Literature DB >> 9202055

Collagen from the osteogenesis imperfecta mouse model (oim) shows reduced resistance against tensile stress.

K Misof1, W J Landis, K Klaushofer, P Fratzl.   

Abstract

Osteogenesis imperfecta (OI) is a disease attributable to any of a large number of possible mutations of type I collagen. The disease is clinically characterized in part by highly brittle bone, the cause of this feature being unknown. Recently a mouse model of OI, designated as osteogenesis imperfecta murine (oim), and having a well defined genetic mutation, has been studied and found to contain mineral crystals different in their alignment with respect to collagen and in their size. These observations are consistent with those reported in human OI and the unusual crystal alignment and size undoubtedly contribute to the reduced mechanical properties of OI bone. While the mineral has been investigated, no information is available on the tensile properties of oim collagen. In this study, the mechanical properties of tendon collagen under tension have been examined for homozygous (oim/oim), heterozygous (+/oim), and control (+/+) mice under native wet conditions. The ultimate stress and strain found for oim/oim collagen were only about half the values for control mice. Assuming that prestrained collagen molecules carry most of the tensile load in normal bone while the mineral confers rigidity and compression stability, the reported results suggest that the brittleness of OI bone in the mouse model may be related to a dramatic reduction of the ultimate tensile strain of the collagen.

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Keywords:  Non-programmatic

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Year:  1997        PMID: 9202055      PMCID: PMC508163          DOI: 10.1172/JCI119519

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  20 in total

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3.  Tomographic imaging of collagen-mineral interaction: implications for osteogenesis imperfecta.

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5.  Considerations regarding the structure of the mammalian mineralized osteoid from viewpoint of the generalized packing model.

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6.  Collagen; ultrastructure and its relation to mechanical properties as a function of ageing.

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8.  Stress-induced molecular rearrangement in tendon collagen.

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Authors:  U Vetter; M A Weis; M Mörike; E D Eanes; D R Eyre
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Review 10.  Muscle-Bone Interactions in Pediatric Bone Diseases.

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