Essential Nutrients in Carcinogenesis pp 55-68 | Cite as
Influence of Caloric Intake on Experimental Carcinogenesis: A Review
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Abstract
The effect of caloric intake on tumor growth has been recognized for over 70 years. Inhibition of tumor growth depends primarily on the extent of caloric restriction, but tumor type, animal strain, and dietary composition all exert some influence. Caloric restriction is most effective when maintained during both initiation and promotion, but if limited to one of these phases, restriction during promotion appears to be the more effective modality. The types of tumor that have been studied include spontaneous mammary and lung tumors as well as tumors induced by organ-specific carcinogens or irradiation with ultraviolet light. Numerous investigators have studied the effects of fat, and a diet low in calories but high in fat is generally significantly more effective in inhibiting carcinogenesis than is a diet high in calories but low in fat. Mice fed high fat, low calorie diets exhibited 48% fewer chemically induced skin tumors and 61% fewer tumors induced by ultraviolet irradiation than did mice fed low fat, high calorie diets. Mice fed a diet containing 2% fat exhibited a 66% incidence of skin tumors, whereas mice fed an isocaloric diet containing 61% fat showed a 78% incidence. Rats whose diet was restricted in calories by 40% exhibited no mammary tumors (coconut oil as primary dietary fat) or 75% fewer tumors (corn oil as dietary fat) compared to ad libitum-fed controls; they also exhibited 47% fewer colonic tumors. The mechanism by which caloric restriction exerts its tumor-inhibiting effects remains to be elucidated.
Keywords
Caloric Restriction Tumor Incidence Skin Tumor Restricted Diet High Calorie DietAbbreviations
- BP
3,4-benzo[a]pyrene
- MCA
3-methylcholanthrene
- DMBA
7,12-dimethylbenz(a)anthracene.
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References
- 1.H. P. Rusch, Extrinsic factors that influence carcinogenesis, Physiol. Rev. 24:177 (1944).Google Scholar
- 2.A. Tannenbaum, Nutrition and cancer, in: “The Physiopathology of Cancer,” F. Homburger and W. H. Fishman, eds., Hoeber-Harper, New York (1953).Google Scholar
- 3.Committee on Diet, Nutrition, and Cancer, Assembly of Life Sciences, National Research Council, “Diet, Nutrition, and Cancer,” National Academy Press, Washington, D.C. (1982).Google Scholar
- 4.P. Rous, The influence of diet on transplanted and spontaneous tumors, J. Exp. Med. 20:433 (1914).CrossRefGoogle Scholar
- 5.I. Sivertsen and W. H. Hastings, A preliminary report on the influence of food and function on the incidence of a mammary gland tumor in “A” stock albino mice, Minn. Med. 21:873 (1938).Google Scholar
- 6.F. Bischoff, M. L. Long, and L. C. Maxwell, Influence of caloric intake upon the growth of sarcoma 180, Am. J. Cancer 24:549 (1935).Google Scholar
- 7.M. B. Visscher, Z. B. Ball, R. H. Barnes, et al., The influence of caloric restriction upon the incidence of spontaneous mammary carcinoma in mice, Surgery 11:48 (1942).Google Scholar
- 8.R. A. Huseby, Z. B. Ball, and M. B. Visscher, Further observations on the influence of simple caloric restriction on mammary cancer incidence and related phenomena in C3H mice, Cancer Res. 5:40 (1945).Google Scholar
- 9.J. A. Saxton, Jr., M. C. Boon, and J. Furth, Observations on the inhibition of development of spontaneous leukemia in mice by underfeeding, Cancer Res. 4:401 (1944).Google Scholar
- 10.C. D. Larsen and W. E. Heston, Effects of cystine and calorie restriction on the incidence of spontaneous pulmonary tumors in strain A mice, J. Natl. Cancer Inst. 6:31 (1945).Google Scholar
- 11.A. Tannenbaum, The initiation and growth of tumors. Introduction. I. Effects of underfeeding, Am. J. Cancer 38:335 (1940).Google Scholar
- 12.A. Tannenbaum, The genesis and growth of tumors II. Effects of caloric restriction per se, Cancer Res. 2:460 (1942).Google Scholar
- 13.A. Tannenbaum, The dependence of the genesis of induced skin tumors on the caloric intake during different stages of carcinogenesis, Cancer Res. 4:673 (1944).Google Scholar
- 14.A. Tannenbaum, The dependence of tumor formation on the degree of caloric restriction, Cancer Res. 5:609 (1945).Google Scholar
- 15.A. Tannenbaum, The dependence of tumor formation on the composition of the calorie restricted diet as well as on the degree of restriction, Cancer Res. 5:616 (1945).Google Scholar
- 16.A. Tannenbaum and H. Silverstone, The influence of degree of caloric restriction on the formation of skin tumors and hepatomas in mice, Cancer Res. 9:724 (1949).Google Scholar
- 17.F. R. White, J. White, G. B. Mider, et al., Effect of caloric restriction on mammary tumor formation in strain C3H mice and on the response of strain DBA to painting with methylcholanthrene, J. Natl. Cancer Inst. 5:43 (1944).Google Scholar
