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Published in: Osteoporosis International 4/2007

Open Access 01-04-2007 | Original Article

Gender differences in the ratio between humerus width and length are established prior to puberty

Authors: E. M. Clark, A. R. Ness, J. H. Tobias

Published in: Osteoporosis International | Issue 4/2007

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Abstract

Summary

On a sample of 1,317 children aged 9.9 years we developed a novel method of measuring humeral dimensions from total body dual-energy X-ray absorptiometry (DXA) scans and showed that gender differences in the ratio between humeral width and length are established prior to puberty.

Introduction

It is recognised that long bone cross-sectional area is greater in males compared to females, which is thought to reflect more rapid periosteal bone growth in boys. However, it is currently unclear whether these findings reflect gender differences in bone size or shape. In the present study, we investigated whether gender differences exist in the balance between longitudinal and periosteal long bone growth in children, leading to gender differences in bone shape, based on a novel method for evaluating shape of the humerus. We also examined whether these differences are established prior to puberty.

Methods

Length, area and width of the humerus were estimated from total body DXA scans in 1,317 children aged 9.9 ± 0.33 years, who had participated in a nested case-control study of fractures within the Avon Longitudinal Study of Parents and Children (ALSPAC) (a geographically based birth cohort based in South West England). No differences were observed with respect to parameters of humeral geometry according to fracture history, and so both groups were pooled for further analysis. Aspect ratio (AR) of the humerus was calculated as humeral width divided by length. Total body height and weight were measured at the same time as the DXA scan. Puberty was assessed using self-completion questionnaires.

Results

Humeral width and length were positively associated with age and height in boys and girls combined (P < 0.001), and with Tanner stage in girls (P < 0.002). In contrast, age, height and Tanner stage were not related to humeral AR. We then examined gender differences in humeral shape according to pubertal stage. In prepubertal children (i.e. Tanner stage 1), humeral length was similar in boys and girls, but width (1.92 vs 1.88 cm, P < 0.001) and area (47.7 vs 46.9 cm2, P < 0.001) were greater in boys, resulting in a greater AR (7.78 vs 7.53, P < 0.001). Similar gender differences were observed in early pubertal children (i.e. Tanner stage 2).

