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Energy balance of pregnant diabetic rats

Published online by Cambridge University Press:  09 March 2007

Ruth Yamada
Affiliation:
Federal University of São Paulo – São Paulo Medical School (UNIFESP) Department of Physiology, São Paulo, Brazil
Mauro A. Griggio
Affiliation:
Federal University of São Paulo – São Paulo Medical School (UNIFESP) Department of Physiology, São Paulo, Brazil
Jacqueline Luz*
Affiliation:
Federal University of São Paulo – São Paulo Medical School (UNIFESP) Department of Physiology, São Paulo, Brazil
*
*Corresponding author: Dr Jacqueline Luz, fax +55 11 5575 9165, email [email protected]
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Abstract

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Pregnancy and diabetes lead to metabolic alterations in the energy balance that may not be completely independent. The objective of the present study was to look at the alterations induced by type 1 diabetes mellitus on the energy balance of pregnant rats and the offspring. Diabetes was induced by streptozotocin injection 15 d before the starting of pregnancy. The rats had their energy balance variables followed for 21 d. Protein, fat and energy content of dams was determined from samples of the carcasses. Pregnancy led to increased energy intake, energy gain and energy expenditure as well as higher gross food efficiency than non-pregnant counterparts. Diabetes increased metabolizable energy intake but not the energy gain of the animals: they had very high energy expenditure, so that diabetes blocked the improvement in gross food efficiency shown during pregnancy. Offspring from diabetic dams were born with lower body weight. Pregnant animals did not present the usual energy storage as seen by lower energy gain of diabetic dams as well as by the lower fat content in the carcasses of pregnant diabetic rats. It is concluded that diabetes impairs the energy variables usually enhanced by pregnancy alone.

