Metabolic network adaptations in cancer as targets for novel therapies

被引:22
作者
Cascante, Marta [1 ]
Benito, Adrian
Zanuy, Miriam
Vizan, Pedro
Marin, Silvia
de Atauri, Pedro
机构
[1] Univ Barcelona, Fac Biol, Dept Bioquim & Biol Mol, IBUB, E-08028 Barcelona, Spain
关键词
antitumoral therapy; cancer; flux analysis; metabolomics; systems biology; tumour metabolism; TUMOR-CELL PROLIFERATION; TRANSKETOLASE TKTL1; AEROBIC GLYCOLYSIS; MASS ISOTOPOMER; DRUG DISCOVERY; PENTOSE CYCLE; EXPRESSION; GROWTH; HYPOXIA; INHIBITION;
D O I
10.1042/BST0381302
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Metabolite concentrations and fluxes are the system variables that characterize metabolism. The systematic study of metabolite profiles is known as metabolomics; however, knowledge of the complete set of metabolites may not be enough to predict distinct phenotypes. A complete understanding of metabolic processes requires detailed knowledge of enzyme-controlled intracellular fluxes. These can be estimated through quantitative measurements of metabolites at different times or by analysing the stable isotope patterns obtained after incubation with labelled substrates. We have identified distinct intracellular fluxes associated with metabolic adaptations accompanying cancer. The maintenance of an imbalance between fluxes for the oxidative and non-oxidative PPP (pentose phosphate pathway) has been shown to be critical for angiogenesis and cancer cell survival. Mouse NIH 3T3 cells transformed by different mutated K-ras oncogenes have differential routing of glucose to anaerobic glycolysis, the PPP and the Krebs cycle. These results indicate that knowledge of metabolic fingerprints associated with an altered genetic profile could be exploited in the rational design of new therapies. We conclude that the understanding of the multifactorial nature of metabolic adaptations in cancer may open new ways to develop novel multi-hit antitumoral therapies.
引用
收藏
页码:1302 / 1306
页数:5
相关论文
共 49 条
[1]
[Anonymous], 2001, Foundations of Systems Biology
[2]
Metabolic Control Analysis aimed at the ribose synthesis pathways of tumor cells: a new strategy for antitumor drug development [J].
Boren, J ;
Montoya, AR ;
de Atauri, P ;
Comin-Anduix, B ;
Cortes, A ;
Centelles, JJ ;
Frederiks, WM ;
Van Noorden, CJF ;
Cascante, M .
MOLECULAR BIOLOGY REPORTS, 2002, 29 (1-2) :7-12
[3]
Inhibition of the oxidative and nonoxidative pentose phosphate pathways by somatostatin: a possible mechanism of antitumor action [J].
Boros, LG ;
Brandes, JL ;
Yusuf, FI ;
Cascante, M ;
Williams, RD ;
Schirmer, WJ .
MEDICAL HYPOTHESES, 1998, 50 (06) :501-506
[4]
Metabolic profiling of cell growth and death in cancer: applications in drug discovery [J].
Boros, LG ;
Cascante, M ;
Lee, WNP .
DRUG DISCOVERY TODAY, 2002, 7 (06) :364-372
[5]
Boros LG, 1997, CANCER RES, V57, P4242
[6]
Metabolic control analysis in drug discovery and disease [J].
Cascante, M ;
Boros, LG ;
Comin-Anduix, B ;
de Atauri, P ;
Centelles, JJ ;
Lee, PWN .
NATURE BIOTECHNOLOGY, 2002, 20 (03) :243-249
[7]
Role of thiamin (vitamin B-1) and transketolase in tumor cell proliferation [J].
Cascante, M ;
Centelles, JJ ;
Veech, RL ;
Lee, WNP ;
Boros, LG .
NUTRITION AND CANCER-AN INTERNATIONAL JOURNAL, 2000, 36 (02) :150-154
[8]
The effect of thiamine supplementation on tumour proliferation - A metabolic control analysis study [J].
Comin-Anduix, B ;
Boren, J ;
Martinez, S ;
Moro, C ;
Centelles, JJ ;
Trebukhina, R ;
Petushok, N ;
Lee, WNP ;
Boros, LG ;
Cascante, M .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 2001, 268 (15) :4177-4182
[9]
Coy JF, 2005, CLIN LAB, V51, P257
[10]
Akt stimulates aerobic glycolysis in cancer cells [J].
Elstrom, RL ;
Bauer, DE ;
Buzzai, M ;
Karnauskas, R ;
Harris, MH ;
Plas, DR ;
Zhuang, HM ;
Cinalli, RM ;
Alavi, A ;
Rudin, CM ;
Thompson, CB .
CANCER RESEARCH, 2004, 64 (11) :3892-3899