Aerobic glycolysis during lymphocyte proliferation (original) (raw)
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- Published: 01 June 1976
Nature volume 261, pages 702–705 (1976)Cite this article
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Abstract
GLYCOLYSIS, for most mammalian cells, is only a prelude to the complete respiratory oxidation of glucose. Lactate production is usually barely, if at all, detectable in aerobic conditions1. Consequently, when Warburg2,3 observed that various tumours showed active aerobic glycolysis, he postulated that defective tumour cell respiration was the reason and was, moreover, the basic difference between normal and cancer cells. Although aerobic glycolysis by tumour tissue has been confirmed many times, defective respiration in cancer cells has not been established4. The failure to uncover a respiratory defect in cancer cells has led to other explanations. It has been suggested, for example, that aerobic glycolysis is linked to cell growth rather than to malignancy5, and for several hepatomas a correlation could be made between the amount of lactate produced and the cell doubling time6,7. It follows that if aerobic glycolysis is related to cell growth, it might be possible as much in normal as malignant cells. There is some evidence for this. Aerobic glycolysis has been noted in proliferating fibroblasts during the period of maximum increase in cell numbers8,9. Human lymphocytes have shown an increase in respiration and also produced lactate when stimulated by the mitogen phytohaemagglutinin10,11. In chick embryo and skeletal muscle fibroblasts12,13, glycolysis increased during log phase growth, but several factors seemed to influence lactate production. Medium composition, aggregation state of cells, culture _p_H and cell density were all considered more important in determining glycolytic activity than growth rate. It should be noted, however, that these factors are also important to the proliferative rate of these cells. We believe that the important question is not whether culture conditions can influence lactate production, but rather whether glycolysis is linked to cell division. So far no systematic study of the relationship of the appearance of aerobic glycolysis to cell proliferation or the phases of the cell cycle has been reported. This report presents evidence in normal lymphocytes that aerobic glycolysis not only is associated with cellular proliferation, but more specifically is temporally related to DNA synthesis.
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References
- Aisenberg, A. C., in The Glycolysis and Respiration of Tumors. 12–13 (Academic, New York, 1961).
Google Scholar - Warburg, O., Posener, K., and Negelein, E., Biochem. Z., 152, 309–344 (1924).
CAS Google Scholar - Warburg, O., Science, 123, 309–314 (1956).
Article CAS ADS Google Scholar - Weinhouse, S., Adv. Cancer Res., 3, 269–325 (1955).
Article CAS Google Scholar - Markert, C. L., in The Chemical Basis of Development (edit. by McElroy, W. D., and Glass, B.), 623–624 (John Hopkins University Press, Baltimore, 1958).
Google Scholar - Sweeney, M. J., Ashmore, J., Morris, H. P., and Weber, G., Cancer Res., 23, 995–1002 (1963).
CAS PubMed Google Scholar - Burk, D., Woods, M., and Hunter, J., J. natn. Cancer Inst., 38, 839–863 (1967).
CAS Google Scholar - Munyon, W. H., and Merchant, D. J., Expl Cell Res., 17, 490–498 (1959).
Article CAS Google Scholar - Steck, T. L., Kaufman, S., and Bader, J. P., Cancer Res., 28, 1611–1619 (1968).
CAS PubMed Google Scholar - Cooper, E. H., Barkhan, P., and Hale, A. J., Br. J. Hematol., 9, 101–111 (1963).
Article CAS Google Scholar - Roos, D., and Loos, J. A., Expl Cell Res., 77, 127–135 (1973).
Article CAS Google Scholar - Harris, M., in The Chemical Basis of Development (edit. by McElroy, W. D., and Glass, B.), 596–623 (Johns Hopkins University Press, Baltimore, 1958).
Google Scholar - Bissell, M. J., Hatie, C., and Rubin, H., J. natn. Cancer Inst., 49, 555–565 (1972).
CAS Google Scholar - Ling, N. R., and Kay, J. G., in Lymphocyte Stimulation, 304–326 (Elsevier, New York, 1975).
Google Scholar - Loomis, M. E., J. Lab Clin. Med., 57, 966–969, (1961).
CAS PubMed Google Scholar - Wu, R., Analyt. Biochem., 7, 207–214 (1964).
Article CAS Google Scholar - Gunther, G. R., Wang, J. L., and Edelman, G. M., J. Cell Biol., 62, 366–377 (1974).
Article CAS Google Scholar - Paul, J., in Cells and Tissues in Culture, 1 (edit. by Willmer, E. N.), 239–276 (Academic, New York, 1965).
Chapter Google Scholar - Bissell, M. J., White, R. C., Hatie, C., and Bassham, J. A., Proc. natn. Acad. Sci. U.S.A., 70, 2951–2955 (1973).
Article CAS ADS Google Scholar - Andersson, J., and Melchers, F., Proc. natn. Acad. Sci. U.S.A., 70, 416–420 (1973).
Article CAS ADS Google Scholar - Vonderhaar, B. K., and Topper, Y. J., J. Cell Biol., 63, 707–712 (1974).
Article CAS Google Scholar - Takahashi, M., Yagi, Y., Moore, G. E., and Pressman, D., J. Immun., 103, 834–843 (1969).
CAS PubMed Google Scholar
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Authors and Affiliations
- Department of Surgery, University of Minnesota, Minneapolis, Minnesota, 55455
TINGCHUNG WANG, CATHLEEN MARQUARDT & JOHN FOKER
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- TINGCHUNG WANG
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WANG, T., MARQUARDT, C. & FOKER, J. Aerobic glycolysis during lymphocyte proliferation.Nature 261, 702–705 (1976). https://doi.org/10.1038/261702a0
- Received: 20 February 1976
- Accepted: 20 April 1976
- Published: 01 June 1976
- Issue Date: 24 June 1976
- DOI: https://doi.org/10.1038/261702a0