Literature DB >> 25130421

The longitudinal effects of physical activity and dietary calcium on bone mass accrual across stages of pubertal development.

Joan M Lappe1, Patrice Watson, Vicente Gilsanz, Thomas Hangartner, Heidi J Kalkwarf, Sharon Oberfield, John Shepherd, Karen K Winer, Babette Zemel.   

Abstract

Childhood and adolescence are critical periods of bone mineral content (BMC) accrual that may have long-term consequences for osteoporosis in adulthood. Adequate dietary calcium intake and weight-bearing physical activity are important for maximizing BMC accrual. However, the relative effects of physical activity and dietary calcium on BMC accrual throughout the continuum of pubertal development in childhood remains unclear. The purpose of this study was to determine the effects of self-reported dietary calcium intake and weight-bearing physical activity on bone mass accrual across the five stages of pubertal development in a large, diverse cohort of US children and adolescents. The Bone Mineral Density in Childhood study was a mixed longitudinal study with 7393 observations on 1743 subjects. Annually, we measured BMC by dual-energy X-ray absorptiometry (DXA), physical activity and calcium intake by questionnaire, and pubertal development (Tanner stage) by examination for up to 7 years. Mixed-effects regression models were used to assess physical activity and calcium intake effects on BMC accrual at each Tanner stage. We found that self-reported weight-bearing physical activity contributed to significantly greater BMC accrual in both sexes and racial subgroups (black and nonblack). In nonblack males, the magnitude of the activity effect on total body BMC accrual varied among Tanner stages after adjustment for calcium intake; the greatest difference between high- and low-activity boys was in Tanner stage 3. Calcium intake had a significant effect on bone accrual only in nonblack girls. This effect was not significantly different among Tanner stages. Our findings do not support differential effects of physical activity or calcium intake on bone mass accrual according to maturational stage. The study demonstrated significant longitudinal effects of weight-bearing physical activity on bone mass accrual through all stages of pubertal development.
© 2014 American Society for Bone and Mineral Research.

Entities:  

Keywords:  ADOLESCENCE; BONE MASS ACCRUAL; CALCIUM INTAKE; PHYSICAL ACTIVITY; PUBERTY; TANNER STAGE

Mesh:

Substances:

Year:  2015        PMID: 25130421      PMCID: PMC4280289          DOI: 10.1002/jbmr.2319

Source DB:  PubMed          Journal:  J Bone Miner Res        ISSN: 0884-0431            Impact factor:   6.741


  47 in total

1.  Bone mineral acquisition in healthy Asian, Hispanic, black, and Caucasian youth: a longitudinal study.

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Authors:  Connie M Weaver
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Authors:  S Ferrari; R Rizzoli; D Slosman; J P Bonjour
Journal:  J Clin Endocrinol Metab       Date:  1998-02       Impact factor: 5.958

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Authors:  K J Mackelvie; H A McKay; K M Khan; P R Crocker
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Review 5.  Effects of calcium supplementation on bone density in healthy children: meta-analysis of randomised controlled trials.

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6.  First fracture is associated with increased risk of new fractures during growth.

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7.  Jumping improves hip and lumbar spine bone mass in prepubescent children: a randomized controlled trial.

Authors:  R K Fuchs; J J Bauer; C M Snow
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8.  Bone density at various sites for prediction of hip fractures. The Study of Osteoporotic Fractures Research Group.

Authors:  S R Cummings; D M Black; M C Nevitt; W Browner; J Cauley; K Ensrud; H K Genant; L Palermo; J Scott; T M Vogt
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Authors: 
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