Literature DB >> 23124984

In vivo tracking of segmental bone defect healing reveals that callus patterning is related to early mechanical stimuli.

Manav Mehta1, Sara Checa, Jasmin Lienau, Dietmar Hutmacher, Georg N Duda.   

Abstract

This study addresses the hypothesis that callus formation, patterning, and mineralisation are impaired during the early phase of critical sized bone defect healing, and may relate to inter-fragmentary tissue strains within the bone defect area. Twenty four 12 week old Sprague Dawley rats were used for this study. They were divided into two groups defined by the femur bone defect size: (i) 1 mm resulting in normal healing (NH), and (ii) a large sized 5 mm defect resulting in critical healing (CH). Callus formation, patterning, and mineralisation kinetics in both groups were examined in the periosteal and osteotomy gap regions using a novel longitudinal study setup. Finite element analyses on µCT generated tomograms were used to determine inter-fragmentary tissue strain patterns and compared to callus formation and patterning over the course of time. Using a novel longitudinal study technique with µCT, in vivo tracking and computer simulation approaches, this study demonstrates that: (i) periosteal bone formation and patterning are significantly influenced by bone defect size as early as 2 weeks; (ii) osteotomy gap callus formation and patterning are influenced by bone defect size, and adapt towards a non-union in critical cases by deviating into a medullary formation route as early as 2 weeks after osteotomy; (iii) the new bone formation in the osteotomy gap enclosing the medullary cavity in the CH group is highly mineralised; (iv) inter-fragmentary strain patterns predicted during the very early soft callus tissue phase (less than 2 weeks) are concurrent with callus formation and patterning at later stages. In conclusion, bone defect size influences early onset of critical healing patterns.

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Year:  2012        PMID: 23124984     DOI: 10.22203/ecm.v024a26

Source DB:  PubMed          Journal:  Eur Cell Mater        ISSN: 1473-2262            Impact factor:   3.942


  12 in total

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5.  Mechano-Biological Computer Model of Scaffold-Supported Bone Regeneration: Effect of Bone Graft and Scaffold Structure on Large Bone Defect Tissue Patterning.

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Authors:  Edoardo Borgiani; Georg N Duda; Bettina M Willie; Sara Checa
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7.  Longitudinal analysis of osteogenic and angiogenic signaling factors in healing models mimicking atrophic and hypertrophic non-unions in rats.

Authors:  Susann Minkwitz; Mirja Faßbender; Zienab Kronbach; Britt Wildemann
Journal:  PLoS One       Date:  2015-04-24       Impact factor: 3.240

8.  Matrix elasticity of void-forming hydrogels controls transplanted-stem-cell-mediated bone formation.

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Review 10.  Printability and Shape Fidelity of Bioinks in 3D Bioprinting.

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