Endogenous Regeneration of Critical-Size Chondral Defects in Immunocompromised Rat Xiphoid Cartilage Using Decellularized Human Bone Matrix Scaffolds

被引:0
|
作者
Wang, Yun
Huang, Yen-Chen [2 ]
Gertzman, Arthur A. [2 ]
Xie, Liqin
Nizkorodov, Alexandr
Hyzy, Sharon L.
Truncale, Kate [2 ]
Guldberg, Robert E. [2 ]
Schwartz, Zvi
Boyan, Barbara D. [1 ]
机构
[1] Georgia Inst Technol, Dept Biomed Engn, Inst Bioengn & Biosci, Atlanta, GA 30332 USA
[2] Musculoskeletal Transplant Fdn, Edison, NJ USA
关键词
MESENCHYMAL STEM-CELLS; FULL-THICKNESS DEFECTS; ARTICULAR-CARTILAGE; GROWTH-FACTORS; CHONDROCYTE IMPLANTATION; IN-VITRO; REPAIR; DIFFERENTIATION; RECONSTRUCTION; PROLIFERATION;
D O I
10.1089/ten.tea.2011.0688
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Clinical efforts to repair cartilage defects delivering cells or engineered cartilage implants into the lesions have met with limited success. This study used a critical-size chondral defect model in immunocompromised rat xiphoid cartilage to test whether endogenous chondrogenesis could be achieved using human bone matrix scaffolds to deliver human cartilage particles and/or a variant isoform of fibroblast growth factor-2 (FGF2-variant). Seventy-two male athymic RNU rats were enrolled in this study with eight rats per experimental group. Decellularized and demineralized human bone matrix scaffolds loaded with human articular cartilage particles or heat-inactivated cartilage particles were combined with different doses of the FGF2-variant. Scaffolds were implanted into 3-mm-diameter critical-size defects prepared using a biopsy punch through the center of the xiphoid. The samples were evaluated 28 days postsurgery using X-ray, equilibrium partitioning of ionic contrast microcomputed tomography, and safranin O-stained histological sagittal sections. Scaffolds containing cartilage particles plus the FGF2-variant induced dose-dependent increases in the formation of neocartilage (p < 0.05), which was distributed homogeneously throughout the defects in comparison to scaffolds containing only the FGF2-variant. These effects were less pronounced when scaffolds with heat-inactivated cartilage particles were used. These results demonstrate that endogenous repair of chondral defects can be achieved in the absence of exogenous cells or bone marrow, suggesting that a similar approach may be successful for treating chondral lesions clinically.
引用
收藏
页码:2332 / 2342
页数:11
相关论文
共 50 条
  • [21] Bone regeneration with BMP-2 and hydroxyapatite in critical-size calvarial defects in rats
    Notodihardjo, Frederik Zefanya
    Kakudo, Natsuko
    Kushida, Satoshi
    Suzuki, Kenji
    Kusumoto, Kenji
    JOURNAL OF CRANIO-MAXILLOFACIAL SURGERY, 2012, 40 (03) : 287 - 291
  • [22] Mechanics Predicts Effective Critical-Size Bone Regeneration Using 3D-Printed Bioceramic Scaffolds
    Blazquez-Carmona, Pablo
    Mora-Macias, Juan
    Martinez-Vazquez, Francisco J.
    Morgaz, Juan
    Dominguez, Jaime
    Reina-Romo, Esther
    TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2023, 20 (06) : 893 - 904
  • [23] Integrin-specific hydrogels functionalized with VEGF for vascularization and bone regeneration of critical-size bone defects
    Garcia, Jose R.
    Clark, Amy Y.
    Garcia, Andres J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2016, 104 (04) : 889 - 900
  • [24] Evaluation of perforated demineralized dentin scaffold on bone regeneration in critical-size sheep iliac defects
    Kabir, Md. Arafat
    Murata, Masaru
    Akazawa, Toshiyuki
    Kusano, Kaoru
    Yamada, Katsuhisa
    Ito, Manabu
    CLINICAL ORAL IMPLANTS RESEARCH, 2017, 28 (11) : E227 - E235
  • [25] Optimal delivery of endothelial progenitor cells in a rat model of critical-size bone defects
    Godbout, Charles
    Ryan, Gareth
    Ramnaraign, David J.
    Hegner, Christian
    Desjardins, Sarah
    Gagnon, Stephane
    Bates, Brent D.
    Whatley, Ian
    Schemitsch, Emil H.
    Nauth, Aaron
    JOURNAL OF ORTHOPAEDIC RESEARCH, 2024, 42 (01) : 193 - 201
  • [26] Critical-size calvarial bone defects healing in a mouse model with silk scaffolds and SATB2-modified iPSCs
    Ye, Jin-Hai
    Xu, Yuan-Jin
    Gao, Jun
    Yan, Shi-Guo
    Zhao, Jun
    Tu, Qisheng
    Zhang, Jin
    Duan, Xue-Jing
    Sommer, Cesar A.
    Mostoslavsky, Gustavo
    Kaplan, David L.
    Wu, Yu-Nong
    Zhang, Chen-Ping
    Wang, Lin
    Chen, Jake
    BIOMATERIALS, 2011, 32 (22) : 5065 - 5076
  • [27] Evaluation of the osteogenic potential of demineralized and decellularized bovine bone granules following implantation in rat calvaria critical-size defect model
    Al Qabbani, Ali
    Rani, K. G. Aghila
    Alkawas, Sausan
    Hamid, Suzina Sheikh Abdul
    Abdullah, Abdullah Yap
    Samsudin, A. R.
    Azlina, Ahmad
    PLOS ONE, 2023, 18 (12):
  • [28] Engineering Human-Scale Artificial Bone Grafts for Treating Critical-Size Bone Defects
    Cianciosi, Alessandro
    Costantini, Marco
    Bergamasco, Sara
    Testa, Stefano
    Fornetti, Ersilia
    Jaroszewicz, Jakub
    Baldi, Jacopo
    Latini, Alessandro
    Choinska, Emilia
    Heljak, Marcin
    Zoccali, Carmine
    Cannata, Stefano
    Swieszkowski, Wojciech
    Lantada, Andres Diaz
    Gargioli, Cesare
    Barbetta, Andrea
    ACS APPLIED BIO MATERIALS, 2019, 2 (11) : 5077 - 5092
  • [29] Micro-CT analysis of alveolar bone healing using a rat experimental model of critical-size defects
    Ebina, H.
    Hatakeyama, J.
    Onodera, M.
    Honma, T.
    Kamakura, S.
    Shimauchi, H.
    Sasano, Y.
    ORAL DISEASES, 2009, 15 (04) : 273 - 280
  • [30] Bone Regeneration of Critical-Size Calvarial Defects in Rats Using Highly Pressed Nano-Apatite/Collagen Composites
    Hatakeyama, Wataru
    Taira, Masayuki
    Sawada, Tomofumi
    Hoshi, Miki
    Hachinohe, Yuki
    Sato, Hirotaka
    Takafuji, Kyoko
    Kihara, Hidemichi
    Takemoto, Shinji
    Kondo, Hisatomo
    MATERIALS, 2022, 15 (09)