Conclusion

We conclude that the greater periosteal diameter of boys compared to girls reflects differences in the balance between longitudinal and periosteal bone growth. Interestingly, resulting gender differences in humeral AR are established in prepubertal children.
Literature
1.
go back to reference Felsenberg D, Boonen S (2005) The bone quality framework: determinants of bone strength and their interrelationships, and implications for osteoporosis management. Clin Ther 27:1–11PubMedCrossRef Felsenberg D, Boonen S (2005) The bone quality framework: determinants of bone strength and their interrelationships, and implications for osteoporosis management. Clin Ther 27:1–11PubMedCrossRef
2.
go back to reference Seeman E (2003) Periosteal bone formation—a neglected determinant of bone strength. N Engl J Med 349:320–323PubMedCrossRef Seeman E (2003) Periosteal bone formation—a neglected determinant of bone strength. N Engl J Med 349:320–323PubMedCrossRef
3.
go back to reference Kontulainen SA, Macdonald HM, Khan KM, McKay HA (2005) Examining bone surfaces across puberty: a 20-month pQCT trial. J Bone Miner Res 20:1202–1207PubMedCrossRef Kontulainen SA, Macdonald HM, Khan KM, McKay HA (2005) Examining bone surfaces across puberty: a 20-month pQCT trial. J Bone Miner Res 20:1202–1207PubMedCrossRef
4.
go back to reference Smith SL (2004) Variation in longitudinal diaphyseal long bone growth in children three to ten years of age. Am J Hum Biol 16(6):648–657PubMedCrossRef Smith SL (2004) Variation in longitudinal diaphyseal long bone growth in children three to ten years of age. Am J Hum Biol 16(6):648–657PubMedCrossRef
5.
go back to reference Clark EM, Ness AR, Bishop NR, Tobias JH (2006) The association between bone mass and fractures in children: a prospective cohort study. J Bone Miner Res 21:1489–1495PubMedCrossRef Clark EM, Ness AR, Bishop NR, Tobias JH (2006) The association between bone mass and fractures in children: a prospective cohort study. J Bone Miner Res 21:1489–1495PubMedCrossRef
6.
go back to reference Golding J, Pembrey M, Jones R (2001) ALSPAC—the Avon Longitudinal Study of Parents and Children. I. Study methodology. Paediatr Perinat Epidemiol 15:74–87PubMedCrossRef Golding J, Pembrey M, Jones R (2001) ALSPAC—the Avon Longitudinal Study of Parents and Children. I. Study methodology. Paediatr Perinat Epidemiol 15:74–87PubMedCrossRef
7.
go back to reference Clark EM, Ness A, Tobias JH (2005) Social position affects bone mass in childhood through opposing actions on height and weight. J Bone Miner Res 20:2082–2089PubMedCrossRef Clark EM, Ness A, Tobias JH (2005) Social position affects bone mass in childhood through opposing actions on height and weight. J Bone Miner Res 20:2082–2089PubMedCrossRef
8.
go back to reference Gilsanz V, Kovanlikaya A, Costin G, Roe TF, Sayre J, Kaufman F (1997) Differential effect of gender on the size of the bones in the axial and appendicular skeletons. J Clin Endocrinol Metab 82(5):1603–1607PubMedCrossRef Gilsanz V, Kovanlikaya A, Costin G, Roe TF, Sayre J, Kaufman F (1997) Differential effect of gender on the size of the bones in the axial and appendicular skeletons. J Clin Endocrinol Metab 82(5):1603–1607PubMedCrossRef
9.
go back to reference Arfai K, Pitukcheewanont PD, Goran MI, Tavare CJ, Heller L, Gilsanz V (2002) Bone, muscle and fat: sex-related differences in prepubertal children. Radiology 224:338–344PubMed Arfai K, Pitukcheewanont PD, Goran MI, Tavare CJ, Heller L, Gilsanz V (2002) Bone, muscle and fat: sex-related differences in prepubertal children. Radiology 224:338–344PubMed
10.
go back to reference Clark EM, Ness AR, Tobias JH (2006) Adipose tissue stimulates bone growth in prepubertal children. J Clin Endocrinol Metab 91:2534–2541PubMedCrossRef Clark EM, Ness AR, Tobias JH (2006) Adipose tissue stimulates bone growth in prepubertal children. J Clin Endocrinol Metab 91:2534–2541PubMedCrossRef
11.
go back to reference Tobias JH, Steer CD, Emmett PM, Tonkin R, Cooper C, Ness A (2005) Bone mass is related to maternal diet in pregnancy. Osteoporos Int 16:1731–1741PubMedCrossRef Tobias JH, Steer CD, Emmett PM, Tonkin R, Cooper C, Ness A (2005) Bone mass is related to maternal diet in pregnancy. Osteoporos Int 16:1731–1741PubMedCrossRef
12.
go back to reference Garn SM (1972) The course of bone gain and the phases of bone loss. Orthop Clin North Am 3:503–520PubMed Garn SM (1972) The course of bone gain and the phases of bone loss. Orthop Clin North Am 3:503–520PubMed
13.
