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Published in: European Journal of Nutrition 1/2007

01-02-2007 | ORIGINAL CONTRIBUTION

Estimation of the metabolizable energy equivalence of dietary proteins

Authors: Raquel Ferrer-Lorente, José Antonio Fernández-López, Marià Alemany

Published in: European Journal of Nutrition | Issue 1/2007

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Abstract

Background

Protein contributes significantly to the human daily energy budget. The high diversity in composition, digestibility and dietary proportion complicates the estimation of its actual energy contribution. In practical terms we continue using the energy equivalents estimated by Atwater. This results in a persistent source of imprecision in the calculation of dietary energy that at least can be partially corrected.

Aim of the study

We used experimentally obtained data to compute an algorithm that will allow to estimate the gross energy content of a protein which composition is known. The relationship between gross energy (i.e. bomb calorimeter-derived) of protein is not a direct correlate of its metabolic efficacy as energy supplier. Thus we estimated the metabolic energy yield (i.e. ATP equivalents) of amino acid residues, using the data to compute the estimated protein metabolic energy yield. Both approaches were to be used to propose a corrected protein energy equivalence factor that will increase the precision in the calculation of dietary protein energy, especially when information on protein composition is available.

Methods

The gross energy content of amino acids was measured with a bomb-calorimeter, and compared with that of glucose. Amino acid estimated metabolizable energy yield, in moles of ATP per mol of amino acid residue, was also calculated. The net heat yield of all amino acids were used to compute the theoretical heat production of albumin, collagen, gelatin and whole rat protein, which gross energy was also measured experimentally. The mean estimated energy yield (both gross and metabolizable) for each amino acid residue were used to compute the theoretical energy of a number of dietary protein sources which composition was available in the literature.

Results

Calculated energy yield of a few selected proteins coincided with the data directly measured in the bomb calorimeter. The computed gross energy yield and metabolizable energy yield for a number of dietary protein sources was estimated. There were minor differences between both parameters: the proportion of aromatic and branched chain amino acids was the main factor affecting the gross energy yield of a given protein; conversely, the higher proportion of nitrogen, especially, but not exclusively, related to arginine and glycine content correlated with lower metabolizable energy. These parameters, corrected by the gross and metabolizable energy of glucose were used to compute a mean energy equivalence for dietary protein: 19 kJ/g protein (i.e. 4.55 kcal/g protein). This value, higher than the current Atwater factor, does not include protein digestibility (as Atwater value did), but included the cost of nitrogen excretion.

