Literature DB >> 24231966

Mechanical loading causes detectable changes in morphometric measures of trabecular structure in human cancellous bone.

Yener N Yeni, Brenda Wu, Lily Huang, Daniel Oravec.   

Abstract

The relationships between mechanical loads and bone microstructure are of interest to those who seek to predict bone mechanical properties from microstructure or to predict how organization of bone microstructure is driven by mechanical loads. While strains and displacements in the material are inherently responsible for mechanically caused changes in the appearance of the microstructure, it is the morphometric measures of microstructural organization that are often available for assessment of bone quality. Therefore, an understanding of how strain history is reflected in morphometric measures of bone microstructure has practical implications in that it may provide clinically measurable indices of mechanical history in bone and improve interpretation of bone mechanical properties from microstructural information. The objective of the current study was to examine changes in morphometric measures of cancellous bone microstructure in response to varying levels of continuum level strains. The experimental approach included stereologic analysis of microcomputed tomography (μCT) images of human cancellous bone samples obtained at sequentially increasing levels of strain in a custom-made loading apparatus mounted in a μCT scanner. We found that the degree of anisotropy (DA) decreased from baseline to failure and from failure to postfailure. DA partially recovered from postfailure levels upon unloading; however, the final DA was less than at failure and less than at baseline. We also found that average trabecular thickness (Tb.Th.Av) increased with displacements at postfailure and did not recover when unloaded. Average trabecular number decreased when the specimens were unloaded. In addition, the heterogeneity of Tb.Th as measured by intra-specimen standard deviation (Tb.Th.SD) increased and that of trabecular number (Tb.N.SD) decreased with displacements at postfailure. Furthermore, the intraspecimen coefficient of variation of trabecular number decreased at postfailure displacements but did not recover upon unloading. Finally, the coefficient of variation of trabecular separation at unload was less than that at baseline. These measures can be developed into image-based indices to estimate strain history, damage, and residual mechanical properties where direct analysis of stresses and strains, such as through finite element modeling, may not be feasible. It remains to be determined how wide a time interval can be used to estimate strain history before remodeling becomes an overriding effect on the trabecular architecture.

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Year:  2013        PMID: 24231966      PMCID: PMC3705850          DOI: 10.1115/1.4024136

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  24 in total

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3.  Damage mechanisms and failure modes of cortical bone under components of physiological loading.

Authors:  W T George; D Vashishth
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4.  The effect of intravertebral heterogeneity in microstructure on vertebral strength and failure patterns.

Authors:  A I Hussein; E F Morgan
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5.  Variability of trabecular microstructure is age-, gender-, race- and anatomic site-dependent and affects stiffness and stress distribution properties of human vertebral cancellous bone.

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6.  Matrix concentration of insulin-like growth factor I (IGF-I) is negatively associated with biomechanical properties of human tibial cancellous bone within individual subjects.

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7.  Regional variations of gender-specific and age-related differences in trabecular bone structure of the distal radius and tibia.

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8.  Accuracy and precision of digital volume correlation in quantifying displacements and strains in trabecular bone.

Authors:  Li Liu; Elise F Morgan
Journal:  J Biomech       Date:  2007-06-13       Impact factor: 2.712

9.  Human cancellous bone from T12-L1 vertebrae has unique microstructural and trabecular shear stress properties.

Authors:  Yener N Yeni; Do-Gyoon Kim; George W Divine; Evan M Johnson; Dianna D Cody
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10.  Predictive value of femoral head heterogeneity for fracture risk.

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2.  Open-porous magnesium-based scaffolds withstand in vitro corrosion under cyclic loading: A mechanistic study.

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Journal:  Bioact Mater       Date:  2022-04-29

3.  Assessment of Intravertebral Mechanical Strains and Cancellous Bone Texture Under Load Using a Clinically Available Digital Tomosynthesis Modality.

Authors:  Daniel Oravec; Joshua Drost; Roger Zauel; Michael J Flynn; Yener N Yeni
Journal:  J Biomech Eng       Date:  2021-10-01       Impact factor: 1.899

Review 4.  Methods for bone quality assessment in human bone tissue: a systematic review.

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  4 in total

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