Type
Research Article
Copyright
Copyright © The Nutrition Society 2002

References

Altan, VM, Yildizoglu, N & Öztürk, Y (1987) Decreased gastro-intestinal response to certain agonists in streptozotocin-and alloxan-diabetic rats in vitro. Pharmacology 34, 143149.Google Scholar
Anderson, S, Jung, FF & Ingelfinger, JR (1993) Renal renin–angiotensin system in diabetes: functional, immunohistochemical, and molecular biological correlations. American Physiology Society 34, F477F486.Google Scholar
Andrews, JF, Richard, D, Jennings, G & Trayhurn, P (1986) Brown adipose tissue thermogenesis during pregnancy in mice. Annals of Nutrition and Metabolism 30, 8793.CrossRefGoogle ScholarPubMed
Atkins, V, Flozak, AS, Ogata, ES & Simmons, RA (1994) The effects of severe maternal diabetes on glucose transport in fetal rat. Endocrinology 135, 409415.CrossRefGoogle ScholarPubMed
Bennet, WM, Connacher, AA, Jung, RT, Stehle, P & Rennie, MJ (1991) Effects of insulin and aminoacids on leg protein turnover in IDDM patients. Diabetes 40, 499508.CrossRefGoogle ScholarPubMed
Boden, G (1996) Fuel metabolism in pregnancy and in gestational diabetes mellitus. Obstetric and Gynecology Clinics of North America 23, 110.CrossRefGoogle ScholarPubMed
Boden, G, Owen, OE, Rezvani, I, Ecfenlecin, IB & Ovickel, KE (1977) An islet cell carcinoma containing glucagon and insulin. Chronic glucagon excess and glucose homeostasis. Diabetes 26, 128137.CrossRefGoogle ScholarPubMed
Charlton, M & Nair, KS (1998 a) Protein metabolism in insulin-dependent diabetes mellitus. Journal of Nutrition 128, 323S327S.CrossRefGoogle ScholarPubMed
Charlton, M & Nair, KS (1998 b) Role of hyperglucagonemia in catabolism associated with type 1 diabetes – effects on leucine metabolism and the resting metabolic rate. Diabetes 47, 17481756.CrossRefGoogle ScholarPubMed
Chaves, JM & Herrera, E (1980) In vitro response of glycerol metabolism to insulin and adrenaline in adipose tissue from fed and fasted rats during pregnancy. Biology of the Neonate 38, 139145.CrossRefGoogle ScholarPubMed
Clarson, C, Tevaarwerk, GJ, Harding, PG, Chance, GW & Haust, MD (1989) Placental weight in diabetic pregnancies. Placentae 10, 275281.CrossRefGoogle ScholarPubMed
Claubat, M, Stirnemann, B, Bouftila, B & Robert, I (1997) Beneficial effect induced by a beta-adrenoceptor blocker on fetal growth in streptozotocin-diabetic rats. Biology of Neonate 71, 171180.CrossRefGoogle Scholar
Diamant, YZ (1991) The placenta in diabetes mellitus. Israel Journal of Medical Science 27, 493497.Google ScholarPubMed
Ezekwe, MO, Ezekwe, EI, Sem, DK & Ogolla, F (1984) Effects of maternal streptozotocin-diabetes on fetal growth, energy reserves and body composition of newborn pigs. Journal of Animal Science 59, 974980.CrossRefGoogle ScholarPubMed
Felig, P & Bergman, M (1995) The endocrine pancreas: diabetes mellitus. In Endocrinology and Metabolism, pp. 11071250 [Felig, P, Baxter, JD and Frohman, LA, editors]. New York, NY: McGraw-Hill Inc.Google Scholar
Folch, J, Lees, M & Sloane-Stanley, GHA (1957) A simple method for isolation and purification of total lipides from animal tissue. Journal of Biological Chemistry 226, 497509.CrossRefGoogle Scholar
Forsum, E, Sadurskis, A & Wager, J (1988) Resting metabolic rate and body composition on healthy Swedish women during pregnancy. American Journal of Clinical Nutrition 47, 942947.CrossRefGoogle ScholarPubMed
Fu, Q, Honda, M, Ohgawara, H, Igarashi, N, Toyoda, C, Omori, Y & Kobayashi, M (1996) Morphological analysis of pancreatic endocrine cells in newborn animals delivered by experimental diabetic rats. Diabetes Research and Clinical Practice 32, 5762.CrossRefGoogle Scholar
Geiger, H, Bahner, U, Vaaben, W, Dammrich, J, Heidland, A & Luft, FC (1992) Effects of angiotensin-converting enzyme inhibition in diabetic rats with reduced renal function. Journal of Laboratory and Clinical Medicine 6, 861868.Google Scholar
Giavini, E, Airoldi, L, Broccia, ML, Roversi, GD & Prati, M (1993) Effects of diets with different content in protein and fiber on embryotoxicity induced by experimental diabetes in rats. Biology of the Neonate 63, 353359.CrossRefGoogle ScholarPubMed
Grishan, FK (1993) Calcium transport by basolateral membranes of diabetic rats. American Journal of Clinical Nutrition 58, 209214.CrossRefGoogle Scholar
Hay, WW Jr (1991) Energy and substrate requirements of the placenta and fetus. Proceedings of Nutrition Society 50, 321366.CrossRefGoogle ScholarPubMed
Hirsch, RP & Riegelman, RK (1992) Statistical First Aid: Interpretation of Health Research Data. Boston, MA: Blackwell Scientific Publications.Google Scholar
Hod, M, Merlob, P, Friedman, S, Rusecki, Y, Schoenfeld, A & Ovadia, J (1991) Prevalence of congenital anomalies and neonatal complications in the offspring of diabetic mothers in Israel. Israel Journal of Medical Science 27, 498502.Google ScholarPubMed
Illisley, NP (2000) Placental glucose transport in diabetic pregnancy. Clinical Obstetrics and Gynecology 43, 116126.CrossRefGoogle Scholar