Conclusions

The methodology presented allows the approximate calculation of both the purported heat production of a protein (pure or mixture) for which we know its amino acid composition (and even get a good estimate if we only know its proportion of nitrogen), and its metabolic energy equivalence. We also propose the use of a new energy correlate of dietary protein; this can be further tuned if the proportion of nitrogen in the protein is known, and even further if its amino acid composition is available. As a consequence of its application to dietary proteins, their energy yield may be higher than usually considered, which may influence the calculations of energy balance.
Literature
1.
go back to reference Scrimshaw NS, Hussein MA, Murray E, Rand WM, Young VR (1972) Protein requirements of man: Variations in obligatory urinary and fecal nitrogen losses in young men. J Nutr 102:1595–1604 Scrimshaw NS, Hussein MA, Murray E, Rand WM, Young VR (1972) Protein requirements of man: Variations in obligatory urinary and fecal nitrogen losses in young men. J Nutr 102:1595–1604
2.
go back to reference Atinmo T, Mbofung CM, Hussain MA, Osotimehin BO (1985) Human protein requirements: obligatory urinary and faecal nitrogen losses and the factorial estimation of protein needs of Nigerian male adults. Br J Nutr 54:605–611CrossRef Atinmo T, Mbofung CM, Hussain MA, Osotimehin BO (1985) Human protein requirements: obligatory urinary and faecal nitrogen losses and the factorial estimation of protein needs of Nigerian male adults. Br J Nutr 54:605–611CrossRef
3.
go back to reference Duggleby SL, Jackson AA (2002) Protein, amino acid and nitrogen metabolism during pregnancy: how might the mother meet the needs of her fetus? Curr Opin Clin Nutr Metab Care 5:503–509CrossRef Duggleby SL, Jackson AA (2002) Protein, amino acid and nitrogen metabolism during pregnancy: how might the mother meet the needs of her fetus? Curr Opin Clin Nutr Metab Care 5:503–509CrossRef
4.
go back to reference Kriengsinyos W, Rafii M, Wykes LJ, Ball RO (2002) Long-term effects of histidine depletion on whole-body protein metabolism in healthy adults. J Nutr 132:3340–3348 Kriengsinyos W, Rafii M, Wykes LJ, Ball RO (2002) Long-term effects of histidine depletion on whole-body protein metabolism in healthy adults. J Nutr 132:3340–3348
5.
go back to reference Atwater WO, Woods CD (1896) The chemical composition of American food materials. US Official Experiment Stations, Experiment Station Bulletin No. 28. Washington (DC) Atwater WO, Woods CD (1896) The chemical composition of American food materials. US Official Experiment Stations, Experiment Station Bulletin No. 28. Washington (DC)
6.
go back to reference Tornheim K, Lowenstein JM (1972) The purine nucleotide cycle. The production of ammonia from aspartate by extracts of rat skeletal muscle. J Biol Chem 247:162–169 Tornheim K, Lowenstein JM (1972) The purine nucleotide cycle. The production of ammonia from aspartate by extracts of rat skeletal muscle. J Biol Chem 247:162–169
7.
go back to reference Lowenstein JM, Goodman MN (1978) The purine nucleotide cycle in skeletal muscle. Fed Proc 37:2308–2312 Lowenstein JM, Goodman MN (1978) The purine nucleotide cycle in skeletal muscle. Fed Proc 37:2308–2312
8.
go back to reference McGivan JD, Chappell JB (1975) On the metabolic function of glutamate dehydrogenase in rat liver. FEBS Lett 52:1–7CrossRef McGivan JD, Chappell JB (1975) On the metabolic function of glutamate dehydrogenase in rat liver. FEBS Lett 52:1–7CrossRef
9.
go back to reference Felig P (1973) The glucose–alanine cycle. Metabolism 21:197–207 Felig P (1973) The glucose–alanine cycle. Metabolism 21:197–207
10.
go back to reference Aikawa T, Matsutaka H, Yamamoto H, Okuda T, Ishikawa E, Kawano T, Matsumura E (1973) Gluconeogenesis and amino acid metabolism. II. Interorganal relations and roles of glutamine and alanine in the amino acid metabolsim of fasted rats. J Biochem 74:1003–1017 Aikawa T, Matsutaka H, Yamamoto H, Okuda T, Ishikawa E, Kawano T, Matsumura E (1973) Gluconeogenesis and amino acid metabolism. II. Interorganal relations and roles of glutamine and alanine in the amino acid metabolsim of fasted rats. J Biochem 74:1003–1017
11.
go back to reference Rafecas I, Esteve M, Fernández-López JA, Remesar X, Alemany M (1994) Whole-rat protein content estimation: applicability of the N × 6.25 factor. Br J Nutr 72:199–209CrossRef Rafecas I, Esteve M, Fernández-López JA, Remesar X, Alemany M (1994) Whole-rat protein content estimation: applicability of the N × 6.25 factor. Br J Nutr 72:199–209CrossRef
12.
go back to reference King P, Spencer M (1970) Structural studies and organic ligand-binding properties of bovine plasma albumin. J Biol Chem 245:6134–6148 King P, Spencer M (1970) Structural studies and organic ligand-binding properties of bovine plasma albumin. J Biol Chem 245:6134–6148
13.
go back to reference Steven FS, Jackson DS (1967) Purification and amino acid composition of monomeric and polymeric collagens. Biochem J 104:534–536 Steven FS, Jackson DS (1967) Purification and amino acid composition of monomeric and polymeric collagens. Biochem J 104:534–536
14.
go back to reference Food Policy and Food Science Service, Nutrition Division, FAO (1981) Amino-acid content of foods and biological data on proteins. FAO Food and Nutrition Series No. 21, 3rd printing, FAO Food Policy and Food Science Service, Nutrition Division, FAO (1981) Amino-acid content of foods and biological data on proteins. FAO Food and Nutrition Series No. 21, 3rd printing, FAO
15.
