Seminars in Fetal & Neonatal Medicine
Volume 12, Issue 1 , Pages 2-10 , February 2007

Energy requirements

References 

  1. Westerterp KR, Lafeber HN, Sulkers EJ, Sauer PJ. Comparison of short term indirect calorimetry and doubly labeled water method for the assessment of energy expenditure in preterm infants. Biol Neonate. 1991;60(2):75–82
  2. Sauer PJJ. Methods of measuring energy balance: calorimetry and doubly labeled water. In:  Thureen PJ,  Hay WW editor. Neonatal nutrition and metabolism. Cambridge: Cambridge University Press; 2006;p. 609–616
  3. van Goudoever J, Sulkers E, Lafeber H, Sauer P. Short-term growth and substrate use in very-low-birth-weight infants fed formulas with different energy contents. Am J Clin Nutr. 2000;71(3):816–821
  4. Leitch C, Denne S. Energy. In:  Tsang C,  Uauy R,  Koletzko B,  Zlotkin SH editor. Nutrition of the preterm infant. Digital Educational Publishing, Inc.; 2005;p. 23–44
  5. Kashyap S, Schulze KF. Energy requirements and protein-energy metabolism and balance in preterm and term neonates. In:  Thureen PJ,  Hay WW editor. Neonatal nutrition and metabolism. Cambridge: Cambridge University Press; 2006;p. 134–146
  6. 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
  7. Bijleveld CM, Vonk RJ, Okken A, Fernandes J. Fat absorption in preterm infants fed a taurine-enriched formula. Eur J Pediatr. 1987;146(2):128–130
  8. Atkinson SA, Bryan MH, Anderson GH. Human milk feeding in premature infants: protein, fat, and carbohydrate balances in the first two weeks of life. J Pediatr. 1981;99(4):617–624
  9. De Curtis M, Senterre J, Rigo J, Putet G. Carbohydrate derived energy and gross energy absorption in preterm infants fed human milk or formula. Arch Dis Child. 1986;61(9):867–870
  10. Kien CL. Digestion, absorption, and fermentation of carbohydrates in the newborn. Clin Perinatol. 1996;23(2):211–228
  11. Picaud JC, Putet G, Rigo J, Salle BL, Senterre J. Metabolic and energy-balance in small-for-gestational-age and appropriate-for-gestational-age, very-low-birth-weight infants. Acta Paediatrica. 1994;83:54–59
  12. Rings EHHM, Minich DM, Vonk RJ, Stellaard F, Fetter WPF, Verkade HJ. Functional development of fat absorption in term and preterm neonates strongly correlates with ability to absorb long-chain fatty acids from intestinal lumen. Pediatr Res. 2002;51(1):57–63
  13. Verkade HJ, van Asselt WA, Vonk RJ, Bijleveld CM, Fernandes J, de Jong H, et al. Fat absorption in premature infants: the effect of lard and antibiotics. Eur J Pediatr. 1989;149(2):126–129
  14. Freymond D, Schutz Y, Decombaz J, Micheli JL, Jequier E. Energy balance, physical activity, and thermogenic effect of feeding in premature infants. Pediatr Res. 1986;20(7):638–645
  15. Lubetzky R, Vaisman N, Mimouni F, Dollberg S. Energy expenditure in human milk- versus formula-fed preterm infants. J Pediatr. 2003;143(6):750–753
  16. Bauer J, Maier K, Hellstern G, Linderkamp O. Longitudinal evaluation of energy expenditure in preterm infants with birth weight less than 1000g. Br J Nutr. 2003;89(4):533–537
  17. DeMarie MP, Hoffenberg A, Biggerstaff SL, Jeffers BW, Hay WW, Thureen PJ. Determinants of energy expenditure in ventilated preterm infants. J Perinat Med. 1999;27(6):465–472
  18. Denne S, Pointdexter B. Differences between metabolism and feeding of preterm and term infants. In:  Thureen PJ,  Hay WW editor. Neonatal nutrition and metabolism. Cambridge: Cambridge University Press; 2006;p. 437–444
