Repair of bone defects in rat radii with a composite of allogeneic adipose-derived stem cells and heterogeneous deproteinized bone

被引:30
作者
Liu, Jia [1 ]
Zhou, Peng [1 ]
Long, Yu [1 ]
Huang, Chunxia [1 ]
Chen, Danna [1 ,2 ]
机构
[1] Changsha Med Univ, Sch Basic Med Sci, Dept Human Anat Histol & Embryol, Changsha 410219, Hunan, Peoples R China
[2] Cent S Univ, Sch Biol Sci & Technol, Changsha 410013, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
Adipose-derived stem cells; Differentiation; Osteogenesis; Deproteinized bone; Bone defect; Molybdenum target X-ray; TISSUE-ENGINEERED BONE; CANCELLOUS BONE; STROMAL CELLS; IN-VITRO; MATRIX; DIFFERENTIATION; REGENERATION; SUBSTITUTES; SCAFFOLDS; BEHAVIOR;
D O I
10.1186/s13287-018-0817-1
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Background: In the bone tissue engineering domain, seed cells, scaffold and cell-scaffold composites are three focuses. In this study, the feasibility of using allogeneic adipose-derived stem cells(ADSCs) combined with heterogeneous deproteinized bone (HDB) to repair segmental radial defects was investigated by observing the repair of the defect area. Methods: ADSCs were cultured in vitro, purified, antigen-detected and osteogenic differentiation potency-measured; then, the ADSCs of the third generation were seeded into HDB to prepare an ADSCs-HDB composite partly with osteogenesis induced cells. Sixty Wistar rats were randomly divided into four groups with 15 in each group. A bone defect (4 mm in length) was created at the left radius in each rat. Two kinds of ADSCs-HDB composites were implanted in the ADSCs osteogenesis group or ADSCs group; HDB was implanted in the negative control group; nothing was filled in the blank control group. The bone defect repair was evaluated by gross observation, molybdenum target X-ray examination and histological analyses after surgery. Results: Gross observation: the bone defect area was completely filled and difficult to recognize in the ADSCs osteogenesis group. The connection of the ADSCs group was strong, but the implants were clearly identifiable. The joints of the negative control group were slightly thick but the connection was unstable. In the blank control group, kermesinus tissue was between the two ends and bones were not connected after 8 weeks. Molybdenum target X-ray examinations: In the ADSCs osteogenesis group, evident bridges in the graft were observed in the defects in the fourth week; the defects were filled with new bone completely and a marrow cavity appeared at 8 weeks. In the ADSCs group, there were some callus formations, but the radial defect was still obvious at 8 weeks. In the negative control group, fracture lines were clear. In the blank control group, no osseous bridges were observed, which resulted in bone nonunion eventually in 8 weeks. There were significant differences in the callus density between experimental groups and the blank control group at 4 and 8 weeks (P < 0.01). Histological measures showed that the rate and quality of the new bone formation and remodelling was significantly different between the experimental and control groups. Conclusions: A composite of ADSCs-HDB has a strong osteogenic ability. It can repair segmental bone defects well and is promising to serve as grafting material in bone tissue engineering.
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页数:10
相关论文
共 35 条
[11]   Effects of Rat Bone Marrow-Derived Mesenchymal Stem Cells and Demineralized Bone Matrix on Cranial Bone Healing [J].
Kandal, Sebahattin ;
Ozmen, Selahattin ;
Uygur, Safak ;
Yagci, Munci ;
Kayhan, Handan ;
Elmas, Cigdem ;
Arac, Mehmet ;
Celebi, Cemalettin .
ANNALS OF PLASTIC SURGERY, 2016, 77 (02) :249-254
[12]  
Kesireddy V, 2016, J MATER CHEM B, V4, P6773, DOI [10.1039/c6tb00783j, 10.1039/C6TB00783J]
[13]  
Kon E, 2000, J BIOMED MATER RES, V49, P328
[14]   TISSUE ENGINEERING [J].
LANGER, R ;
VACANTI, JP .
SCIENCE, 1993, 260 (5110) :920-926
[15]  
LAZARUS HM, 1995, BONE MARROW TRANSPL, V16, P557
[16]  
Leong David Tai, 2008, Curr Drug Discov Technol, V5, P319, DOI 10.2174/157016308786733537
[17]   Osteochondral defect repair with autologous bone marrow-derived mesenchymal stem cells in an injectable, in situ, cross-linked synthetic extracellular matrix [J].
Liu, Yanchun ;
Shu, Xiao Zheng ;
Prestwich, Glenn D. .
TISSUE ENGINEERING, 2006, 12 (12) :3405-3416
[18]   Bone tissue engineering by using a combination of polymer/Bioglass composites with human adipose-derived stem cells [J].
Lu, Wei ;
Ji, Kun ;
Kirkham, Jennifer ;
Yan, Yu ;
Boccaccini, Aldo R. ;
Kellett, Margaret ;
Jin, Yan ;
Yang, Xuebin B. .
CELL AND TISSUE RESEARCH, 2014, 356 (01) :97-107
[19]   A Combination of Low-Intensity Pulsed Ultrasound and Nanohydroxyapatite Concordantly Enhances Osteogenesis of Adipose-Derived Stem Cells From Buccal Fat Pad [J].
Nagasaki, Rika ;
Mukudai, Yoshiki ;
Yoshizawa, Yasumasa ;
Nagasaki, Masahiro ;
Shiogama, Sunao ;
Suzuki, Maiko ;
Kondo, Seiji ;
Shintani, Satoru ;
Shirota, Tatsuo .
CELL MEDICINE, 2015, 7 (03) :123-131
[20]   Improved Bone Regeneration With Multiporous PLGA Scaffold and BMP-2-Transduced Human Adipose-Derived Stem Cells by Cell-Permeable Peptide [J].
Park, Suhyun ;
Heo, Hyun-A ;
Lee, Kwang-bae ;
Kim, Han-goo ;
Pyo, Sung-woon .
IMPLANT DENTISTRY, 2017, 26 (01) :4-11