Seminars in Fetal & Neonatal Medicine
Volume 12, Issue 1 , Pages 78-86 , February 2007

Postnatal nutrition and adult health programming

References 

  1. Hales CN, Barker DJ. The thrifty phenotype hypothesis. Br Med Bull. 2001;60:5–20
  2. Gluckman PD, Hanson MA, Spencer HG. Predictive adaptive responses and human evolution. Trends Ecol Evol. 2005;20(10):527–533
  3. Simmons . Developmental origins of adult metabolic disease. Endocrinol Metab Clin N Am. 2006;35(1):193–204
  4. Lucas A. Long-term programming effects of early nutrition – implications for the preterm infant. J Perinatol. 2005;25(Suppl. 2):S2–S6
  5. Barker DJP. The developmental origins of adult disease. J Am Coll Nutr. 2004;23(Suppl. 6):588S–595S
  6. Robertson AF, Baker JP. Lessons from the past. Semin Fetal Neonatal Med. 2005;10(1):23–30
  7. Thureen PJ, Hay J, William W. Early aggressive nutrition in preterm infants. Semin Neonatol. 2001;6(5):403–415
  8. Pritchard JA. Fetal swallowing and amniotic fluid volume. Obstet Gynecol. 1966;28(5):606–610
  9. Ehrenkranz RA, Younes N, Lemons JA, Fanaroff AA, Donovan EF, Wright LL, et al. Longitudinal growth of hospitalized very low birth weight infants. Pediatrics. 1999;104(2 Pt.1):280–289
  10. Embleton NE, Pang N, Cooke RJ. Postnatal malnutrition and growth retardation: an inevitable consequence of current recommendations in preterm infants?. Pediatrics. 2001;107(2):270–273
  11. De Curtis M, Rigo J. Extrauterine growth restriction in very-low-birthweight infants. Acta Paediatr. 2004;93(12):1563–1568
  12. Vohr BR, McKinley , Leslie Turner. The challenge pays off: early enhanced nutritional intake for VLBW small-for-gestation neonates improves long-term outcome. J Pediatr. 2003;142(5):459–461
  13. Latal-Hajnal B, von Siebenthal K, Kovari H, Bucher HU, Largo RH. Postnatal growth in VLBW infants: significant association with neurodevelopmental outcome. J Pediatr. 2003;143(2):163–170
  14. Poindexter BB, Langer JC, Dusick AM, Ehrenkranz RA. Early provision of parenteral amino acids in extremely low birth weight infants: relation to growth and neurodevelopmental outcome. J Pediatr. 2006;148(3):300
  15. Hay J, William W, Thureen PJ. Early postnatal administration of intravenous amino acids to preterm, extremely low birth weight infants. J Pediatr. 2006;148(3):291–294
  16. Ozanne SE, Hales NC. Poor fetal growth followed by rapid postnatal catch-up growth leads to premature death. Mech Ageing Dev. 2005;126(8):852–854
  17. Singhal A, Fewtrell M, Cole TJ, Lucas A. Low nutrient intake and early growth for later insulin resistance in adolescents born preterm. Lancet. 2003;361(9363):1089–1097
  18. Singhal A, Cole TJ, Fewtrell M, Deanfield J, Lucas A. Is slower early growth beneficial for long-term cardiovascular health?. Circulation. 2004;109(9):1108–1113
  19. Ong KK, Dunger DB. Perinatal growth failure: the road to obesity, insulin resistance and cardiovascular disease in adults. Best Practice Res Clin Endocrinol Metab. 2002;16(2):191–207
  20. Hofman PL, Regan F, Jackson WE, Jefferies C, Knight DB, Robinson EM, et al. Premature Birth and Later Insulin Resistance. N Engl J Med. 2004;351(21):2179–2186
  21. Goodpaster BH, Krishnaswami S, Harris TB, Katsiaras A, Kritchevsky SB, Simonsick EM, et al. Obesity, regional body fat distribution, and the metabolic syndrome in older men and women. Arch Intern Med. 2005;165(7):777–783
  22. Uthaya S, Thomas EL, Hamilton G, Doré CJ, Bell J, Modi N. Altered adiposity after extremely preterm birth. Pediatr Res. 2005;57(2):211–215
  23. Lo H-C, Tsao L-Y, Hsu W-Y, Chen H-N, Yu W-K, Chi C-Y. Relation of cord serum levels of growth hormone, insulin-like growth factors, insulin-like growth factor binding proteins, leptin, and interleukin-6 with birth weight, birth length, and head circumference in term and preterm neonates. Nutrition. 2002;18(7–8):604–608
  24. Dominici F, Balbis A, Bartke A, Turyn D. Role of hyperinsulinemia on hepatic insulin receptor concentration and autophosphorylation in the presence of high growth hormone levels in transgenic mice overexpressing growth hormone gene. J Endocrinol. 1998;159(1):15–25
  25. Neu J. Elucidating molecular mechanisms of the developmental origins hypothesis: p53 phosphorylation, apoptosis, and nephrogenesis. Am J Physiol Regul Integr Comp Physiol. 2006;291(2):R410–R411