  19. Leitch CA, Ahlrichs J, Karn C, Denne SC. Energy expenditure and energy intake during dexamethasone therapy for chronic lung disease. Pediatr Res. 1999;46(1):109–113
  20. Bohler T, Kramer T, Janecke AR, Hoffmann GF, Linderkamp O. Increased energy expenditure and fecal fat excretion do not impair weight gain in small-for-gestational-age preterm infants. Early Hum Dev. 1999;54(3):223–234
  21. Wahlig TM, Gatto CW, Boros SJ, Mammel MC, Mills MM, Georgieff MK. Metabolic response of preterm infants to variable degrees of respiratory illness. J Pediatr. 1994;124(2):283–288
  22. Bauer K, Laurenz M, Ketteler J, Versmold H. Longitudinal study of energy expenditure in preterm neonates <30weeks' gestation during the first three postnatal weeks. J Pediatr. 2003;142(4):390–396
  23. Hazan J, Chessex P, Piedboeuf B, Bourgeois M, Bard H, Long W. Energy expenditure during synthetic surfactant replacement therapy for neonatal respiratory distress syndrome. J Pediatr. 1992;120(2 Pt 2):S29–S33
  24. Bauer J, Maier K, Muehlbauer B, Poeschl J, Linderkamp O. Energy expenditure and plasma catecholamines in preterm infants with mild chronic lung disease. Early Human Dev. 2003;72(2):147–157
  25. Yeh TF, McClenan DA, Ajayi OA, Pildes RS. Metabolic rate and energy balance in infants with bronchopulmonary dysplasia. J Pediatr. 1989;114(3):448–451
  26. Kao LC, Durand DJ, Nickerson BG. Improving pulmonary function does not decrease oxygen consumption in infants with bronchopulmonary dysplasia. J Pediatr. 1988;112(4):616–621
  27. Kalhan S, Denne S. Energy consumption in infants with bronchopulmonary dysplasia. J Pediatr. 1990;116(4):662–664
  28. de Meer K, Westerterp KR, Houwen RH, Brouwers HA, Berger R, Okken A. Total energy expenditure in infants with bronchopulmonary dysplasia is associated with respiratory status. Eur J Pediatr. 1997;156(4):299–304
  29. Huysman WA, de Ridder M, de Bruin NC, van Helmond G, Terpstra N, van Goudoever JB, et al. Growth and body composition in preterm infants with bronchopulmonary dysplasia. Arch Dis Child Fetal Neonatal Ed. 2003;88(1):F46–F51
  30. van Goudoever JB, Wattimena JD, Carnielli VP, Sulkers EJ, Degenhart HJ, Sauer PJ. Effect of dexamethasone on protein metabolism in infants with bronchopulmonary dysplasia. J Pediatr. 1994;124(1):112–118
  31. Carnielli V, Verlato G, Benini F, Rossi K, Cavedagni M, Filippone M, et al. Metabolic and respiratory effects of theophylline in the preterm infant. Arch Dis Child Fetal Neonatal Ed. 2000;83(1):F39–F43
  32. Gerhardt T, McCarthy J, Bancalari E. Effect of aminophylline on respiratory center activity and metabolic rate in premature infants with idiopathic apnea. Pediatrics. 1979;63(4):537–542
  33. Milsap RL, Krauss AN, Auld PA. Oxygen consumption in apneic premature infants after low-dose theophylline. Clin Pharmacol Ther. 1980;28(4):536–540
  34. Fjeld CR, Cole FS, Bier DM. Energy expenditure, lipolysis, and glucose production in preterm infants treated with theophylline. Pediatr Res. 1992;32(6):693–698
  35. Bauer J, Maier K, Linderkamp O, Hentschel R. Effect of caffeine on oxygen consumption and metabolic rate in very low birth weight infants with idiopathic apnea. Pediatrics. 2001;107(4):660–663
  36. Schmidt B, Roberts R, Davis P, Doyle L, Barrington K, Ohlsson A, et al. Caffeine therapy for apnea of prematurity. N Engl J Med. 2006;354(20):2112–2121
