Literature DB >> 16123021

Measurement of microstructural strain in cortical bone.

Daniel P Nicolella1, Lynda F Bonewald, Donald E Moravits, James Lankford.   

Abstract

It is well known that mechanical factors affect bone remodeling such that increased mechanical demand results in net bone formation, whereas decreased demand results in net bone resorption. Current theories suggest that bone modeling and remodeling is controlled at the cellular level through signals mediated by osteocytes. The objective of this study was to investigate how macroscopically applied bone strains similar in magnitude to those that occur in vivo are manifest at the microscopic level in the bone matrix. Using a digital image correlation strain measurement technique, experimentally determined bone matrix strains around osteocyte lacuna resulting from macroscopic strains of approximately 2,000 microstrain (0.2%) reach levels of over 30,000 microstrain (3%) over fifteen times greater than the applied macroscopic strain. Strain patterns were highly heterogeneous and in some locations similar to observed microdamage around osteocyte lacuna indicating the resulting strains may represent the precursors to microdamage. This information may lead to a better understanding of how bone cells are affected by whole bone functional loading.

Mesh:

Year:  2005        PMID: 16123021      PMCID: PMC1866262          DOI: 10.1080/09243860500095364

Source DB:  PubMed          Journal:  Eur J Morphol        ISSN: 0924-3860


  17 in total

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  11 in total

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6.  Glucocorticoid-induced bone loss in mice can be reversed by the actions of parathyroid hormone and risedronate on different pathways for bone formation and mineralization.

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Authors:  Thomas Luyckx; Matthias Verstraete; Karel De Roo; Wim De Waele; Johan Bellemans; Jan Victor
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Authors:  Alessandra Carriero; Lisa Abela; Andrew A Pitsillides; Sandra J Shefelbine
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