Mechanisms behind decreased endogenous glucose production in malnourished children

被引:33
作者
Bandsma R.H.J. [1 ,2 ,7 ]
Mendel M. [3 ]
Spoelstra M.N. [3 ]
Reijngoud D.-J. [3 ]
Boer T. [3 ]
Stellaard F. [3 ]
Brabin B. [5 ,6 ]
Schellekens R. [4 ]
Senga E. [1 ]
Tom Heikens G. [2 ]
机构
[1] Departments of Biochemistry, University of Malawi
[2] Departments of Paediatrics and Child Health, University of Malawi
[3] Center for Liver, Digestive and Metabolic Diseases, University Medical Center Groningen
[4] Department of Clinical Pharmacy, University Medical Center Groningen
[5] Child and Reproductive Health Group, Liverpool School of Tropical Medicine
[6] Emma Kinderziekenhuis, Academic Medical Centre, University of Amsterdam
[7] Division of Gastroenterology, Hepatology and Nutrition, Hospital for Sick Children, Toronto, ON M5G 1X8
关键词
D O I
10.1203/PDR.0b013e3181f2b959
中图分类号
学科分类号
摘要
Severe malnutrition is a major health problem in developing countries and can present itself as kwashiorkor or marasmus. Although marasmus is characterized by clinical wasting, kwashiorkor is associated with peripheral edema, oxidative stress, hypoalbuminemia, and hypoglycemia. The etiology of the hypoglycemia is poorly understood. We determined endogenous glucose production (EGP) in children with severe malnutrition. Children with kwashiorkor, marasmus, and controls received a primed constant infusion of [6,6H2]glucose for 2 h. An i.v. bolus of C-ketoisocaproic acid (KIC) was given, and breath samples were obtained during 2 h. Isotope dilution was used to calculate EGP, and CO2/CO2 production was determined. Mean EGP ± SEM was 5.5 ± 0.3 mg/kg/min in the kwashiorkor group and 6.9 ± 0.4 mg/kg/min and 7.6 ± 0.7 mg/kg/min in the marasmic and control group, respectively, (p < 0.05 kwashiorkor versus marasmus and controls). EGP correlated with serum albumin concentration (r = 0.67; p < 0.001) and urinary 8-hydroxydeoxyguanosine as a marker of oxidative stress (r = -0.62; p < 0.005). CO2 secretion as a marker of hepatic mitochondrial function was significantly higher in the marasmic group compared with kwashiorkor and controls. We conclude that decreased EGP in severely malnourished children is related to the degree of hypoalbuminemia and oxidative stress but is not associated with a clear defect in hepatic mitochondrial function. © 2010 International Pediatric Research Foundation, Inc.
引用
收藏
页码:423 / 428
页数:5
相关论文
共 43 条
  • [1] Bejon P., Mohammed S., Mwangi I., Atkinson S.H., Osier F., Peshu N., Newton C.R., Maitland K., Berkley J.A., Fraction of all hospital admissions and deaths attributable to malnutrition among children in rural Kenya, Am J Clin Nutr, 88, pp. 1626-1631, (2008)
  • [2] Black R.E., Allen L.H., Bhutta Z.A., Caulfield L.E., De Onis M., Ezzati M., Mathers C., Rivera J., Maternal and child undernutrition: Global and regional exposures and health consequences, Lancet, 371, pp. 243-260, (2008)
  • [3] Heikens G.T., Bunn J., Amadi B., Manary M., Chhagan M., Berkley J.A., Rollins N., Kelly P., Adamczick C., Maitland K., Tomkins A., Case management of HIV-infected severely malnourished children: Challenges in the area of highest prevalence, Lancet, 371, pp. 1305-1307, (2008)
  • [4] Golden M.H., Oedematous malnutrition, Br Med Bull, 54, pp. 433-444, (1998)
  • [5] Buchanan N., Moodley G., Eyberg C., Bloom S.R., Hansen J.D., Hypoglycaemia associated with severe kwashiorkor, S Afr Med J, 50, pp. 1442-1446, (1976)
  • [6] Williams C.D., Kwashiorkor: A nutritional disease of children associated with a maize diet. 1935, Arch Dis Child, 8, pp. 423-433, (1933)
  • [7] Chanda N.K., Pathological study of the liver in kwashiorkor, BMJ, 1, pp. 1263-1266, (1958)
  • [8] Kerpel-Fronius E., Kaiser E., Hypoglycaemia in infantile malnutrition, Acta Paediatr Scand, 56, pp. 119-127, (1967)
  • [9] Wharton B., Hypoglycaemia in children with kwashiorkor, Lancet, 1, pp. 171-173, (1970)
  • [10] Kerr D.S., Stevens M.C., Picou D.I., Fasting metabolism in infants: II. The effect of severe undernutrition and infusion of alanine on glucose production estimated with U-13C-glucose, Metabolism, 27, pp. 831-848, (1978)