Literature DB >> 17293465

Mechanical behavior of articular cartilage after osteochondral autograft transfer in an ovine model.

Ralf U Kleemann1, Hanna Schell, Mark Thompson, Devakara R Epari, Georg N Duda, Andreas Weiler.   

Abstract

BACKGROUND: Grafting of autologous hyaline cartilage and bone for articular cartilage repair is a well-accepted technique. Although encouraging midterm clinical results have been reported, no information on the mechanical competence of the transplanted joint surface is available. HYPOTHESIS: The mechanical competence of osteochondral autografts is maintained after transplantation. STUDY
DESIGN: Controlled laboratory study.
METHODS: Osteochondral defects were filled with autografts (7.45 mm in diameter) in one femoral condyle in 12 mature sheep. The ipsilateral femoral condyle served as the donor site, and the resulting defect (8.3 mm in diameter) was left empty. The repair response was examined after 3 and 6 months with mechanical and histologic assessment and histomorphometric techniques.
RESULTS: Good surface congruity and plug placement was achieved. The Young modulus of the grafted cartilage significantly dropped to 57.5% of healthy tissue after 3 months (P < .05) but then recovered to 82.2% after 6 months. The aggregate and dynamic moduli behaved similarly. The graft edges showed fibrillation and, in some cases (4 of 6), hypercellularity and chondrocyte clustering. Subchondral bone sclerosis was observed in 8 of 12 cases, and the amount of mineralized bone in the graft area increased from 40% to 61%.
CONCLUSIONS: The mechanical quality of transplanted cartilage varies considerably over a short period of time, potentially reflecting both degenerative and regenerative processes, while histologically signs of both cartilage and bone degeneration occur. CLINICAL RELEVANCE: Both the mechanically degenerative and restorative processes illustrate the complex progression of regeneration after osteochondral transplantation. The histologic evidence raises doubts as to the long-term durability of the osteochondral repair.

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Year:  2007        PMID: 17293465     DOI: 10.1177/0363546506296311

Source DB:  PubMed          Journal:  Am J Sports Med        ISSN: 0363-5465            Impact factor:   6.202


  13 in total

1.  Cartilage matrix formation by bovine mesenchymal stem cells in three-dimensional culture is age-dependent.

Authors:  Isaac E Erickson; Steven C van Veen; Swarnali Sengupta; Sydney R Kestle; Robert L Mauck
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2.  Influence of basal support and early loading on bone cartilage healing in press-fitted osteochondral autografts.

Authors:  Tomasz L Nosewicz; Mikel L Reilingh; Martin Wolny; C Niek van Dijk; Georg N Duda; Hanna Schell
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2013-03-12       Impact factor: 4.342

3.  Bone screws have advantages in repair of experimental osteochondral fragments.

Authors:  Michihaya Kono; Ryuji Mori; Yuji Uchio
Journal:  Clin Orthop Relat Res       Date:  2011-11-12       Impact factor: 4.176

4.  Transduction of anti-cell death protein FNK suppresses graft degeneration after autologous cylindrical osteochondral transplantation.

Authors:  Noriki Nakachi; Sadamitsu Asoh; Nobuyoshi Watanabe; Takashi Mori; Takashi Matsushita; Shinro Takai; Shigeo Ohta
Journal:  J Histochem Cytochem       Date:  2008-10-27       Impact factor: 2.479

5.  Microstructural remodeling of articular cartilage following defect repair by osteochondral autograft transfer.

Authors:  C B Raub; S C Hsu; E F Chan; R Shirazi; A C Chen; E Chnari; E J Semler; R L Sah
Journal:  Osteoarthritis Cartilage       Date:  2013-03-22       Impact factor: 6.576

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Journal:  J Am Acad Orthop Surg       Date:  2013-02       Impact factor: 3.020

7.  Functional MRI can detect changes in intratissue strains in a full thickness and critical sized ovine cartilage defect model.

Authors:  Deva D Chan; Luyao Cai; Kent D Butz; Eric A Nauman; Darryl A Dickerson; Ilse Jonkers; Corey P Neu
Journal:  J Biomech       Date:  2017-11-21       Impact factor: 2.712

8.  The vascular basis of the hemi-hamate osteochondral free flap. Part 2: surgical anatomy and clinical application.

Authors:  Warren M Rozen; Vachara Niumsawatt; James C Leong; Edmund W Ek
Journal:  Surg Radiol Anat       Date:  2013-03-19       Impact factor: 1.246

9.  The vascular basis of the hemi-hamate osteochondral free flap. Part 1: vascular anatomy and clinical correlation.

Authors:  Warren M Rozen; Vachara Niumsawatt; Richard Ross; James C Leong; Edmund W Ek
Journal:  Surg Radiol Anat       Date:  2013-03-19       Impact factor: 1.246

10.  Weightbearing ovine osteochondral defects heal with inadequate subchondral bone plate restoration: implications regarding osteochondral autograft harvesting.

Authors:  Tomasz L Nosewicz; Mikel L Reilingh; C Niek van Dijk; Georg N Duda; Hanna Schell
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2011-12-21       Impact factor: 4.342

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