Literature DB >> 21873221

Age-related changes in the plasticity and toughness of human cortical bone at multiple length scales.

Elizabeth A Zimmermann1, Eric Schaible, Hrishikesh Bale, Holly D Barth, Simon Y Tang, Peter Reichert, Bjoern Busse, Tamara Alliston, Joel W Ager, Robert O Ritchie.   

Abstract

The structure of human cortical bone evolves over multiple length scales from its basic constituents of collagen and hydroxyapatite at the nanoscale to osteonal structures at near-millimeter dimensions, which all provide the basis for its mechanical properties. To resist fracture, bone's toughness is derived intrinsically through plasticity (e.g., fibrillar sliding) at structural scales typically below a micrometer and extrinsically (i.e., during crack growth) through mechanisms (e.g., crack deflection/bridging) generated at larger structural scales. Biological factors such as aging lead to a markedly increased fracture risk, which is often associated with an age-related loss in bone mass (bone quantity). However, we find that age-related structural changes can significantly degrade the fracture resistance (bone quality) over multiple length scales. Using in situ small-angle X-ray scattering and wide-angle X-ray diffraction to characterize submicrometer structural changes and synchrotron X-ray computed tomography and in situ fracture-toughness measurements in the scanning electron microscope to characterize effects at micrometer scales, we show how these age-related structural changes at differing size scales degrade both the intrinsic and extrinsic toughness of bone. Specifically, we attribute the loss in toughness to increased nonenzymatic collagen cross-linking, which suppresses plasticity at nanoscale dimensions, and to an increased osteonal density, which limits the potency of crack-bridging mechanisms at micrometer scales. The link between these processes is that the increased stiffness of the cross-linked collagen requires energy to be absorbed by "plastic" deformation at higher structural levels, which occurs by the process of microcracking.

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Year:  2011        PMID: 21873221      PMCID: PMC3167515          DOI: 10.1073/pnas.1107966108

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  51 in total

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Authors:  D Vashishth; G J Gibson; J I Khoury; M B Schaffler; J Kimura; D P Fyhrie
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Journal:  Bone       Date:  2002-07       Impact factor: 4.398

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  97 in total

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4.  Characterization of the effects of x-ray irradiation on the hierarchical structure and mechanical properties of human cortical bone.

Authors:  Holly D Barth; Elizabeth A Zimmermann; Eric Schaible; Simon Y Tang; Tamara Alliston; Robert O Ritchie
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5.  Assessment of collagen quality associated with non-enzymatic cross-links in human bone using Fourier-transform infrared imaging.

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Review 6.  Post-yield and failure properties of cortical bone.

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9.  On the bulk biomechanical behavior of densely cross-linked dentin matrix: The role of induced-glycation, regional dentin sites and chemical inhibitor.

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

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