- 18.C. A. Baumann, H. P. Jacobi, and H. P. Rusch, The effect of diet on experimental tumor production, Am. J. Hyg. 30:1 (1939).Google Scholar
- 19.A. Tannenbaum, The genesis and growth of tumors, Cancer Res. 2:468 (1942).Google Scholar
- 20.H. P. Jacobi and C. A. Baumann, The effect of fat on tumor formation, Am. J. Cancer 39:338 (1940).Google Scholar
- 21.P. S. Lavik and C. A. Baumann, Dietary fat and tumor formation, Cancer Res. 1:181 (1941).Google Scholar
- 22.P. S. Lavik and C. A. Baumann, Further studies on tumor-promoting action of fat, Cancer Res. 3:749 (1943).Google Scholar
- 23.H. P. Rusch, B. E. Kline, and C. A. Baumann, The influence of caloric restriction and of dietary fat on tumor formation with ultraviolet radiation, Cancer Res. 5:431 (1945).Google Scholar
- 24.A. Tannenbaum, The dependence of the genesis of induced skin tumors on the fat content of the diet during different stages of carcinogenesis, Cancer Res. 4:683 (1944).Google Scholar
- 25.H. Silverstone, R. D. Solomon, and A. Tannenbaum, Relative influences of natural and semipurified diets on tumor formation in mice, Cancer Res. 12:750 (1952).Google Scholar
- 26.H. P. Rusch, R. O. Johnson, and B. E. Kline, The relationship of caloric intake and of blood sugar to sarcogenesis in mice, Cancer Res. 5:705 (1945).Google Scholar
- 27.R. K. Boutwell, M. K. Brush, and H. P. Rusch, The stimulating effect of dietary fat on carcinogenesis, Cancer Res. 9:741 (1949).Google Scholar
- 28.D. Kritchevsky, M. M. Weber, and D. M. Klurfeld, Dietary fat versus caloric content in initiation and promotion of 7,12-dimethylbenz(a) anthracene-induced mammary tumorigenesis in rats, Cancer Res. 44:3174 (1984).Google Scholar
- 29.D. M. Klurfeld, M. M. Weber, and D. Kritchevsky, Calories and chemical carcinogenesis, in: “Proceedings of the Second George Washington University Symposium on Dietary Fiber,” G. V. Vahouny and D. Kritchevsky, eds., Plenum Press, New York (1986).Google Scholar
- 30.J. A. Miller, B. E. Kline, H. P. Rusch, et al., The carcinogenicity of p-dimethylaminoazobenzene in diets containing hydrogenated coconut oil, Cancer Res. 4:153 (1944).Google Scholar
- 31.J. A. Miller, E. B. Kline, H. P. Rusch, et al., The effect of certain lipids on the carcinogenicity of p-dimethylaminoazobenzene, Cancer Res. 4:756 (1944).Google Scholar
- 32.K. K. Carroll and H. T. Khor, Effect of level and type of dietary fat on incidence of mammary tumors induced in female Sprague-Dawley rats by 7,12-dimethylbenz(a)anthracene, Lipids 6:415 (1971).CrossRefGoogle Scholar
- 33.B. S. Reddy, J. H. Weisburger, and E. L. Wynder, Effects of dietary fat level and dimethylhydrazine on fecal acid and neutral sterol excretion and colon carcinogenesis in rats, J. Natl. Cancer Inst. 52:507 (1974).Google Scholar
- 34.C. M. McCay, G. H. Ellis, L. L. Barnes, et al., Chemical and pathological changes in aging and after retarded growth, J. Nutr. 18:15 (1939).Google Scholar
- 35.A. J. Carlson and F. Hoelzel, Apparent prolongation of the life span of rats by intermittent fasting, J. Nutr. 31:363 (1946).Google Scholar
- 36.L. Loeb, V. Suntzeff, H. T. Blumenthal, et al., Effect of weight on the development of mammary carcinoma in various strains of mice, Arch. Pathol. 33:845 (1942).Google Scholar
- 37.A. Tannenbaum and H. Silverstone, Effect of low environmental temperature, dinitrophenol, or sodium fluoride on the formation of tumors in mice, Cancer Res. 9:403 (1949).Google Scholar
- 38.H. Silverstone and A. Tannenbaum, Influence of thyroid hormone on the formation of induced skin tumors in mice, Cancer Res. 9:684 (1949).Google Scholar
- 39.M. Pollard, P. H. Luckert, and G. Y. Pan, Inhibition of intestinal tumorigenesis in methylazoxymethanol-treated rats by dietary restriction, Cancer Treat. Rep. 68:405 (1984).Google Scholar
- 40.V. R. Potter, The role of nutrition in cancer prevention, Science 101:105 (1945).CrossRefGoogle Scholar
- 41.R. K. Boutwell, M. K. Brush, and H. P. Rusch, Some physiological effects associated with chronic caloric restriction, Am. J. Physiol. 154:517 (1949).Google Scholar
- 42.P. M. Harris, D. F. Hodgson, and R. B. Broadhurst, Response of male and female rats to undernutrition. 1. Changes in energy utilization, body composition, and tissue turnover during undernutrition, Br. J. Nutr. 52:289 (1984).CrossRefGoogle Scholar
- 43.J. W. Berg, Can nutrition explain the pattern of international epidemiology of hormone dependent cancers? Cancer Res. 35:3345 (1975).Google Scholar
- 44.D. G. Jose and R. A. Good, Quantitative effects of nutritional protein and calorie deficiency upon immune responses to tumors in mice, Cancer Res. 33:807 (1973).Google Scholar
- 45.G. Fernandes, E. J. Yunis, and R. A. Good, Influence of diet on survival of mice, Proc. Natl. Acad. Sci. U.S.A. 73:1279 (1976).CrossRefGoogle Scholar