  37. Bauer J, Hentschel R, Linderkamp O. Effect of sepsis syndrome on neonatal oxygen consumption and energy expenditure. Pediatrics. 2002;110(6):e69
  38. Mrozek JD, Georgieff MK, Blazar BR, Mammel MC, Schwarzenberg SJ. Effect of sepsis syndrome on neonatal protein and energy metabolism. J Perinatol. 2000;20(2):96–100
  39. Mitton SG, Calder AG, Garlick PJ. Protein turnover rates in sick, premature neonates during the first few days of life. Pediatr Res. 1991;30(5):418–422
  40. Seashore JH, Huszar G, Davis EM. Urinary 3-methylhistidine/creatinine ratio as a clinical tool: correlation between 3-methylhistidine excretion and metabolic and clinical states in healthy and stressed premature infants. Metabolism. 1981;30(10):959–969
  41. Leitch CA, Wright-Coltart S, Denne SC, Torine I. Energy expenditure in extremely preterm infants with and without sepsis. Faseb J. 2005;19(5):A1036
  42. Tueting J, Byerley L, Chwals W. Anabolic recovery relative to degree of prematurity after acute injury in neonates. J Pediatr Surg. 1999;34(1):13–17
  43. Powis MR, Smith K, Rennie M, Halliday D, Pierro A. Characteristics of protein and energy metabolism in neonates with necrotizing enterocolitis–A pilot study. J Pediatr Surg. 1999;34(1):5–12
  44. Chwals WJ, Letton RW, Jamie A, Charles B. Stratification of injury severity using energy expenditure response in surgical infants. J Pediatr Surg. 1995;30(8):1161–1164
  45. Jones MO, Pierro A, Hammond P, Lloyd DA. The metabolic response to operative stress in infants. J Pediatr Surg. 1993;28(10):1258–1262
  46. Jaksic T, Shew S, Keshen T, Dzakovic A, Jahoor F. Do critically ill surgical neonates have increased energy expenditure?. J Pediatr Surg. 2001;36(1):63–67
  47. Sauer PJ, Dane HJ, Visser HK. New standards for neutral thermal environment of healthy very low birthweight infants in week one of life. Arch Dis Child. 1984;59(1):18–22
  48. Dollberg , Mimouni F, Weintraub V. Energy expenditure in infants weaned from a convective incubator. Am J Perinatol. 2004;21(5):253–256
  49. Kjartansson S, Hammarlund K, Riesenfeld T, Sedin G. Respiratory water loss and oxygen consumption in newborn infants during phototherapy. Acta Paediatr. 1992;81(10):769–773
  50. Fok TF, Gu JS, Lim CN, Ng PC, Wong HL, So KW. Oxygen consumption and resting energy expenditure during phototherapy in full term and preterm newborn infants. Arch Dis Child Fetal Neonatal Ed. 2001;85(1):F49–F52
  51. Bauer J, Sontheimer D, Fischer C, Linderkamp O. Metabolic rate and energy balance in very low birth weight infants during kangaroo holding by their mothers and fathers. J Pediatr. 1996;129(4):608–611
  52. Bauer K, Uhrig C, Sperling P, Pasel K, Wieland C, Versmold H. Body temperatures and oxygen consumption during skin-to-skin (kangaroo) care in stable preterm infants weighing less than 1500grams. J Pediatr. 1997;130(2):240–244
  53. Forsyth JS, Crighton A. Low birthweight infants and total parenteral nutrition immediately after birth. I. Energy expenditure and respiratory quotient of ventilated and non-ventilated infants. Arch Dis Child Fetal Neonatal Ed. 1995;73(1):F4–F7
  54. Chessex P, Reichman B, Verellen G, Putet G, Smith J, Heim T, et al. Influence of postnatal age, energy intake, and weight gain on energy metabolism in the very low-birth-weight infant. J Pediatr. 1981;99(5):761–766
  55. Leitch CA, Denne SC. Energy expenditure in the extremely low-birth weight infant. Clin Perinatol. 2000;27(1):181–195
