Bony defect repair in rabbit using hybrid rapid prototyping polylactic-co-glycolic acid/β-tricalciumphosphate collagen I/apatite scaffold and bone marrow mesenchymal stem cells

被引:30
|
作者
Pang, Long [1 ]
Hao, Wei [2 ]
Jiang, Ming [3 ]
Huang, Jianguo [1 ]
Yan, Yongnian [4 ]
Hu, Yunyu [5 ]
机构
[1] Ningxia Med Univ, Affiliated Hosp, Dept Orthopaed 3, Ningxia, Peoples R China
[2] Qingdao Univ, Coll Med, Yantai Yu Huang Ding Hosp, Dept Orthopaed & Traumatol, Qingdao 266071, Peoples R China
[3] 107 Hosp, Jinan Mil Area, Dept Stomatol, Yantai, Shandong, Peoples R China
[4] Tsinghua Univ, Dept Mech Engn, Beijing 100084, Peoples R China
[5] Fourth Mil Med Univ, Xijing Hosp, Inst Orthopaed & Traumatol, Xian 710032, Peoples R China
关键词
Apatite; bone tissue engineering; collagen I; hybrid scaffolds; segmental bone defect; SIMULATED BODY-FLUID; ALLOGRAFTS; DEPOSITION; MIGRATION; FUSION; GRAFT; STATE;
D O I
10.4103/0019-5413.114927
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: In bone tissue engineering, extracellular matrix exerts critical influence on cellular interaction with porous biomaterial and the apatite playing an important role in the bonding process of biomaterial to bone tissue. The aim of this study was to observe the therapeutic effects of hybrid rapid prototyping (RP) scaffolds comprising polylactic-co-glycolic acid (PLGA), beta-tricalciumphosphate (beta-TCP), collagen I and apatite (PLGA/beta-TCP-collagen I/apatite) on segmental bone defects in conjunction with combination with bone marrow mesenchymal stem cells (BMSCs). Materials and Methods: BMSCs were seeded into the hybrid RP scaffolds to repair 15 mm defect in the radius of rabbits. Radiograph, microcomputed tomography and histology were used to evaluate new bone formation. Results: Radiographic analysis done from 12 to 36 weeks postoperative period demonstrated that new bone formed at the radial defect site and continues to increase until the medullary cavity is recanalized and remodelling is complete. The bone defect remained unconnected in the original RP scaffolds (PLGA/beta-TCP) during the whole study. Histological observations conformed to the radiographic images. In hybrid RP scaffold group, woven bone united the radial defect at 12 weeks and consecutively remodeled into lamellar bone 24 weeks postoperation and finally matured into cortical bone with normal marrow cavity after another 12 weeks. No bone formation but connective tissue has been detected in RP scaffold at the same time. Conclusion: Collagen I/apatite sponge composite coating could improve new bone formation in vivo. The hybrid RP scaffold of PLGA/beta-TCP skeleton with collagen I/apatite sponge composite coating is a promising candidate for bone tissue engineering.
引用
收藏
页码:388 / 394
页数:7
相关论文
共 19 条
  • [1] Bony defect repair in rabbit using hybrid rapid prototyping polylactic-co-glycolic acid/β-tricalciumphosphate collagen I/apatite scaffold and bone marrow mesenchymal stem cells
    Long Pang
    Wei Hao
    Ming Jiang
    Jianguo Huang
    Yongnian Yari
    Yunyu Hu
    Indian Journal of Orthopaedics, 2013, 47 : 388 - 394
  • [2] EVALUATION OF THREE DIMENSIONAL CONSTRUCT ENGINEERED FROM POLY( LACTIC-CO-GLYCOLIC ACID)/ FIBRIN HYBRID SCAFFOLD USING RABBIT BONE MARROW MESENCHYMAL STEM CELLS FOR OSTEOCHONDRAL DEFECT REPAIR
    Rahman, Rozlin Abdul
    Sukri, Norhamiza Mohamad
    Nazir, Noorhidayah Md
    Radzi, Muhammad Aa'zamuddin Ahmad
    Zulkifly, Ahmad Hafiz
    Ahmad, Aminudin Che
    Rahman, Suzanah Abdul
    Shaban, Munirah
    JURNAL TEKNOLOGI, 2015, 77 (25): : 77 - 82
  • [3] Construction of Engineered Myocardial Tissue in Vivo Using Polylactic Acid-Co-Glycolic Acid Scaffold and Cardiomyocyte-Like Cells Derived From Bone Marrow Mesenchymal Stem Cells
    Lv An-Lin
    Xing Yu-Jie
    Wang Li
    CIRCULATION, 2010, 122 (02) : E30 - E30
  • [4] Meniscal repair using different collagen type I matrices and bone marrow-derived mesenchymal stem cells in vitro
    Siebenlist, S.
