Instruments for reproducible setting of defects in cartilage and harvesting of osteochondral plugs for standardisation of preclinical tests for articular cartilage regeneration

被引:5
|
作者
Schwarz, Markus L. [1 ]
Schneider-Wald, Barbara [1 ]
Brade, Joachim [2 ]
Schleich, Dieter [1 ]
Schuette, Andy [1 ]
Reisig, Gregor [1 ]
机构
[1] Univ Med Ctr Mannheim, Sect Expt Orthopaed & Trauma Surg, Orthopaed & Trauma Surg Ctr OUZ, D-68167 Mannheim, Germany
[2] Heidelberg Univ, Med Fac Mannheim, Dept Med Stat Biomath & Informat Proc, Mannheim, Germany
关键词
SUBCHONDRAL BONE; CHONDRAL DEFECTS; MINIPIG MODEL; HUMAN KNEE; IN-VITRO; OSTEOARTHRITIS; FRICTION; REPAIR; SHEEP; TRANSPLANTATION;
D O I
10.1186/s13018-015-0257-x
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
Background: Standardisation is required in research, so are approval procedures for advanced therapy medical products and other procedures for articular cartilage therapies. The process of creating samples needs to be reproducible. The aim of this study was to design, create and validate instruments (1) to create reproducible and accurate defects and (2) to isolate samples in the shape of osteochondral cylinders in a quick, reliable and sterile manner. Methods: Adjustable instruments were created: a crown mill with a resolution of 0.05 mm and a front mill to create defects in articular cartilage and subchondral bone. The instruments were tested on knee joints of pigs from the slaughterhouse; 48 defects were created and evaluated. A punching machine was designed to harvest osteochondral plugs. These were validated in an in vivo animal study. Results: The instruments respect the desired depth of 0.5 and 1.5 mm when creating the defects, depending on whether the person using the instrument is highly experienced (0.451 mm; confidence interval (CI): 0.390 mm; 0.512 mm and 1.403 mm; CI: 1.305 mm; 1.502 mm) or less so (0.369 mm; CI: 0.297 mm; 0.440 mm and 1.241 mm; CI: 1.141 mm; 1.341 mm). Eighty samples were taken from knee joints of Gottingen Minipigs with this punching technique. The time needed for the harvesting of the samples was 7.52 min (+/- 2.18 min), the parallelism of the sides of the cylinders deviated by -0.63 degrees (CI: -1.33 degrees; 0.08 degrees) and the surface of the cartilage deviated from the perpendicularity by 4.86 degrees (CI: 4.154 degrees; 5.573 degrees). In all assessed cases, a sterile procedure was observed. Conclusions: Instruments and procedures for standardised creation and validation of defects in articular cartilage and subchondral bone were designed. Harvesting of samples in the shape of osteochondral cylinders can now be performed in a quick, reliable and sterile manner. The presented instruments and procedures can serve as helpful steps towards standardised operating procedures in the field of regenerative therapies of articular cartilage in research and for regulatory requirements.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Repair of articular cartilage defects with tissue-engineered osteochondral composites in pigs
    Cui, Weiding
    Wang, Qing
    Chen, Gang
    Zhou, Shixiang
    Chang, Qing
    Zuo, Qiang
    Ren, Kewei
    Fan, Weimin
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2011, 111 (04) : 493 - 500
  • [22] Biomimetic multizonal scaffolds for the reconstruction of zonal articular cartilage in chondral and osteochondral defects
    Lin, Xiaoqi
    Zhang, Ye
    Li, Jiarong
    Oliver, Brian G.
    Wang, Bin
    Li, Haiyan
    Yong, Ken-Tye
    Li, Jiao Jiao
    BIOACTIVE MATERIALS, 2025, 43 : 510 - 549
  • [23] Effectiveness and limitations of autologous osteochondral grafting for the treatment of articular cartilage defects in the knee
    Shinji Imade
    Nobuyuki Kumahashi
    Suguru Kuwata
    Jyunji Iwasa
    Yuji Uchio
    Knee Surgery, Sports Traumatology, Arthroscopy, 2012, 20 : 160 - 165
  • [24] Articular damage caused by metal plugs in a rabbit model for treatment of localized cartilage defects
    Clusters, R. J. H.
    Dhert, W. J. A.
    van Rijen, M. H. P.
    Verbout, A. J.
    Creemers, L. B.
    Saris, D. B. F.
    OSTEOARTHRITIS AND CARTILAGE, 2007, 15 (08) : 937 - 945
  • [25] Regeneration of articular cartilage - Evaluation of osteochondral defect repair in the rabbit using multiphasic implants
    Frenkel, SR
    Bradica, G
    Brekke, JH
    Goldman, SM
    Ieska, K
    Issack, P
    Bong, MR
    Tian, H
    Gokhale, J
    Coutts, RD
    Kronengold, RT
    OSTEOARTHRITIS AND CARTILAGE, 2005, 13 (09) : 798 - 807
  • [26] Osteochondral autologous transplantation for the treatment of full-thickness articular cartilage defects of the shoulder
    Scheibel, M
    Bartl, C
    Magosch, P
    Lichtenberg, S
    Habermeyer, P
    JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 2004, 86B (07): : 991 - 997
  • [27] Repair of articular cartilage in rabbit osteochondral defects promoted by extracorporeal shock wave therapy
    C.-H. Chu
    Y.-S. Yen
    P.-L. Chen
    C.-Y. Wen
    Shock Waves, 2015, 25 : 205 - 214
  • [28] Repair of articular cartilage in rabbit osteochondral defects promoted by extracorporeal shock wave therapy
    Chu, C. -H.
    Yen, Y. -S.
    Chen, P. -L.
    Wen, C. -Y.
    SHOCK WAVES, 2015, 25 (02) : 205 - 214
  • [29] USE OF A GUANIDINE EXTRACT OF DEMINERALIZED BONE IN THE TREATMENT OF OSTEOCHONDRAL DEFECTS OF ARTICULAR-CARTILAGE
    TANAKA, T
    FUJII, K
    OHTA, M
    SOSHI, S
    KITAMURA, A
    MUROTA, K
    JOURNAL OF ORTHOPAEDIC RESEARCH, 1995, 13 (03) : 464 - 469
  • [30] Osteochondral autografting (mosaicplasty) in articular cartilage defects in the knee: Results at 5 to 9 years
    Solheim, Eirik
    Hegna, Janne
    Oyen, Jannike
    Austgulen, Ove Kristian
    Harlem, Thomas
    Strand, Torbjorn
    KNEE, 2010, 17 (01): : 84 - 87