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Partial Reductions in Mechanical Loading Yield Proportional Changes in Bone Density, Bone Architecture, and Muscle Mass

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Date 2012 Nov 21
PMID 23165526
Citations 40
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Abstract

Although the musculoskeletal system is known to be sensitive to changes in its mechanical environment, the relationship between functional adaptation and below-normal mechanical stimuli is not well defined. We investigated bone and muscle adaptation to a range of reduced loading using the partial weight suspension (PWS) system, in which a two-point harness is used to offload a tunable amount of body weight while maintaining quadrupedal locomotion. Skeletally mature female C57Bl/6 mice were exposed to partial weight bearing at 20%, 40%, 70%, or 100% of body weight for 21 days. A hindlimb unloaded (HLU) group was included for comparison in addition to age-matched controls in normal housing. Gait kinematics was measured across the full range of weight bearing, and some minor alterations in gait from PWS were identified. With PWS, bone and muscle changes were generally proportional to the degree of unloading. Specifically, total body and hindlimb bone mineral density, calf muscle mass, trabecular bone volume of the distal femur, and cortical area of the femur midshaft were all linearly related to the degree of unloading. Even a load reduction to 70% of normal weight bearing was associated with significant bone deterioration and muscle atrophy. Weight bearing at 20% did not lead to better bone outcomes than HLU despite less muscle atrophy and presumably greater mechanical stimulus, requiring further investigation. These data confirm that the PWS model is highly effective in applying controllable, reduced, long-term loading that produces predictable, discrete adaptive changes in muscle and bone of the hindlimb.

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References
1.
Bergstralh E, Sinaki M, Offord K, Wahner H, Melton 3rd L . Effect of season on physical activity score, back extensor muscle strength, and lumbar bone mineral density. J Bone Miner Res. 1990; 5(4):371-7. DOI: 10.1002/jbmr.5650050410. View

2.
Thompson D, Rodan G . Indomethacin inhibition of tenotomy-induced bone resorption in rats. J Bone Miner Res. 1988; 3(4):409-14. DOI: 10.1002/jbmr.5650030407. View

3.
Krolner B, Toft B . Vertebral bone loss: an unheeded side effect of therapeutic bed rest. Clin Sci (Lond). 1983; 64(5):537-40. DOI: 10.1042/cs0640537. View

4.
Colleran P, Wilkerson M, Bloomfield S, Suva L, Turner R, Delp M . Alterations in skeletal perfusion with simulated microgravity: a possible mechanism for bone remodeling. J Appl Physiol (1985). 2000; 89(3):1046-54. DOI: 10.1152/jappl.2000.89.3.1046. View

5.
Hildebrand T, Laib A, Muller R, Dequeker J, Ruegsegger P . Direct three-dimensional morphometric analysis of human cancellous bone: microstructural data from spine, femur, iliac crest, and calcaneus. J Bone Miner Res. 1999; 14(7):1167-74. DOI: 10.1359/jbmr.1999.14.7.1167. View