    Stueber, J.
    Eulert, J.
    Noeth, U.
    CYTOTHERAPY, 2006, 8 : 65 - 66
  • [5] -Book-shaped decellularized tendon matrix scaffold combined with bone marrow mesenchymal stem cells-sheets for repair of achilles tendon defect in rabbit
    Xie, Shanshan
    Zhou, Yongchun
    Tang, Yifu
    Chen, Can
    Li, Shengcan
    Zhao, Chunfeng
    Hu, Jianzhong
    Lu, Hongbin
    JOURNAL OF ORTHOPAEDIC RESEARCH, 2019, 37 (04) : 887 - 897
  • [6] Biomechanical Analysis of Poly Lactic-co-glycolic Acid Catheter Combined with Bone Marrow Mesenchymal Stem Cells and Extracellular Matrix Transplantation for Long Sciatic Nerve Defect Repair
    Piao, Chengdong
    Li, Zhengwei
    Ding, Jie
    Qin, Zhigang
    JOURNAL OF HARD TISSUE BIOLOGY, 2018, 27 (04) : 327 - 332
  • [7] Enhanced Mandibular Bone Repair Using Poly Lactic-co-glycolic Acid Combined with Nanohydroxyapatite Scaffold Loaded by Mesenchymal Stromal/Stem Cells and Curcumin in Male Rats
    Mokhtarzadegan, Mohamad
    Amini, Saba
    Iraji, Aida
    Kian, Mehdi
    Irajie, Cambyz
    Sajad Daneshi, Seyyed
    Abbaspour, Shekofeh
    Zare, Shahrokh
    Jamshidzadeh, Akram
    Feiz, Ali
    Mussin, Nadiar M.
    Tanideh, Nader
    Tamadon, Amin
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2024, 10 (11): : 7043 - 7053
  • [8] Repair of large articular osteochondral defects using hybrid scaffolds and bone marrow-derived mesenchymal stem cells in a rabbit model
    Shao, Xinxin
    Goh, James C. H.
    Hutmacher, Dietmar W.
    Lee, Eng Hin
    Ge Zigang
    TISSUE ENGINEERING, 2006, 12 (06): : 1539 - 1551
  • [9] The promotion of cartilage defect repair using adenovirus mediated Sox9 gene transfer of rabbit bone marrow mesenchymal stem cells
    Cao, Lei
    Yang, Fei
    Liu, Guangwang
    Yu, Degang
    Li, Huiwu
    Fan, Qiming
    Gan, Yaokai
    Tang, Tingting
    Dai, Kerong
    BIOMATERIALS, 2011, 32 (16) : 3910 - 3920
  • [10] One-step Articular Cartilage Repair: Combination of In Situ Bone Marrow Stem Cells With Cell-free Poly(L-lactic-co-glycolic Acid) Scaffold in a Rabbit Model
    Shi, Junjun
    Zhang, Xin
    Zeng, Xiangzhu
    Zhu, Jingxian
    Pi, Yanbin
    Zhou, Chunyan
    Ao, Yingfang
    ORTHOPEDICS, 2012, 35 (05) : E665 - E671