  26. Baserga M, Hale MA, Ke X, Wang ZM, Yu X, Callaway CW, et al. Uteroplacental insufficiency increases p53 phosphorylation without triggering the p53-MDM2 functional circuit response in the IUGR rat kidney. Am J Physiol Regul Integr Comp Physiol. 2006;291(2):R412–R418
  27. Mott G, Jackson E, DeLallo L, Lewis D, McMahan C. Differences in cholesterol metabolism in juvenile baboons are programmed by breast- versus formula-feeding. J Lipid Res. 1995;36(2):299–307
  28. Foxcroft GR, Dixon WT, Novak S, Putman CT, Town SC, Vinsky MDA. The biological basis for prenatal programming of postnatal performance in pigs. J Anim Sci. 2006;84(Suppl. 13):E105
  29. McCance RA. Food, growth and time. Lancet. 1962;2:271–272
  30. Hall WG. Weaning and growth of artificially-reared rats. Science. 1975;190:1313–1315
  31. Patel MS, Srinivasan M. Metabolic programming: causes and consequences. J Biol Chem. 2002;277(3):1629–1632
  32. Waterland RA, Garza C. Potential mechanisms of metabolic imprinting that lead to chronic disease. Am J Clin Nutr. 1999;69(2):179–197
  33. Alexander BT. Fetal programming of hypertension. Am J Physiol Regul Integr Comp Physiol. 2006;290(1):R1–R10
  34. Jaenisch R, Bird A. Epigenetic regulation of gene expression: how the genome integrates intrinsic and environmental signals. Nat Genet. 2003;33(Suppl.):245–254
  35. Segal E, Fondufe-Mittendorf Y, Chen L, Thastrom A, Field Y, Moore IK, et al. A genomic code for nucleosome positioning. Nature. 2006;[e-published ahead of print]
  36. Kapoor A, Matthews SG. Short periods of prenatal stress affect growth, behaviour and hypothalamo-pituitary-adrenal axis activity in male guinea pig offspring. J Physiol (Lond). 2005;566(3):967–977
  37. Jarvis S, Moinard C, Robson SK, Baxter E, Ormandy E, Douglas AJ, et al. Programming the offspring of the pig by prenatal social stress: Neuroendocrine activity and behaviour. Horm Behav. 2006;49(1):68–80
  38. Weaver ICG, Cervoni N, Champagne FA, D'Alessio AC, Sharma S, Secki JR, et al. Epigenetic programming by maternal behavior. Nat Neurosci. 2004;7(8):847–854
  39. MacLennan NK, James SJ, Melnyk S, Piroozi A, Jernigan S, Hsu JL, et al. Uteroplacental insufficiency alters DNA methylation, one-carbon metabolism, and histone acetylation in IUGR rats. Physiol Genomics. 2004;18(1):43–50
  40. Waterland RA, Jirtle RL. Early nutrition, epigenetic changes at transposons and imprinted genes, and enhanced susceptibility to adult chronic diseases. Nutrition. 2004;20(1):63–68
  41. Waterland RA, Lin J-R, Smith CA, Jirtle RL. Post-weaning diet affects genomic imprinting at the insulin-like growth factor 2 (Igf2) locus. Hum Mol Genet. 2006;15(5):705–716
  42. Demmelmair H, von Rosen J, Koletzko B. Long-term consequences of early nutrition. Early Human Development. 2006;e-published ahead of print
  43. Owen CG, Martin RM, Whincup PH, Davey-Smith G, Gillman M, Cook D. The effect of breastfeeding on mean body mass index throughout life: a quantitative review of published and unpublished observational evidence. Am J Clin Nutr. 2005;82(6):1298–1307
  44. Yeung M. Postnatal growth, neurodevelopment and altered adiposity after preterm birth–from a clinical nutrition perspective. Acta Paediatr. 2006;95(8):909–917
  45. Smith WJ, Underwood LE, Keyes L, Clemmons DR. Use of insulin-like growth factor I (IGF-I) and IGF-binding protein measurements to monitor feeding of premature infants. J Clin Endocrinol Metab. 1997;82(12):3982–3988
  46. Neu J, Zhang L. Feeding intolerance in very-low-birthweight infants: what is it and what can we do about it?. Acta Paediatr Suppl. 2005;94(449):93–99
  47. Calder PC. Polyunsaturated fatty acids and inflammation. Biochem Soc Trans. 2005;33:423–427
  48. Liboni K, Li N, Neu J. Mechanism of glutamine-mediated amelioration of lipopolysaccharide-induced IL-8 production in Caco-2 cells. Cytokine. 2004;26(2):57–65
  49. Caicedo RA, Schanler RJ, Li N, Neu J. The developing intestinal ecosystem: implications for the neonate. Pediatr Res. 2005;58(4):625–628
  50. Malago JJ, Koninkx JFJG, Tooten PCJ, van Liere EA, van Dijk JE. Anti-inflammatory properties of heat shock protein 70 and butyrate on Salmonella-induced interleukin-8 secretion in enterocyte-like Caco-2 cells. Clin Exper Immunol. 2005;141(1):62–71

PII: S1744-165X(06)00103-X

doi: 10.1016/j.siny.2006.10.009

Seminars in Fetal & Neonatal Medicine
Volume 12, Issue 1 , Pages 78-86 , February 2007