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Lancet 385, 977–1010 (2015)
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classes. Genomics 84, 1014–1020 (2004)
3. T. Amemiya, K. Obase, N. Hiramatsu, K. Itoh, K. Shibata, M. Takinoue, T. Yamamoto, T.
Yamaguchi, Collective and individual glycolytic oscillations in yeast cells encapsulated in
alginate microparticles. Chaos 25, 064606 (2015)
4. T. Amemiya, K. Shibata, Y. Du, S. Nakata, T. Yamaguchi, Modeling studies of heterogeneities
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5. T. Amemiya, K. Shibata, Y. Itoh, K. Itoh, M. Watanabe, T. Yamaguchi, Primordial oscillations
in life: direct observation of glycolytic oscillations in individual HeLa cervical cancer cells.
Chaos 27, 104602 (2017)
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yeast cells during fast glycolytic oscillations. J. Gen. Microbiol. 138, 2219–2227 (1992)
7. R.K.P. Benninger, D.W. Piston, Cellular communication and heterogeneity in pancreatic islet
insulin secretion dynamics. Trends Endocrinol. Metabol. 25, 399–406 (2014)
8. R. Bertram, L.S. Satin, M.G. Pedersen, D.S. Luciani, A. Sherman, Interaction of glycolysis
and mitochondrial respiration in metabolic oscillations of pancreatic islets. Biophys. J. 92,
1544–1555 (2007)
9. A. Betz, J.U. Becker, Phase dependent phase shifts induced by pyruvate and acetaldehyde in
oscillating NADH of yeast cells. J. Interdis. Cycle Res. 6, 167–173 (1975)
10. P. Bruni, M. Farnararo, V. Vasta, A. D’Alessandro, Increase of the glycolytic rate in human
resting fibroblasts following serum stimulation. FEBS Lett. 159, 39–42 (1983)
11. T. Cascone et al., Increased tumor glycolysis characterizes immune resistance to adoptive T
cell therapy. Cell Metab. 27, 977–987 (2018)
12. B. Chance, B. Hess, Metabolic control mechanisms: IV. The effect of glucose upon the steady
state of respiratory enzymes in the ascites cell. J. Biol. Chem. 234, 2421–2427 (1959)
13. B. Chance, G. Williamson, I.Y. Lee, L. Mela, D. DeVault, A.K. Ghosh, E.K. Pye, Synchronization phenomena in oscillations in yeast cells and isolated mitochondria. In: Biological and
Biochemical Oscillators. A Colloquium of the Johnson Foundation, ed. by B. Chance, E.K.
Pye, A.K. Ghosh, A.B. Hess (Academic Press, New York & London, 1973), pp. 285–302
14. F.A. Chandra, G. Buzi, J.C. Doyle, Glycolytic oscillations and limits on robust efficiency.
Science 333, 187–192 (2011)
15. H.G. Crabtree, Observations on the carbohydrate metabolism of tumors. Biochem. J. 23, 536–
545 (1929)
16. S. Danø, P. Sørensen, F. Hynne, Sustained oscillations in living cells. Nature 402, 320–322
(1999)
17. R. Diaz-Ruiz, M. Rigoulet, A. Devin, The Warburg and Crabtree effects: on the origin of
cancer cell energy metabolism and of yeast glucose repression. Biochem. Biophys. Acta. 1807,
568–576 (2011)
18. E. Eidelman, J. Twum-Ampofo, J. Ansari, M.M. Siddiqui, The metabolic phenotype of prostate
cancer. Front. Oncol. 7, 131 (2017)
19. L.C. Fru, E.B. Adamson, D.D. Campos, S.B. Fain, S.L. Jacques, A.J. van der Kogel, K.P.
Nichel, C. Song, R.J. Kimple, M.W. Kissick, Potential role of the glycolytic oscillator in acute
hypoxia in tumors. Phys. Med. Biol. 60, 9215–9255 (2015)
20. R.A. Gatenby, R.J. Gillies, Why do cancers have high aerobic glycolysis? Nat. Rev. Cancer 4,
891–899 (2004)
T. Amemiya et al.
References
1. C. Allemani et al., Global surveillance of cancer survival 1995–2009: analysis of individual data
for 25 676 887 patients from 279 population-based registries in 67 countries (CONCORD-2).
