Genetic predisposition to low bone mass is paralleled by an enhanced sensitivity to signals anabolic to the skeleton
- 21 June 2002
- journal article
- fj express-summarie
- Published by Wiley in The FASEB Journal
- Vol. 16 (10) , 1280-1282
- https://doi.org/10.1096/fj.01-0913fje
Abstract
The structure of the adult skeleton is determined, in large part, by its genome. Whether genetic variations may influence the effectiveness of interventions to combat skeletal diseases remains unknown. The differential response of trabecular bone to an anabolic (low-level mechanical vibration) and a catabolic (disuse) mechanical stimulus were evaluated in three strains of adult mice. In low bone-mineral-density C57BL/6J mice, the low-level mechanical signal caused significantly larger bone formation rates (BFR) in the proximal tibia, but the removal of functional weight bearing did not significantly alter BFR. In mid-density BALB/cByJ mice, mechanical stimulation also increased BFR, whereas disuse significantly decreased BFR. In contrast, neither anabolic nor catabolic mechanical signals influenced any index of bone formation in high-density C3H/HeJ mice. Together, data from this study indicate that the sensitivity of trabecular tissue to both anabolic and catabolic stimuli is influenced by the genome. Extrapolated to humans, these results may explain in part why prophylaxes for low bone mass are not universally effective, yet also indicate that there may be a genotypic indication of people who are at reduced risk of suffering from bone loss.Keywords
Funding Information
- National Space Biomedical Research Institute
- National Aeronautics and Space Administration
- Alberta Heritage Foundation for Medical Research
This publication has 33 references indexed in Scilit:
- Quantity and Quality of Trabecular Bone in the Femur Are Enhanced by a Strongly Anabolic, Noninvasive Mechanical InterventionJournal of Bone and Mineral Research, 2002
- The anabolic activity of bone tissue, suppressed by disuse, is normalized by brief exposure to extremely low‐magnitude mechanical stimuliThe FASEB Journal, 2001
- Codon 325 sequence polymorphism of the estrogen receptor α gene and bone mineral density in postmenopausal womenThe Journal of Steroid Biochemistry and Molecular Biology, 2001
- Association of the Vitamin D Receptor Genotype BB with Low Bone Density in HyperthyroidismJournal of Bone and Mineral Research, 2000
- Nonlinear dependence of loading intensity and cycle number in the maintenance of bone mass and morphologyJournal of Orthopaedic Research, 1998
- Strain Gradients Correlate with Sites of Exercise-Induced Bone-Forming Surfaces in the Adult SkeletonJournal of Bone and Mineral Research, 1997
- Strain magnitude related changes in whole bone architecture in growing ratsBone, 1997
- Induction of bone formation in rat tail vertebrae by mechanical loadingBone and Mineral, 1993
- Bone histomorphometry: Standardization of nomenclature, symbols, and units: Report of the asbmr histomorphometry nomenclature committeeJournal of Bone and Mineral Research, 1987
- Regulation of bone mass by mechanical strain magnitudeCalcified Tissue International, 1985