go back to reference Virtama P, Helela T (1969) Radiographic measurements of cortical bone: variations in a normal population between 1 and 90 years of age. Acta Radiol 293 (Suppl):1–110 Virtama P, Helela T (1969) Radiographic measurements of cortical bone: variations in a normal population between 1 and 90 years of age. Acta Radiol 293 (Suppl):1–110
14.
go back to reference Nieves JW, Formica C, Ruffing J, Zion M, Garrett P, Lindsay R, Cosman F (2005) Males have larger skeletal size and bone mass than females, despite comparable body size. J Bone Miner Res 20:529–535PubMedCrossRef Nieves JW, Formica C, Ruffing J, Zion M, Garrett P, Lindsay R, Cosman F (2005) Males have larger skeletal size and bone mass than females, despite comparable body size. J Bone Miner Res 20:529–535PubMedCrossRef
15.
go back to reference Vankataraman PS, Duke JC (1991) Bone mineral content of healthy full-term neonates. Effect of race, gender, and maternal cigarette smoking. Am J Dis Child 145:1310–1312 Vankataraman PS, Duke JC (1991) Bone mineral content of healthy full-term neonates. Effect of race, gender, and maternal cigarette smoking. Am J Dis Child 145:1310–1312
16.
go back to reference Specker BL, Brazerol W, Tsang RC, Levin R, Searcy J, Steichen J (1987) Bone mineral content in children 1 to 6 years of age. Detectable sex differences after 4 years of age. Am J Dis Child 141(3):343–344PubMed Specker BL, Brazerol W, Tsang RC, Levin R, Searcy J, Steichen J (1987) Bone mineral content in children 1 to 6 years of age. Detectable sex differences after 4 years of age. Am J Dis Child 141(3):343–344PubMed
17.
go back to reference Tanner JM, Hughes PC, Whitehouse RH (1981) Radiographically determined widths of bone muscle and fat in the upper arm and calf from age 3–18 years. Ann Hum Biol 8(6):495–517PubMedCrossRef Tanner JM, Hughes PC, Whitehouse RH (1981) Radiographically determined widths of bone muscle and fat in the upper arm and calf from age 3–18 years. Ann Hum Biol 8(6):495–517PubMedCrossRef
18.
go back to reference Garnett SP, Hogler W, Blades B, Baur LA, Peat J, Lee J, Cowell CT (2004) Relation between hormones and body composition, including bone, in prepubertal children. Am J Clin Nutr 80:966–972PubMed Garnett SP, Hogler W, Blades B, Baur LA, Peat J, Lee J, Cowell CT (2004) Relation between hormones and body composition, including bone, in prepubertal children. Am J Clin Nutr 80:966–972PubMed
19.
go back to reference Currey JD (2002) Bones: structure and mechanics. Princeton University Press, Princeton Currey JD (2002) Bones: structure and mechanics. Princeton University Press, Princeton
20.
go back to reference Burr DB, Piotrowski G, Martin RB, Cook PN (1982) Femoral mechanics in the lesser bushbaby (Galago senegalensis): structural adaptations to leaping in primates. Anat Rec 202(3):419–429PubMedCrossRef Burr DB, Piotrowski G, Martin RB, Cook PN (1982) Femoral mechanics in the lesser bushbaby (Galago senegalensis): structural adaptations to leaping in primates. Anat Rec 202(3):419–429PubMedCrossRef
21.
go back to reference Wheeless’ (2005) Textbook of orthopaedics (on-line version). Duke Orthopaedics Wheeless’ (2005) Textbook of orthopaedics (on-line version). Duke Orthopaedics
22.
go back to reference Jones IE, Williams SM, Dow N, Goulding A (2002) How many children remain fracture-free during growth? a longitudinal study of children and adolescents participating in the Dunedin Multidisciplinary Health and Development Study. Osteoporos Int 13(12):990–995PubMedCrossRef Jones IE, Williams SM, Dow N, Goulding A (2002) How many children remain fracture-free during growth? a longitudinal study of children and adolescents participating in the Dunedin Multidisciplinary Health and Development Study. Osteoporos Int 13(12):990–995PubMedCrossRef
23.
go back to reference Beck TJ, Ruff CB, Shaffer RA, Betsinger K, Trone DW, Brodine SK (2000) Stress fracture in military recruits: gender differences in muscle and bone susceptibility factors. Bone 27(3):437–444PubMedCrossRef Beck TJ, Ruff CB, Shaffer RA, Betsinger K, Trone DW, Brodine SK (2000) Stress fracture in military recruits: gender differences in muscle and bone susceptibility factors. Bone 27(3):437–444PubMedCrossRef
Metadata
Title
Gender differences in the ratio between humerus width and length are established prior to puberty
Authors
E. M. Clark
A. R. Ness
J. H. Tobias
Publication date
01-04-2007
Publisher
Springer-Verlag
Published in
Osteoporosis International / Issue 4/2007
Print ISSN: 0937-941X
Electronic ISSN: 1433-2965
DOI
https://doi.org/10.1007/s00198-006-0275-y

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