Lancet 385, 977–1010 (2015)
2. B. Altenberg, K.O. Greulich, Genes of glycolysis are ubiquitously overexpressed in 24 cancer
classes. Genomics 84, 1014–1020 (2004)
3. T. Amemiya, K. Obase, N. Hiramatsu, K. Itoh, K. Shibata, M. Takinoue, T. Yamamoto, T.
Yamaguchi, Collective and individual glycolytic oscillations in yeast cells encapsulated in
alginate microparticles. Chaos 25, 064606 (2015)
4. T. Amemiya, K. Shibata, Y. Du, S. Nakata, T. Yamaguchi, Modeling studies of heterogeneities
in glycolytic oscillations in HeLa cervical cancer cells. Chaos 29, 033132 (2019)
5. T. Amemiya, K. Shibata, Y. Itoh, K. Itoh, M. Watanabe, T. Yamaguchi, Primordial oscillations
in life: direct observation of glycolytic oscillations in individual HeLa cervical cancer cells.
Chaos 27, 104602 (2017)
6. M.A. Aon, S. Cortassa, H.V. Westerhoff, K. Van Dam, Synchrony and mutual stimulation of
yeast cells during fast glycolytic oscillations. J. Gen. Microbiol. 138, 2219–2227 (1992)
7. R.K.P. Benninger, D.W. Piston, Cellular communication and heterogeneity in pancreatic islet
insulin secretion dynamics. Trends Endocrinol. Metabol. 25, 399–406 (2014)
8. R. Bertram, L.S. Satin, M.G. Pedersen, D.S. Luciani, A. Sherman, Interaction of glycolysis
and mitochondrial respiration in metabolic oscillations of pancreatic islets. Biophys. J. 92,
1544–1555 (2007)
9. A. Betz, J.U. Becker, Phase dependent phase shifts induced by pyruvate and acetaldehyde in
oscillating NADH of yeast cells. J. Interdis. Cycle Res. 6, 167–173 (1975)
10. P. Bruni, M. Farnararo, V. Vasta, A. D’Alessandro, Increase of the glycolytic rate in human
resting fibroblasts following serum stimulation. FEBS Lett. 159, 39–42 (1983)
11. T. Cascone et al., Increased tumor glycolysis characterizes immune resistance to adoptive T
cell therapy. Cell Metab. 27, 977–987 (2018)
12. B. Chance, B. Hess, Metabolic control mechanisms: IV. The effect of glucose upon the steady
state of respiratory enzymes in the ascites cell. J. Biol. Chem. 234, 2421–2427 (1959)
13. B. Chance, G. Williamson, I.Y. Lee, L. Mela, D. DeVault, A.K. Ghosh, E.K. Pye, Synchronization phenomena in oscillations in yeast cells and isolated mitochondria. In: Biological and
Biochemical Oscillators. A Colloquium of the Johnson Foundation, ed. by B. Chance, E.K.
Pye, A.K. Ghosh, A.B. Hess (Academic Press, New York & London, 1973), pp. 285–302
14. F.A. Chandra, G. Buzi, J.C. Doyle, Glycolytic oscillations and limits on robust efficiency.
Science 333, 187–192 (2011)
15. H.G. Crabtree, Observations on the carbohydrate metabolism of tumors. Biochem. J. 23, 536–
545 (1929)
16. S. Danø, P. Sørensen, F. Hynne, Sustained oscillations in living cells. Nature 402, 320–322
(1999)
17. R. Diaz-Ruiz, M. Rigoulet, A. Devin, The Warburg and Crabtree effects: on the origin of
cancer cell energy metabolism and of yeast glucose repression. Biochem. Biophys. Acta. 1807,
568–576 (2011)
18. E. Eidelman, J. Twum-Ampofo, J. Ansari, M.M. Siddiqui, The metabolic phenotype of prostate
cancer. Front. Oncol. 7, 131 (2017)
19. L.C. Fru, E.B. Adamson, D.D. Campos, S.B. Fain, S.L. Jacques, A.J. van der Kogel, K.P.
Nichel, C. Song, R.J. Kimple, M.W. Kissick, Potential role of the glycolytic oscillator in acute
hypoxia in tumors. Phys. Med. Biol. 60, 9215–9255 (2015)
20. R.A. Gatenby, R.J. Gillies, Why do cancers have high aerobic glycolysis? Nat. Rev. Cancer 4,
891–899 (2004)
