Publication: Comparison of the Effects of Microfracture, Soft Callus Implantation, and Matrix-Supported Chondrocyte Implantation in an Experimental Osteochondral Defect Model in Rats
| dc.contributor.author | Özkan, Ö. C. | |
| dc.contributor.author | Kurdal, Demet Pepele | |
| dc.contributor.author | Yilmaz, Bariş | |
| dc.contributor.author | Tutcu, H. K. | |
| dc.contributor.author | Somuncu, Ozge Sezin | |
| dc.contributor.author | Yücel, I. A. | |
| dc.contributor.author | Savaşır, E. | |
| dc.contributor.author | Midi, Ahmet | |
| dc.contributor.institution | Özkan, Ö. C., Department of Orthopaedics, Training and Research Hospital, Istanbul, Turkey | |
| dc.contributor.institution | Kurdal, Demet Pepele, Department of Orthopaedics, Training and Research Hospital, Istanbul, Turkey | |
| dc.contributor.institution | Yilmaz, Bariş, Department of Orthopaedics, Training and Research Hospital, Istanbul, Turkey | |
| dc.contributor.institution | Tutcu, H. K., Department of Orthopaedics, Training and Research Hospital, Istanbul, Turkey | |
| dc.contributor.institution | Somuncu, Ozge Sezin, Department of Radiation Oncology, Dana-Farber Cancer Institute, Boston, United States | |
| dc.contributor.institution | Yücel, I. A., Department of Orthopaedics, Training and Research Hospital, Istanbul, Turkey | |
| dc.contributor.institution | Savaşır, E., Department of Medicine, Bahçeşehir Üniversitesi, Istanbul, Turkey | |
| dc.contributor.institution | Midi, Ahmet, Department of Pathology, University of Altinbas, Istanbul, Turkey | |
| dc.date.accessioned | 2025-10-05T14:42:18Z | |
| dc.date.issued | 2024 | |
| dc.description.abstract | Background: The treatment of cartilage defects remains challenging due to the avascular nature of cartilage. Aim: This study investigates the therapeutic effect of soft callus in osteochondral defects and explores the ability of multipotent and pluripotent cells within the callus to form fibrous or hyaline cartilage in the defective area. Methods: Twenty-one rats were divided into three equal groups: Group 1 received only microfracture (MF), group 2 received microfracture with autologous chondrocyte implantation (MF+ACI), and group 3 received microfracture with soft callus implantation (MF+SCI). All rats underwent diaphyseal fracture in their left tibias, which was stabilized with a Kirshner wire. One week later, osteochondral defects were created in the right knees of all rats. For group 1, microfracture alone was applied to initiate healing in the defects. In group 2, heterologous chondrocytes, previously harvested from the lateral condyle of a rat’s left femur and cultivated in a laboratory environment, were implanted into the microfracture site. In group 3, soft callus tissue obtained from the left tibial fracture was compressed and implanted into the defective area. All groups were sacrificed at the 6th week, and the healing status of the osteochondral defect areas was histopathologically evaluated. Results: Macroscopic examination at the end of the study revealed comparable ICRS-1 scores for MF+ACI (group 2) (11.28 ± 1.25) and MF+SCI (group 3) (11.14 ± 0.37), while MF alone (group 1) (4.28 ± 1.25) showed significantly lower results. Microscopic examination yielded similar outcomes. Regarding histological scores, ICRS-2 scores for MF (group 1) (35.30 ± 1.13), MF+ACI (group 2) (47.09 ± 1.63), and MF+SCI (group 3) (43.97 ± 1.49) were statistically significantly lower. Conclusion: Defects treated with soft callus implantation demonstrated comparable outcomes to the widely used and gold-standard autologous chondrocyte implantation. When compared to microfracture alone, better macroscopic and microscopic results were achieved with soft callus implantation. © 2024 Elsevier B.V., All rights reserved. | |
| dc.identifier.doi | 10.4103/njcp.njcp_134_24 | |
| dc.identifier.endpage | 1163 | |
| dc.identifier.issn | 11193077 | |
| dc.identifier.issue | 10 | |
| dc.identifier.scopus | 2-s2.0-85208549128 | |
| dc.identifier.startpage | 1154 | |
| dc.identifier.uri | https://doi.org/10.4103/njcp.njcp_134_24 | |
| dc.identifier.uri | https://hdl.handle.net/20.500.14719/6944 | |
| dc.identifier.volume | 27 | |
| dc.language.iso | en | |
| dc.publisher | Wolters Kluwer Medknow Publications | |
| dc.relation.oastatus | All Open Access | |
| dc.relation.oastatus | Gold Open Access | |
| dc.relation.source | Nigerian Journal of Clinical Practice | |
| dc.subject.authorkeywords | Multipotent Cell | |
| dc.subject.authorkeywords | Osteochondral Defects | |
| dc.subject.authorkeywords | Pluripotent Cells | |
| dc.subject.authorkeywords | Rat | |
| dc.subject.authorkeywords | Soft Callus | |
| dc.title | Comparison of the Effects of Microfracture, Soft Callus Implantation, and Matrix-Supported Chondrocyte Implantation in an Experimental Osteochondral Defect Model in Rats | |
| dc.type | Article | |
| dcterms.references | Wang, Jianhua, Biomimetic cartilage scaffold with orientated porous structure of two factors for cartilage repair of knee osteoarthritis, Artificial Cells, Nanomedicine and Biotechnology, 47, 1, pp. 1710-1721, (2019), Sismondo, Ronald A., The use of a hydrogel implant in the repair of osteochondral defects of the knee: A biomechanical evaluation of restoration of native contact pressures in cadaver knees, Clinical Biomechanics, 67, pp. 15-19, (2019), Sancho-Tello, María José, Biostable scaffolds of polyacrylate polymers implanted in the articular cartilage induce hyaline-like cartilage regeneration in rabbits, International Journal of Artificial Organs, 40, 7, pp. 350-357, (2017), Cell Transplantation, (2019), Xu, Jianbin, Injectable stem cell-laden supramolecular hydrogels enhance in situ osteochondral regeneration via the sustained co-delivery of hydrophilic and hydrophobic chondrogenic molecules, Biomaterials, 210, pp. 51-61, (2019), Brittberg, Mats, Evaluation of cartilage injuries and repair, Journal of Bone and Joint Surgery, 85, SUPPL. 1, pp. 58-69, (2003), Orthop Muscul Syst, (2012), Rutgers, Marijn, Evaluation of histological scoring systems for tissue-engineered, repaired and osteoarthritic cartilage, Osteoarthritis and Cartilage, 18, 1, pp. 12-23, (2010), Mainil-Varlet, Pierre M., A new histology scoring system for the assessment of the quality of human cartilage repair: ICRS II, American Journal of Sports Medicine, 38, 5, pp. 880-890, (2010), Coutts, Richard D., Matrices for cartilage repair, Clinical Orthopaedics and Related Research, 391, SUPPL., pp. S271-S279, (2001) | |
| dspace.entity.type | Publication | |
| local.indexed.at | Scopus | |
| person.identifier.scopus-author-id | 59402237000 | |
| person.identifier.scopus-author-id | 57215188992 | |
| person.identifier.scopus-author-id | 25625826500 | |
| person.identifier.scopus-author-id | 59402564800 | |
| person.identifier.scopus-author-id | 56798371900 | |
| person.identifier.scopus-author-id | 59402066500 | |
| person.identifier.scopus-author-id | 59402405100 | |
| person.identifier.scopus-author-id | 24173853500 |
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