La Marca, A, Morgante, G & De Leo, V (1999) Evaluation of hypothalamic–pituitary–adrenal axis in amenorrhoeic women with insulin-dependent diabetes. Human Reproduction 14, 298302.CrossRefGoogle ScholarPubMed
Leshner, AI & Litwin, VA (1972) A simple method for carcass analysis. Physiology and Behavior 9, 282289.CrossRefGoogle ScholarPubMed
Luz, J & Griggio, MA (1990) Energy balance of pregnant rats. Brazilian Journal of Medical and Biological Research 23, 729733.Google ScholarPubMed
Luz, J & Griggio, MA (1992) Energy balance of pregnant rats in a cold environment. Journal of Thermal Biology 17, 235239.CrossRefGoogle Scholar
Luz, J & Griggio, MA (1998) Effects of aging on the energy balance of pregnant rats. Annals of Nutrition and Metabolism 42, 237243.CrossRefGoogle ScholarPubMed
Mayhew, TM, Sorensen, FB, Klebe, JG & Jackson, MR (1993) The effects of mode of delivery and sex of newborn on placental morphology in control and diabetic pregnancies. Journal of Anatomy 183, 545552.Google ScholarPubMed
Menegola, E, Prati, M, Broccia, ML, Ricolfi, R & Giavini, E (1995) In vitro development of rat embryos obtained from diabetic mothers. Experientia 51, 394397.CrossRefGoogle ScholarPubMed
Merry, BJ & Holehan, AM (1994) Aging of the female reproductive system: the menopause. In Physiological Basis of Aging and Geriatrics, pp. 147170 [Timiras, PS, editor]. Boca Raton, FL: CRC Press.Google Scholar
Molnár, D, Decsi, T & Soltesz, G (1989) Increased thermogenesis in children with type I diabetes. British Medical Journal 299, 919.CrossRefGoogle ScholarPubMed
Müller, MJ, Mühlen, A, Lautz, HU, Schmidt, FW, Daiber, M & Hurter, P (1989) Energy expenditure in children with type I diabetes: evidence for increased thermogenesis. British Medical Journal 299, 487491.CrossRefGoogle ScholarPubMed
Murphy, SP & Abrams, BF (1993) Changes in energy intake during pregnancy and lactation in a national sample of US women. American Journal of Public Health 83, 11611163.CrossRefGoogle Scholar
Nair, KS, Halliday, D & Garrow, JS (1984) Increased energy expenditure in poorly controlled type 1 (insulin-dependent) diabetic patients. Diabetologia 27, 1316.CrossRefGoogle ScholarPubMed
Nair, KS, Halliday, D, Matthews, DL & Welle, SL (1987) Hyperglucagonemia during insulin deficiency accelerates protein catabolism. American Journal of Physiology 253, E208E213.Google ScholarPubMed
Nair, KS (1987) Hyperglucagonemia increases resting metabolic rate in man during insulin deficiency. Journal of Clinical Endocrinology and Metabolism 64, 896901.CrossRefGoogle ScholarPubMed
Naismith, DJ & Brookes, RH (1983) Energetic efficiency during pregnancy. Proceedings of Nutrition Society 64, 79A.Google Scholar
Öztürk, Y, Aydin, S, Özçelikay AT, Altan, VM & Yildizoglu-Ari, N (1997) Calmodulin content and in vitro contractility of duodenum from streptozotocin-induced diabetic rats: effects of insulin therapy and calmodulin antagonism. European Journal of Pharmacology 321, 5965.CrossRefGoogle ScholarPubMed
Richard, D & Trayhurn, P (1985) Energetic efficiency during pregnancy in mice fed ad libitum or pair-fed to the normal energy intake of unmated animals. Journal of Nutrition 115, 593600.CrossRefGoogle ScholarPubMed
Rosso, P (1975) Changes in the transfer of nutrients across placenta during normal gestation in the rat. American Journal of Obstetrics and Gynecology 122, 761766.CrossRefGoogle ScholarPubMed
Rudge, MVC, Calderon, IMP, Ramos, MD & Rodriguez, MAM (1995) Diabetes and experimental pregnancy in rats: course of maternal blood glucose levels and its repercussions on the blood glucose levels and pancreas of newborn pups. Brazilian Journal of Medical and Biological Research 28, 219255.Google ScholarPubMed
Salter, JM (1960) Metabolic effects of glucagon in the Wistar rat. American Journal of Clinical Nutrition 8, 535539.CrossRefGoogle Scholar
Shamoon, H, Hendler, R & Sherwin, RS (1980) Altered responsiveness to cortisol, epinerine, and glucagon insulin-infused juvenile onset diabetics. Diabetes 29, 284291.CrossRefGoogle ScholarPubMed
Siman, CM & Ericksson, UJ (1997) Vitamin E decreases the occurrence of malformations in the offspring of diabetic rats. Diabetes 46, 10541061.CrossRefGoogle ScholarPubMed
Takenaka, Y & Toyoda, N (1995) The effect of alpha 1-blocking vasodilator on fetal growth and uteroplacental blood flow in streptozotocin-induced diabetic rats. Life Science 56, 11271134.CrossRefGoogle ScholarPubMed
Trayhurn, P (1989) Thermogenesis and the energetics of pregnancy and lactation. Canadian Journal of Physiology and Pharmacology 67, 370375.CrossRefGoogle ScholarPubMed
Uvena-Celebrezze, J & Catalano, PM (2000) The infant of the woman with gestational diabetes mellitus. Clinical Obstetrics and Gynecology 43, 127139.CrossRefGoogle ScholarPubMed
Wongsurawat, N & Armbrecht, HJ (1991) Calcitonin stimulates 1,25-dihydroxyvitamin D production in diabetic rat kidney. Metabolism 40, 2225.CrossRefGoogle Scholar