Mechanically stimulated osteochondral organ culture for evaluation of biomaterials in cartilage repair studies

被引:45
|
作者
Vainieri, M. L. [1 ,2 ]
Wahl, D. [1 ]
Mini, M. [1 ]
van Osch, G. J. V. M. [2 ,3 ]
Grad, S. [1 ]
机构
[1] AO Res Inst Davos, Clavadelerstr 8, CH-7270 Davos, Switzerland
[2] Univ Med Ctr Rotterdam, Dept Orthopaed, Erasmus MC, Rotterdam, Netherlands
[3] Univ Med Ctr Rotterdam, Dept Otorhinolaryngol Head & Neck Surg, Erasmus MC, Rotterdam, Netherlands
基金
欧盟地平线“2020”;
关键词
Articular cartilage; Osteochondral defect; Bioreactor; Ex vivo model; Biomaterials; FIBRIN-POLYURETHANE COMPOSITES; TISSUE SHEAR DEFORMATION; MESENCHYMAL STEM-CELLS; FULL-THICKNESS DEFECTS; ARTICULAR-CARTILAGE; GENE-EXPRESSION; IN-VITRO; SUBCHONDRAL BONE; CHONDROCYTES; KNEE;
D O I
10.1016/j.actbio.2018.09.058
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Surgical procedures such as microfracture or autologous chondrocyte implantation have been used to treat articular cartilage lesions; however, repair often fails in terms of matrix organization and mechanical behaviour. Advanced biomaterials and tissue engineered constructs have been developed to improve cartilage repair; nevertheless, their clinical translation has been hampered by the lack of reliable in vitro models suitable for pre-clinical screening of new implants and compounds. In this study, an osteochondral defect model in a bioreactor that mimics the multi-axial motion of an articulating joint, was developed. Osteochondral explants were obtained from bovine stifle joints, and cartilage defects of 4 mm diameter were created. The explants were used as an interface against a ceramic ball applying dynamic compressive and shear loading. Osteochondral defects were filled with chondrocytes-seeded fibrin-polyurethane constructs and subjected to mechanical stimulation. Cartilage viability, proteoglycan accumulation and gene expression of seeded chondrocytes were compared to free swelling controls. Cells within both cartilage and bone remained viable throughout the 10-day culture period. Loading did not wear the cartilage, as indicated by histological evaluation and glycosaminoglycan release. The gene expression of seeded chondrocytes indicated a chondrogenic response to the mechanical stimulation. Proteoglycan 4 and cartilage oligomeric matrix protein were markedly increased, while mRNA ratios of collagen type II to type I and aggrecan to versican were also enhanced. This mechanically stimulated osteochondral defect culture model provides a viable microenvironment and will be a useful pre-clinical tool to screen new biomaterials and biological regenerative therapies under relevant complex mechanical stimuli. Statement of Significance Articular cartilage lesions have a poor healing capacity and reflect one of the most challenging problems in orthopedic clinical practice. The aim of current research is to develop a testing system to assess biomaterials for implants, that can permanently replace damaged cartilage with the original hyaline structure and can withstand the mechanical forces long term. Here, we present an osteochondral ex vivo culture model within a cartilage bioreactor, which mimics the complex motion of an articulating joint in vivo. The implementation of mechanical forces is essential for pre-clinical testing of novel technologies in the field of cartilage repair, biomaterial engineering and regenerative medicine. Our model provides a unique opportunity to investigate healing of articular cartilage defects in a physiological joint-like environment. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd.
引用
收藏
页码:256 / 266
页数:11
相关论文
共 13 条
  • [1] Silk fibroin-based biomaterials for cartilage/osteochondral repair
    Zhou, Ziyang
    Cui, Jin
    Wu, Shunli
    Geng, Zhen
    Su, Jiacan
    THERANOSTICS, 2022, 12 (11): : 5103 - 5124
  • [2] A human osteoarthritis osteochondral organ culture model for cartilage tissue engineering
    Yeung, P.
    Zhang, W.
    Wang, X. N.
    Yan, C. H.
