Literature DB >> 8676263

Type-I collagen mutation compromises the post-yield behavior of Mov13 long bone.

K J Jepsen1, S A Goldstein, J L Kuhn, M B Schaffler, J Bonadio.   

Abstract

Despite recent advances in our understanding of the molecular basis of skeletal fragility, little is known about how these molecular alterations lead to whole bone brittleness. In the current study, we investigated the relationship between a type-I collagen mutation and post-yield behavior of whole bone in Mov13 transgenic mice by considering tissue-level organizational issues known to be important for normal bone fracture. Mechanical assays revealed that the post-yield deflection of Mov13 femurs was reduced by 61% relative to littermate controls. Fractographic images revealed that lamellar interfaces which were important for dissipating energy during the failure process of control femurs, were not effective in Mov13 mice. Further investigation revealed that a 22% reduction in bone collagen content, a 2-fold increase in tissue porosity, and significant alterations in collagen organization interfered with normal energy dissipation mechanisms of Mov13 microstructure. Collectively, the results provided the first evidence that the reduced ductility associated with a type-I collagen mutation was mediated by alterations in intermediate structures that normally contribute to the post-yield behavior of cortical bone. The results suggest that, to better understand the pathogenesis of skeletal fragility, it is important to consider the effects of molecular alterations on higher-level structures, particularly those structures that contribute to the failure mechanisms in normal bone.

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Year:  1996        PMID: 8676263     DOI: 10.1002/jor.1100140320

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


  29 in total

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Review 2.  Role of collagen and other organics in the mechanical properties of bone.

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3.  Mechanical property and tissue mineral density differences among severely suppressed bone turnover (SSBT) patients, osteoporotic patients, and normal subjects.

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Review 4.  The role of the collagen matrix in skeletal fragility.

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5.  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

6.  Fracture surface analysis to understand the failure mechanisms of collagen degraded bone.

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7.  Increased susceptibility to microdamage in Brtl/+ mouse model for osteogenesis imperfecta.

Authors:  Mathieu S Davis; Bethany L Kovacic; Joan C Marini; Albert J Shih; Kenneth M Kozloff
Journal:  Bone       Date:  2011-12-20       Impact factor: 4.398

Review 8.  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

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

Authors:  Hayden-William Courtland; Philip Nasser; Andrew B Goldstone; Lyudmila Spevak; Adele L Boskey; Karl J Jepsen
Journal:  Calcif Tissue Int       Date:  2008-10-15       Impact factor: 4.333

10.  How tough is brittle bone? Investigating osteogenesis imperfecta in mouse bone.

Authors:  R O Ritchie; S J Shefelbine; A Carriero; E A Zimmermann; A Paluszny; S Y Tang; H Bale; B Busse; T Alliston; G Kazakia
Journal:  J Bone Miner Res       Date:  2014-06       Impact factor: 6.741

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