go back to reference de Chalain TM, Michell WL, O’Keefe SJ, Ogden JM (1992) The effect of fuel source on amino acid metabolism in critically ill patients. J Surg Res 52:167–176CrossRef de Chalain TM, Michell WL, O’Keefe SJ, Ogden JM (1992) The effect of fuel source on amino acid metabolism in critically ill patients. J Surg Res 52:167–176CrossRef
16.
go back to reference Takada R, Saitoh M (1995) Consumption of carbohydrate or medium- or long-chain triglycerides by unfed rats exerts different protein-sparing effects. J Nutr 125:2165–2171 Takada R, Saitoh M (1995) Consumption of carbohydrate or medium- or long-chain triglycerides by unfed rats exerts different protein-sparing effects. J Nutr 125:2165–2171
17.
go back to reference Morimoto BH, Brady JF, Atkinson DE (1990) Effect of level of dietary protein on arginine-stimulated citrulline synthesis. Correlation with mitochondrial N-acetylglutamate concentrations. Biochem J 272:671–675 Morimoto BH, Brady JF, Atkinson DE (1990) Effect of level of dietary protein on arginine-stimulated citrulline synthesis. Correlation with mitochondrial N-acetylglutamate concentrations. Biochem J 272:671–675
18.
go back to reference Matsuzawa T, Kobayashi T, Tashiro K, Kasahara M (1994) Changes in ornithine metabolic enzymes induced by dietary-protein in small-intestine and liver–intestine–liver relationship in ornithine supply to liver. J Biochem 116:721–727 Matsuzawa T, Kobayashi T, Tashiro K, Kasahara M (1994) Changes in ornithine metabolic enzymes induced by dietary-protein in small-intestine and liver–intestine–liver relationship in ornithine supply to liver. J Biochem 116:721–727
19.
go back to reference Long SJ, Jeffcoat AR, Millward DJ (2000) Effect of habitual dietary-protein intake on appetite and satiety. Appetite 35:79–88CrossRef Long SJ, Jeffcoat AR, Millward DJ (2000) Effect of habitual dietary-protein intake on appetite and satiety. Appetite 35:79–88CrossRef
20.
go back to reference Weigle DS, Breen PA, Matthys CC, Callahan HS, Meeuws KE, Burden VR, Purnell JQ (2005) A high-protein diet induces sustained reductions in appetite, ad libitum caloric intake, and body weight despite compensatory changes in diurnal plasma leptin and ghrelin concentrations. Am J Clin Nutr 82:41–48 Weigle DS, Breen PA, Matthys CC, Callahan HS, Meeuws KE, Burden VR, Purnell JQ (2005) A high-protein diet induces sustained reductions in appetite, ad libitum caloric intake, and body weight despite compensatory changes in diurnal plasma leptin and ghrelin concentrations. Am J Clin Nutr 82:41–48
21.
go back to reference Gilani GS, Cockell KA, Sepehr E (2005) Effects of antinutritional factors on protein digestibility and amino acid availability in foods. JAOAC Int 88:967–987 Gilani GS, Cockell KA, Sepehr E (2005) Effects of antinutritional factors on protein digestibility and amino acid availability in foods. JAOAC Int 88:967–987
22.
go back to reference Savage DC (1086) Gastrointestinal microflora in mammalian nutrition. Annu Rev Nutr 6:155–178CrossRef Savage DC (1086) Gastrointestinal microflora in mammalian nutrition. Annu Rev Nutr 6:155–178CrossRef
23.
go back to reference Elwyn DH, Gump FE, Iles M, Long CL, Kinney JM (1978) Protein and energy sparing of glucose added in hypocaloric amounts to peripheral infusions of amino acids. Metabolism 27:325–331CrossRef Elwyn DH, Gump FE, Iles M, Long CL, Kinney JM (1978) Protein and energy sparing of glucose added in hypocaloric amounts to peripheral infusions of amino acids. Metabolism 27:325–331CrossRef
24.
go back to reference Atwater WO, Bryant AP (1899) The availability and fuel values of food materials. Connecticut (Storrs) Agricultural Experiment Station 12th Annual Report Atwater WO, Bryant AP (1899) The availability and fuel values of food materials. Connecticut (Storrs) Agricultural Experiment Station 12th Annual Report
25.
go back to reference Atwater WO, Benedict FG (1902) Experiments on the metabolism of matter and energy in the human body, 1898–1900. US Office of Experiment Stations Bulletin No. 109, Government Printing Office, Washington, DC Atwater WO, Benedict FG (1902) Experiments on the metabolism of matter and energy in the human body, 1898–1900. US Office of Experiment Stations Bulletin No. 109, Government Printing Office, Washington, DC
26.
go back to reference Erickson RH, Kim YS (1990) Digestion and absorption of dietary protein. Annu Rev Med 41:133–139CrossRef Erickson RH, Kim YS (1990) Digestion and absorption of dietary protein. Annu Rev Med 41:133–139CrossRef
27.
go back to reference Livesey G, Elia M (1988) Estimation of energy expenditure, net carbohydrate utilization, and net fat oxidation and synthesis by indirect calorimetry: evaluation of errors with special reference to the detailed composition of fuels. Am J Clin Nutr 47:608–628 Livesey G, Elia M (1988) Estimation of energy expenditure, net carbohydrate utilization, and net fat oxidation and synthesis by indirect calorimetry: evaluation of errors with special reference to the detailed composition of fuels. Am J Clin Nutr 47:608–628
28.
go back to reference Costa G, Ullrich L, Kantor F, Holland JF (1968) Production of elemental nitrogen by certain mammals including man. Nature 218:546–551CrossRef Costa G, Ullrich L, Kantor F, Holland JF (1968) Production of elemental nitrogen by certain mammals including man. Nature 218:546–551CrossRef
Metadata
Title
Estimation of the metabolizable energy equivalence of dietary proteins
Authors
Raquel Ferrer-Lorente
José Antonio Fernández-López
Marià Alemany
Publication date
01-02-2007
Publisher
Steinkopff-Verlag
Published in
European Journal of Nutrition / Issue 1/2007
Print ISSN: 1436-6207
Electronic ISSN: 1436-6215
DOI
https://doi.org/10.1007/s00394-006-0623-x

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