Literature DB >> 16355276

Decreased collagen organization and content are associated with reduced strength of demineralized and intact bone in the SAMP6 mouse.

Matthew J Silva1, Michael D Brodt, Brigitte Wopenka, Stavros Thomopoulos, Derek Williams, Maurice H M Wassen, Mike Ko, Nozomu Kusano, Ruud A Bank.   

Abstract

UNLABELLED: To examine the link between bone material properties and skeletal fragility, we analyzed the mechanical, histological, biochemical, and spectroscopic properties of bones from a murine model of skeletal fragility (SAMP6). Intact bones from SAMP6 mice are weak and brittle compared with SAMR1 controls, a defect attributed to reduced strength of the bone matrix. The matrix weakness is attributed primarily to poorer organization of collagen fibers and reduced collagen content.
INTRODUCTION: The contribution of age-related changes in tissue material properties to skeletal fragility is poorly understood. We previously reported that bones from SAMP6 mice are weak and brittle versus age-matched controls. Our present objectives were to use the SAMP6 mouse to assess bone material properties in a model of skeletal fragility and to relate defects in the mechanical properties of bone to the properties of demineralized bone and to the structure and organization of collagen and mineral.
MATERIALS AND METHODS: Femora from 4- and 12-month-old SAMR1 (control) and SAMP6 mice were analyzed using bending and torsional mechanical testing of intact bones, tensile testing of demineralized bone, quantitative histology (including collagen fiber orientation), collagen cross-links biochemistry, and Raman spectroscopic analysis of mineral and collagen.
RESULTS: Intact bones from SAMP6 mice have normal elastic properties but inferior failure properties, with 60% lower fracture energy versus SAMR1 controls. The strength defect in SAMP6 bones was associated with a 23% reduction in demineralized bone strength, which in turn was associated with poorer collagen fiber organization, lower collagen content, and higher hydroxylysine levels. However, SAMP6 have normal levels of collagen cross-links and normal apatite mineral structure.
CONCLUSIONS: Bones from SAMP6 osteoporotic mice are weak and brittle because of a defect in the strength of the bone matrix. This defect is attributed primarily to poorer organization of collagen fibers and reduced collagen content. These findings highlight the role of the collagen component of the bone matrix in influencing skeletal fragility.

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Year:  2005        PMID: 16355276     DOI: 10.1359/JBMR.050909

Source DB:  PubMed          Journal:  J Bone Miner Res        ISSN: 0884-0431            Impact factor:   6.741


  41 in total

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

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Review 4.  Contributions of Raman spectroscopy to the understanding of bone strength.

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5.  Phosphate regulates chondrogenesis in a biphasic and maturation-dependent manner.

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Journal:  Differentiation       Date:  2017-05-08       Impact factor: 3.880

6.  Sex steroids during bone growth: a comparative study between mouse models for hypogonadal and senile osteoporosis.

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Review 7.  Establishing biomechanical mechanisms in mouse models: practical guidelines for systematically evaluating phenotypic changes in the diaphyses of long bones.

Authors:  Karl J Jepsen; Matthew J Silva; Deepak Vashishth; X Edward Guo; Marjolein C H van der Meulen
Journal:  J Bone Miner Res       Date:  2015-06       Impact factor: 6.741

Review 8.  Bone quality: the determinants of bone strength and fragility.

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9.  Age-related changes in bone morphology are accelerated in group VIA phospholipase A2 (iPLA2beta)-null mice.

Authors:  Sasanka Ramanadham; Kevin E Yarasheski; Matthew J Silva; Mary Wohltmann; Deborah Veis Novack; Blaine Christiansen; Xiaolin Tu; Sheng Zhang; Xiaoyong Lei; John Turk
Journal:  Am J Pathol       Date:  2008-03-18       Impact factor: 4.307

10.  Small animal bone biomechanics.

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