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The effect of a low-fat maternal diet on neonatal rats

Published online by Cambridge University Press:  24 July 2007

A. J. Sinclair
Affiliation:
Nuffield Institute of Comparative Medicine, Zoological Society of London, Regent's Park, London NWI
M. A. Crawford
Affiliation:
Nuffield Institute of Comparative Medicine, Zoological Society of London, Regent's Park, London NWI
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Abstract

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1. Rats were raised on a low-fat diet containing 6 g fat/kg. Females of the second generation were bred and only 11% of their pups survived to weaning age compared with a 66% survival for control pups. Pups were killed 8–12 h after birth and their tissues were analysed.

2. Pups in the low-fat group had smaller body, brain and liver weights than control pups; the lipid contents of body, brain and liver were also significantly less.

3. In the liver triglycerides from the control group the C20 and C22 polyenoic fatty acids constituted 33% of the total fatty acids. The liver triglyceride concentration in the low-fat group was lower and the concentration of the long-chain polyenoic fatty acids in this fraction was 20% of the control value. The milk fatty acids from the low-fat group contained only 33% as much of the C18 to C22 polyenoic fatty acids compared with the control group.

4. In the brain lipids from the low-fat group, changes in the fatty acid composition were less marked than in the liver lipids. In these experiments there were only small amounts of 20:3ω9 in the tissue lipids; the ratio to 20:4ω6 was less than 1.

5. These changes are discussed in relation to the influence of dietary lipids on tissue growth especially of lipid-rich tissues such as the brain.

Type
Research Article
Copyright
Copyright © The Nutrition Society 1973

References

REFERENCES

Adlard, B. P. F. & Dobbing, J. (1971). Brain Res. 28, 97.CrossRefGoogle Scholar
Baird, A., Widdowson, E. M. & Cowley, J. J. (1971). Br. J. Nutr. 25, 391.Google Scholar
Brockerhoff, H., Hoyle, R. J. & Hwang, P. C. (1967). Biochim. biophys. Acta 144, 541.CrossRefGoogle Scholar
Crawford, M. A. & Sinclair, A. J. (1972). In Lipids, Malnutrition and the Developing Brain p. 267 [Elliott, K. and Knight, J., editors]. Amsterdam: Associated Scientific Publishers.Google Scholar
Cuzner, M. L., Davison, A. N. & Gregson, N. A. (1965). Ann. N.Y. Acad. Sci. 122, 86.Google Scholar
Deuel, H. J. Jr., Martin, C. R. & Alfin-Slater, R. B. (1954). J. Nutr. 54, 193.CrossRefGoogle Scholar
Dobbing, J. (1965–6). Biologia Neonat. 9, 132.CrossRefGoogle Scholar
Eichenwald, H. F. & Fry, P. C. (1969). Science, N. Y. 163, 644.CrossRefGoogle Scholar
Folch, J., Lees, M. & Stanley, G. H. S. (1957). J. biol. Chem. 226, 497.Google Scholar
Gelli, C., White, H. B. Jr & Paoletti, R. (1970). J. Neurochem. 17, 347.Google Scholar
Hoilund, L. J., Sundberg, R. D., Herbst, G. H. & Parkin, J. D. (1970). Lab. Invest. 23, 58.Google Scholar
Holman, R. T. (1968). Prog. Chem. Fats 9, 275.CrossRefGoogle Scholar
Holman, R. T. (1970). Prog. Chem. Fats 9, 607.Google Scholar
Kishimoto, Y., Agranoff, B. W., Radin, N. S. & Burton, R. M. (1969). J. Neurochem. 16, 397.CrossRefGoogle Scholar
Kummerow, F. A., Pan, H. P. & Hickman, H. (1952). J. Nutr. 46, 489.Google Scholar
Logan, J. E., Mannell, W. A. & Rossiter, R. J. (1952). Biochem. J. 51, 470.CrossRefGoogle Scholar
Mohrhauer, H. & Holman, R. T. (1963). J. Lipid Res. 4, 151.CrossRefGoogle Scholar
Paoletti, R. & Galli, C. (1972.). In Lipids, Malnutrition and the Developing Brain p. 121 [Elliott, K. and Knight, J., editors]. Amsterdam: Associated Scientific Publishers.Google Scholar
Seiler, D. & Hasselbach, W. (1971). Eur. J.Biochem. 21, 385.CrossRefGoogle Scholar
Simonson, M., Stephan, J. K., Hanson, H. M., & Chow, B. F. (1971). J. Nutr. 101, 331.Google Scholar
Sinclair, A. J. & Collins, F. D. (1968). Biochim. biophys. Acta 152, 498.Google Scholar
Sinclair, A. J. & Collins, F. D. (1970). Br. J. Nutr. 4, 971.Google Scholar
Sinclair, A. J. & Crawford, M. A. (1972). J. Neurochem. 19, 1753.Google Scholar
Smart, J. L. & Dobbing, J. (1971). Brain Res. 28, 85.CrossRefGoogle Scholar
Snipes, R. L. (1968). Lab. Invest. 18, 179.Google Scholar
Steinberg, A. B., Clarke, G. B. & Ramwell, P. W. (1968). Devl Psychobiol. 1, 225.CrossRefGoogle Scholar
White, H. B. Jr, Galli, C. & Paoletti, R. (1971.). J. Neurochem. 18, 869.Google Scholar
Winick, M. (1968). Pediat. Res. 2, 352.Google Scholar
Zamenhof, S., Van Marthens, E. & Grauel, L. (1971). J. Nutr. 101, 1265.CrossRefGoogle Scholar