  56. Samiec TD, Radmacher P, Hill T, Adamkin DH. Measured energy expenditure in mechanically ventilated very low birth weight infants. Am J Med Sci. 1994;307(3):182–184
  57. Garza J, Shew S, Keshen T, Dzakovic A, Jahoor F, Jaksic T. Energy expenditure in ill premature neonates. J Pediatr Surg. 2002;37(3):289–293
  58. Cockerill J, Uthaya S, Dore CJ, Modi N. Accelerated postnatal head growth follows preterm birth. Arch Dis Child Fetal Neonatal Ed. 2006;91(3):F184–F187
  59. Fairey AK, Butte NF, Mehta N, Thotathuchery M, Schanler RJ, Heird WC. Nutrient accretion in preterm infants fed formula with different protein:energy ratios. J Pediatr Gastroenterol Nutr. 1997;25(1):37–45
  60. Kashyap S, Schulze KF, Ramakrishnan R, Dell RB, Heird WC. Evaluation of a mathematical model for predicting the relationship between protein and energy intakes of low-birth-weight infants and the rate and composition of weight gain. Pediatr Res. 1994;35(6):704–712
  61. 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
  62. Denne SC. Protein and energy requirements in preterm infants. Semin Neonatol. 2001;6(5):377–382
  63. Barker DJ, Winter PD, Osmond C, Margetts B, Simmonds SJ. Weight in infancy and death from ischaemic heart disease. Lancet. 1989;2(8663):577–580
  64. Huxley RR, Shiell AW, Law CM. The role of size at birth and postnatal catch-up growth in determining systolic blood pressure: a systematic review of the literature. J Hypertens. 2000;18(7):815–831
  65. Lucas A. Programming by early nutrition in man. Ciba Found Symp. 1991;156:38–50[discussion 50–5:38–50]
  66. Metcalfe N, Monaghan P. Compensation for a bad start: grow now, pay later?. Trends Ecol Evol. 2001;16(5):254–260
  67. Singhal A, Lucas A. Early origins of cardiovascular disease: is there a unifying hypothesis?. The Lancet. 2004;363(9421):1642–1645
  68. Singhal A, Cole T, Lucas A. Early nutrition in preterm infants and later blood pressure: two cohorts after randomised trials. Lancet. 2001;357(9254):413–419
  69. Eriksson JG, Forsen T, Tuomilehto J, Osmond C, Barker DJP. Early growth and coronary heart disease in later life: longitudinal study. BMJ. 2001;322(7292):949–953
  70. Singhal A, Cole T, Fewtrell M, Deanfield J, Lucas A. Is slower early growth beneficial for long-term cardiovascular health?. Circulation. 2004;109(9):1108–1113
  71. Law CM, Shiell AW, Newsome CA, Syddall HE, Shinebourne EA, Fayers PM, et al. Fetal, infant, and childhood growth and adult blood pressure: a longitudinal study from birth to 22years of age. Circulation. 2002;105(9):1088–1092
  72. Merry BJ. Dietary restriction in rodents–delayed or retarded ageing?. Mech Ageing Dev. 2005;126(9):951–959
  73. Brandt I, Sticker E, Lentze M. Catch-up growth of head circumference of very low birth weight, small for gestational age preterm infants and mental development to adulthood. J Pediatr. 2003;142(5):463–470
  74. Vohr B, Leslie T. 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
  75. Georgieff MK, Hoffman JS, Pereira GR, Bernbaum J, Hoffman-Williamson M. Effect of neonatal caloric deprivation on head growth and 1-year developmental status in preterm infants. J Pediatr. 1985;107(4):581–587
  76. Thureen PJ, Heird WC. Protein and energy requirements of the preterm/low birthweight (LBW) infant. Pediatr Res. 2005;57(5_Part_2):95R–98R

PII: S1744-165X(06)00106-5

doi: 10.1016/j.siny.2006.10.008

Seminars in Fetal & Neonatal Medicine
Volume 12, Issue 1 , Pages 2-10 , February 2007