport. Basic Neurochemistry. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 95-118. sixth Albers RW, Siegel GJ: Membrane transport. Basic Neurochemistry. Edited by: Siegel GJ, Agranoff BW, Albers RW, Fisher SK, Uhler MD. 1999, New York: Lippincott-Raven, 95-118. sixth
99.
go back to reference Lipton P, Robacker K: Glycolysis and brain function: [K+]o stimulation of protein synthesis and K+ uptake require glycolysis. Fed Proc. 1983, 42: 2875-2880. Lipton P, Robacker K: Glycolysis and brain function: [K+]o stimulation of protein synthesis and K+ uptake require glycolysis. Fed Proc. 1983, 42: 2875-2880.
100.
go back to reference Nishioka T, Oda Y, Seino Y, Yamamoto T, Inagaki N, Yano H, Imura H, Shigemoto R, Kikuchi H: Distribution of the glucose transporters in human brain tumors. Cancer Res. 1992, 52: 3972-3979. Nishioka T, Oda Y, Seino Y, Yamamoto T, Inagaki N, Yano H, Imura H, Shigemoto R, Kikuchi H: Distribution of the glucose transporters in human brain tumors. Cancer Res. 1992, 52: 3972-3979.
101.
go back to reference Boado RJ, Black KL, Pardridge WM: Gene expression of GLUT3 and GLUT1 glucose transporters in human brain tumors. Brain Res Mol Brain Res. 1994, 27: 51-57. 10.1016/0169-328X(94)90183-X.CrossRef Boado RJ, Black KL, Pardridge WM: Gene expression of GLUT3 and GLUT1 glucose transporters in human brain tumors. Brain Res Mol Brain Res. 1994, 27: 51-57. 10.1016/0169-328X(94)90183-X.CrossRef
102.
go back to reference Strohman R: Thermodynamics – old laws in medicine and complex disease. Nat Biotechnol. 2003, 21: 477-479. 10.1038/nbt0503-477.CrossRef Strohman R: Thermodynamics – old laws in medicine and complex disease. Nat Biotechnol. 2003, 21: 477-479. 10.1038/nbt0503-477.CrossRef
103.
go back to reference Nebeling LC, Lerner E: Implementing a ketogenic diet based on medium-chain triglyceride oil in pediatric patients with cancer. J Am Diet Assoc. 1995, 95: 693-697. 10.1016/S0002-8223(95)00189-1.CrossRef Nebeling LC, Lerner E: Implementing a ketogenic diet based on medium-chain triglyceride oil in pediatric patients with cancer. J Am Diet Assoc. 1995, 95: 693-697. 10.1016/S0002-8223(95)00189-1.CrossRef
104.
go back to reference Covarrubias DJ, Rosen BR, Lev MH: Dynamic magnetic resonance perfusion imaging of brain tumors. Oncologist. 2004, 9: 528-537. 10.1634/theoncologist.9-5-528.CrossRef Covarrubias DJ, Rosen BR, Lev MH: Dynamic magnetic resonance perfusion imaging of brain tumors. Oncologist. 2004, 9: 528-537. 10.1634/theoncologist.9-5-528.CrossRef
105.
go back to reference Ko YH, Smith BL, Wang Y, Pomper MG, Rini DA, Torbenson MS, Hullihen J, Pedersen PL: Advanced cancers: eradication in all cases using 3-bromopyruvate therapy to deplete ATP. Biochem Biophys Res Commun. 2004, 324: 269-275. 10.1016/j.bbrc.2004.09.047.CrossRef Ko YH, Smith BL, Wang Y, Pomper MG, Rini DA, Torbenson MS, Hullihen J, Pedersen PL: Advanced cancers: eradication in all cases using 3-bromopyruvate therapy to deplete ATP. Biochem Biophys Res Commun. 2004, 324: 269-275. 10.1016/j.bbrc.2004.09.047.CrossRef
106.
go back to reference Fearon KC: Nutritional pharmacology in the treatment of neoplastic disease. Baillieres Clin Gastroenterol. 1988, 2: 941-949. 10.1016/0950-3528(88)90043-7.CrossRef Fearon KC: Nutritional pharmacology in the treatment of neoplastic disease. Baillieres Clin Gastroenterol. 1988, 2: 941-949. 10.1016/0950-3528(88)90043-7.CrossRef
107.
go back to reference Sokoloff B, Eddy WH, Saelof CC, Beach J: Glucose antagonists in experimental cancer. Arch Pathol. Sokoloff B, Eddy WH, Saelof CC, Beach J: Glucose antagonists in experimental cancer. Arch Pathol.
108.
go back to reference Magee BA, Potezny N, Rofe AM, Conyers RA: The inhibition of malignant cell growth by ketone bodies. Aust J Exp Biol Med Sci. 1979, 57: 529-539.CrossRef Magee BA, Potezny N, Rofe AM, Conyers RA: The inhibition of malignant cell growth by ketone bodies. Aust J Exp Biol Med Sci. 1979, 57: 529-539.CrossRef
109.
go back to reference Landau BR, Laszlo J, Stengle J, Burk D: Certain metabolic and pharmacologic effects in cancer patients given infusions of 2-deoxy-D-glucose. J Natl Cancer Inst. 1958, 21: 485-494. Landau BR, Laszlo J, Stengle J, Burk D: Certain metabolic and pharmacologic effects in cancer patients given infusions of 2-deoxy-D-glucose. J Natl Cancer Inst. 1958, 21: 485-494.
110.
go back to reference Cleary MP, Jacobson MK, Phillips FC, Getzin SC, Grande JP, Maihle NJ: Weight-cycling decreases incidence and increases latency of mammary tumors to a greater extent than does chronic caloric restriction in mouse mammary tumor virus-transforming growth factor-alpha female mice. Cancer Epidemiol Biomarkers Prev. 2002, 11: 836-843. Cleary MP, Jacobson MK, Phillips FC, Getzin SC, Grande JP, Maihle NJ: Weight-cycling decreases incidence and increases latency of mammary tumors to a greater extent than does chronic caloric restriction in mouse mammary tumor virus-transforming growth factor-alpha female mice. Cancer Epidemiol Biomarkers Prev. 2002, 11: 836-843.
111.
go back to reference Meadows GG, Fu Y-M: Dietary restriction of specific amino acids modulates tumor and host interactions. Integration/Interaction of Oncologic Growth. Edited by: Meadows GG. 2005, New York: Kluwer Academic, 15: 2CrossRef Meadows GG, Fu Y-M: Dietary restriction of specific amino acids modulates tumor and host interactions. Integration/Interaction of Oncologic Growth. Edited by: Meadows GG. 2005, New York: Kluwer Academic, 15: 2CrossRef
Metadata
Title
Targeting energy metabolism in brain cancer: review and hypothesis
Authors
Thomas N Seyfried
Purna Mukherjee
Publication date
01-12-2005
Publisher
BioMed Central
Published in
Nutrition & Metabolism / Issue 1/2005
Electronic ISSN: 1743-7075
DOI
https://doi.org/10.1186/1743-7075-2-30

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