» Articles » PMID: 17260211

Repair of Osteochondral Defects in the Knee by Resorbable Bioimplants in a Rabbit Model

Overview
Journal Acta Orthop
Specialty Orthopedics
Date 2007 Jan 30
PMID 17260211
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Background: The intrinsic healing capacity of articular cartilage remains poor, despite various attempts that have been undertaken to treat cartilage defects. This study describes the experimental use of a double-layer bioimplant consisting of a bone-substitute layer and a cartilage-substitute layer.

Animals And Methods: In group A, 12 implants were placed into osteochondral defects of the load-bearing area of rabbit femoral condyles. In group B, 12 implantations were done in the same manner, with a separating membrane consisting of cement between both layers to investigate ingrowth of mesenchymal stem cells from the subchondral marrow space. Group C, with 12 similar defects but without treatment, served as control. Investigations by microscopy and immunohistochemistry were done after 12 weeks.

Results: All bioimplants showed coverage of the defect with a regeneration tissue that contained cartilage-like regions. Implants with a cement layer showed less cartilage and more fibrous tissue. The bioimplant group showed more cartilage-like regeneration tissue than the control groups, which only showed incomplete fibrous filling of the defects. Results from the second group supported the hypothesis that the subchondral space must be opened for adequate regeneration. Additional examinations were done using an established semiquantitative score. The bioimplant group showed a significant improvement in results compared to the group with the separating layer and the control group.

Interpretation: Our findings indicate that cartilage repair by resorbable bioimplants seems to be a promising new approach, especially if mesenchymal stem cells are present and can differentiate under mechanical load.

Citing Articles

Additive Manufacturing of Polymer/Bioactive Glass Scaffolds for Regenerative Medicine: A Review.

Martelli A, Bellucci D, Cannillo V Polymers (Basel). 2023; 15(11).

PMID: 37299270 PMC: 10255145. DOI: 10.3390/polym15112473.


Repair of Osteochondral Defects in a Rabbit Model Using Bilayer Poly(Lactide-co-Glycolide) Scaffolds Loaded with Autologous Platelet-Rich Plasma.

Zhang Y, Niu J, Wang Z, Liu S, Wu J, Yu B Med Sci Monit. 2017; 23:5189-5201.

PMID: 29088126 PMC: 5676501. DOI: 10.12659/msm.904082.


Selective laser sintering scaffold with hierarchical architecture and gradient composition for osteochondral repair in rabbits.

Du Y, Liu H, Yang Q, Wang S, Wang J, Ma J Biomaterials. 2017; 137:37-48.

PMID: 28528301 PMC: 5544967. DOI: 10.1016/j.biomaterials.2017.05.021.


Comparison of tenocytes and mesenchymal stem cells seeded on biodegradable scaffolds in a full-size tendon defect model.

Pietschmann M, Frankewycz B, Schmitz P, Docheva D, Sievers B, Jansson V J Mater Sci Mater Med. 2012; 24(1):211-20.

PMID: 23090834 DOI: 10.1007/s10856-012-4791-3.


Cartilage defects of the femoral trochlea.

Gallo R, Feeley B Knee Surg Sports Traumatol Arthrosc. 2009; 17(11):1316-25.

PMID: 19399479 DOI: 10.1007/s00167-009-0799-8.