Literature DB >> 17266142

Age-related factors affecting the postyield energy dissipation of human cortical bone.

Jeffry S Nyman1, Anuradha Roy, Jerrod H Tyler, Rae L Acuna, Heather J Gayle, Xiaodu Wang.   

Abstract

The risk of bone fracture depends in part on tissue quality, not just the size and mass. This study assessed the postyield energy dissipation of cortical bone in tension as a function of age and composition. Specimens were prepared from tibiae of human cadavers in which male and female donors were divided into two age groups: middle aged (51 to 56 years, n = 9) and elderly (72 to 90 years, n = 8). By loading, unloading, and reloading a specimen with rest periods inserted in between, tensile properties at incremental strain levels were assessed. In addition, postyield toughness was estimated and partitioned as plastic strain energy related to permanent deformation, released elastic strain energy related to stiffness loss, and hysteresis energy related to viscous behavior. Porosity, mineral and collagen content, and collagen crosslinks of each specimen were also measured to determine the micro- and ultrastructural properties of the tissue. Age affected all the energy terms plus strength but not elastic stiffness. The postyield energy terms were correlated with porosity, pentosidine (a marker of nonenzymatic crosslinks), and collagen content, all of which varied significantly with age. General linear models suggested that pentosidine concentration and collagen content provided the best explanation of the age-related decrease in the postyield energy dissipation. Among them, pentosidine concentration had the greatest contribution to plastic strain energy and was the best explanatory variable of damage accumulation. (c) 2007 Orthopaedic Research Society.

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Year:  2007        PMID: 17266142      PMCID: PMC1994146          DOI: 10.1002/jor.20337

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


  63 in total

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4.  A novel approach to assess post-yield energy dissipation of bone in tension.

Authors:  Xiaodu Wang; Jeffry S Nyman
Journal:  J Biomech       Date:  2007       Impact factor: 2.712

5.  The influence of water removal on the strength and toughness of cortical bone.

Authors:  Jeffry S Nyman; Anuradha Roy; Xinmei Shen; Rae L Acuna; Jerrod H Tyler; Xiaodu Wang
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7.  Age-related changes in the tensile properties of cortical bone. The relative importance of changes in porosity, mineralization, and microstructure.

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8.  Influence of microdamage on fracture toughness of the human femur and tibia.

Authors:  T L Norman; Y N Yeni; C U Brown; Z Wang
Journal:  Bone       Date:  1998-09       Impact factor: 4.398

Review 9.  Collagen cross-links in mineralizing tissues: a review of their chemistry, function, and clinical relevance.

Authors:  L Knott; A J Bailey
Journal:  Bone       Date:  1998-03       Impact factor: 4.398

10.  Sensitive fluorimetric quantitation of pyridinium and pentosidine crosslinks in biological samples in a single high-performance liquid chromatographic run.

Authors:  R A Bank; B Beekman; N Verzijl; J A de Roos; A N Sakkee; J M TeKoppele
Journal:  J Chromatogr B Biomed Sci Appl       Date:  1997-12-05
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  47 in total

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Review 4.  The fracture mechanics of human bone: influence of disease and treatment.

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6.  Raman and mechanical properties correlate at whole bone- and tissue-levels in a genetic mouse model.

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7.  Bone microarchitecture, biomechanical properties, and advanced glycation end-products in the proximal femur of adults with type 2 diabetes.

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Review 8.  How can bone turnover modify bone strength independent of bone mass?

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9.  Fourier transform infrared imaging microspectroscopy and tissue-level mechanical testing reveal intraspecies variation in mouse bone mineral and matrix composition.

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10.  Age-related changes in the fracture resistance of male Fischer F344 rat bone.

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