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Additional anthropometric measures may improve the predictability of basal metabolic rate in adult subjects.
Eur J Clin Nutr 2006; 60(12):1437-44EJ

Abstract

BACKGROUND

The most commonly used predictive equation for basal metabolic rate (BMR) is the Schofield equation, which only uses information on body weight, age and sex to derive the prediction. However, because body composition is a key influencing factor, there will be error in calculating an individual's basal requirements based on this prediction.

OBJECTIVE

To investigate whether adding additional anthropometric measures to the standard measures can enhance the predictability of BMR and to cross-validate this within a separate subgroup.

DESIGN

Cross-sectional study of 150 Caucasian adults from Scotland, with a body mass index range of 16.7-49.3 kg/m(2). All subjects underwent measurement of BMR, body composition, and 148 also had basic skinfold and circumference measures taken. The resultant equation was tested in a subgroup of 39 obese males.

RESULTS

The average difference between the predicted (Schofield equation) and measured BMR was 502 kJ/day. There was a slight systematic bias in this error, with the Schofield equation underestimating the lowest values. The average discrepancy between predicted and actual BMR was reduced to 452 kJ/day, with the addition of fat mass, fat-free mass, an overall 10% improvement on the Schofield equation (P=0.054). Using an equation derived from principal components analysis of anthropometry measurements similarly decreased the difference to 458 kJ/day (P=0.039). Testing the equation in a separate group indicated a 33% improvement in predictability of BMR, compared to the Schofield equation.

CONCLUSIONS

In the absence of detailed information on body composition, utilizing anthropometric data provides a useful alternative methodology to improve the predictability of BMR beyond that achieved from the standard Schofield prediction equation. This should be confirmed in more individuals, both within the obese and normal weight category.

Authors+Show Affiliations

Aberdeen Centre for Energy Regulation and Obesity (ACERO), Division of Obesity and Metabolic Health, Rowett Research Institute, Aberdeen, UK. A.Johnstone@rowett.ac.ukNo affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info available

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

16835601

Citation

Johnstone, A M., et al. "Additional Anthropometric Measures May Improve the Predictability of Basal Metabolic Rate in Adult Subjects." European Journal of Clinical Nutrition, vol. 60, no. 12, 2006, pp. 1437-44.
Johnstone AM, Rance KA, Murison SD, et al. Additional anthropometric measures may improve the predictability of basal metabolic rate in adult subjects. Eur J Clin Nutr. 2006;60(12):1437-44.
Johnstone, A. M., Rance, K. A., Murison, S. D., Duncan, J. S., & Speakman, J. R. (2006). Additional anthropometric measures may improve the predictability of basal metabolic rate in adult subjects. European Journal of Clinical Nutrition, 60(12), pp. 1437-44.
Johnstone AM, et al. Additional Anthropometric Measures May Improve the Predictability of Basal Metabolic Rate in Adult Subjects. Eur J Clin Nutr. 2006;60(12):1437-44. PubMed PMID: 16835601.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Additional anthropometric measures may improve the predictability of basal metabolic rate in adult subjects. AU - Johnstone,A M, AU - Rance,K A, AU - Murison,S D, AU - Duncan,J S, AU - Speakman,J R, Y1 - 2006/07/12/ PY - 2006/7/13/pubmed PY - 2007/2/16/medline PY - 2006/7/13/entrez SP - 1437 EP - 44 JF - European journal of clinical nutrition JO - Eur J Clin Nutr VL - 60 IS - 12 N2 - BACKGROUND: The most commonly used predictive equation for basal metabolic rate (BMR) is the Schofield equation, which only uses information on body weight, age and sex to derive the prediction. However, because body composition is a key influencing factor, there will be error in calculating an individual's basal requirements based on this prediction. OBJECTIVE: To investigate whether adding additional anthropometric measures to the standard measures can enhance the predictability of BMR and to cross-validate this within a separate subgroup. DESIGN: Cross-sectional study of 150 Caucasian adults from Scotland, with a body mass index range of 16.7-49.3 kg/m(2). All subjects underwent measurement of BMR, body composition, and 148 also had basic skinfold and circumference measures taken. The resultant equation was tested in a subgroup of 39 obese males. RESULTS: The average difference between the predicted (Schofield equation) and measured BMR was 502 kJ/day. There was a slight systematic bias in this error, with the Schofield equation underestimating the lowest values. The average discrepancy between predicted and actual BMR was reduced to 452 kJ/day, with the addition of fat mass, fat-free mass, an overall 10% improvement on the Schofield equation (P=0.054). Using an equation derived from principal components analysis of anthropometry measurements similarly decreased the difference to 458 kJ/day (P=0.039). Testing the equation in a separate group indicated a 33% improvement in predictability of BMR, compared to the Schofield equation. CONCLUSIONS: In the absence of detailed information on body composition, utilizing anthropometric data provides a useful alternative methodology to improve the predictability of BMR beyond that achieved from the standard Schofield prediction equation. This should be confirmed in more individuals, both within the obese and normal weight category. SN - 0954-3007 UR - https://www.unboundmedicine.com/medline/citation/16835601/Additional_anthropometric_measures_may_improve_the_predictability_of_basal_metabolic_rate_in_adult_subjects_ L2 - http://dx.doi.org/10.1038/sj.ejcn.1602477 DB - PRIME DP - Unbound Medicine ER -