    Chan, B. P.
    BIOMATERIALS, 2018, 162 : 1 - 21
  • [3] An Osteochondral Culture Model to Study Mechanisms Involved in Articular Cartilage Repair
    de Vries-van Melle, Marloes L.
    Mandl, Erik W.
    Kops, Nicole
    Koevoet, Wendy J. L. M.
    Verhaar, Jan A. N.
    van Osch, Gerjo J. V. M.
    TISSUE ENGINEERING PART C-METHODS, 2012, 18 (01) : 45 - 53
  • [4] Evaluation of cartilage, synovium and adipose tissue as cellular sources for osteochondral repair
    Innes, J. F.
    Gordon, C.
    Vaughan-Thomas, A.
    Rhodes, N. P.
    Clegg, P. D.
    VETERINARY JOURNAL, 2013, 197 (03) : 619 - 624
  • [5] Evaluation of Cartilage Repair by Mesenchymal Stem Cells Seeded on a PEOT/PBT Scaffold in an Osteochondral Defect
    Barron, V.
    Merghani, K.
    Shaw, G.
    Coleman, C. M.
    Hayes, J. S.
    Ansboro, S.
    Manian, A.
    O'Malley, G.
    Connolly, E.
    Nandakumar, A.
    van Blitterswijk, C. A.
    Habibovic, P.
    Moroni, L.
    Shannon, F.
    Murphy, J. M.
    Barry, F.
    ANNALS OF BIOMEDICAL ENGINEERING, 2015, 43 (09) : 2069 - 2082
  • [6] The use of a cartilage decellularized matrix scaffold for the repair of osteochondral defects: the importance of long-term studies in a large animal model
    Bolanos, R. A. Vindas
    Cokelaere, S. M.
    McDermott, J. M. Estrada
    Benders, K. E. M.
    Gbureck, U.
    Plomp, S. G. M.
    Weinans, H.
    Groll, J.
    van Weeren, P. R.
    Malda, J.
    OSTEOARTHRITIS AND CARTILAGE, 2017, 25 (03) : 413 - 420
  • [7] A novel organ culture model of a joint for the evaluation of static and dynamic load on articular cartilage
    Lin, Y-C.
    Hall, A. C.
    Simpson, A. H. R. W.
    BONE & JOINT RESEARCH, 2018, 7 (03): : 205 - 212
  • [8] Evaluation of repair process of osteochondral defects in rabbit articular cartilage with an inhibitor of plasminogen activator (tranexamic acid)
    Avki, S
    Hatipoglu, F
    Yigitarslan, K
    REVUE DE MEDECINE VETERINAIRE, 2003, 154 (06) : 421 - 425
  • [9] Evaluation of Cartilage Repair by Mesenchymal Stem Cells Seeded on a PEOT/PBT Scaffold in an Osteochondral Defect
    V. Barron
    K. Merghani
    G. Shaw
    C. M. Coleman
    J. S. Hayes
    S. Ansboro
    A. Manian
    G. O’Malley
    E. Connolly
    A. Nandakumar
    C. A. van Blitterswijk
    P. Habibovic
    L. Moroni
    F. Shannon
    J. M. Murphy
    F. Barry
    Annals of Biomedical Engineering, 2015, 43 : 2069 - 2082
  • [10] Bioreactor-manufactured cartilage grafts repair acute and chronic osteochondral defects in large animal studies
    Vukasovic, Andreja
    Asnaghi, Maria Adelaide
    Kostesic, Petar
    Quasnichka, Helen
    Cozzolino, Carmine
    Pusic, Maja
    Hails, Lauren
    Trainor, Nuala
    Krause, Christian
    Figallo, Elisa
    Filardo, Giuseppe
    Kon, Elizaveta
    Wixmerten, Anke
    Maticic, Drazen
    Pellegrini, Graziella
    Kafienah, Wael
    Hudetz, Damir
    Smith, Tim
    Martin, Ivan
    Ivkovic, Alan
    Wendt, David
    CELL PROLIFERATION, 2019, 52 (06)