Literature DB >> 17938566

Collagen I gel can facilitate homogenous bone formation of adipose-derived stem cells in PLGA-beta-TCP scaffold.

Wei Hao1, Yun-Yu Hu, Yi-Yong Wei, Long Pang, Rong Lv, Jian-Ping Bai, Zhuo Xiong, Ming Jiang.   

Abstract

Cell-based tissue engineering is thought to be a new therapy for treatment of bone defects and nonunions after trauma and tumor resection. In this study, we explore the in vitro and in vivo osteogenesis of a novel biomimetic construct fabricated by using collagen I gel to suspend rabbit adipose-derived stem cells (rASCs) into a porous poly(lactic-co-glycolic)acid-beta-tricalcium phosphate (PLGA-beta-TCP) scaffold (rASCs-COL/PLGA-beta-TCP). In vitro and in vivo studies of the rASCs-COL/PLGA-beta-TCP composite (group A) were carried out compared with the single combination of rASCs and PLGA-beta-TCP (rASCs/PLGA-beta-TCP; group B), the combination of acellular collagen I gel and PLGA-beta-TCP (COL/PLGA-beta-TCP; group C), and the PLGA-beta-TCP scaffold (group D). Composites of different groups were cultured in vitro for 2 weeks in osteogenic medium and then implanted into the autologous muscular intervals for 8 weeks. After 2 weeks of in vitro culture, alkaline phosphatase activity and extracellular matrix mineralization in group A were significantly higher than in group B (p < 0.01, n = 4). In vivo osteogenesis was evaluated by radiographic and histological analyses. The calcification level was radiographically evident in group A, whereas no apparent calcification was observed in groups B, C and D (n = 4). In group A, woven bone with a trabecular structure was formed, while in group B, only osteoid tissue was observed. Meanwhile, the bone-forming area in group A was significantly higher than in group B (p < 0.01, n = 4). No bone formation was observed in groups C or D (n = 4). In conclusion, by using collagen I gel to suspend rASCs into porous PLGA-beta-TCP scaffold, osteogenic differentiation of rASCs can be improved and homogeneous bone tissue can be successfully formed in vivo. Copyright 2007 S. Karger AG, Basel

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Year:  2007        PMID: 17938566     DOI: 10.1159/000109946

Source DB:  PubMed          Journal:  Cells Tissues Organs        ISSN: 1422-6405            Impact factor:   2.481


  14 in total

1.  Collagen-chitosan polymer as a scaffold for the proliferation of human adipose tissue-derived stem cells.

Authors:  Yanxia Zhu; Tianqing Liu; Kedong Song; Bo Jiang; Xuehu Ma; Zhanfeng Cui
Journal:  J Mater Sci Mater Med       Date:  2008-11-20       Impact factor: 3.896

2.  Bone regeneration using a freeze-dried 3D gradient-structured scaffold incorporating OIC-A006-loaded PLGA microspheres based on β-TCP/PLGA.

Authors:  Liulan Lin; Haitao Gao; Yangyang Dong
Journal:  J Mater Sci Mater Med       Date:  2015-01-11       Impact factor: 3.896

3.  Cartilage Regeneration of Adipose-Derived Stem Cells in the TGF-β1-Immobilized PLGA-Gelatin Scaffold.

Authors:  Feng Yin; Junfeng Cai; Wen Zen; Yanhui Wei; Wei Zhou; Feng Yuan; Shree Ram Singh; Yiyong Wei
Journal:  Stem Cell Rev Rep       Date:  2015-06       Impact factor: 5.739

4.  Enhanced bone formation in large segmental radial defects by combining adipose-derived stem cells expressing bone morphogenetic protein 2 with nHA/RHLC/PLA scaffold.

Authors:  Wei Hao; Jinlei Dong; Ming Jiang; Junwei Wu; Fuzhai Cui; Dongsheng Zhou
Journal:  Int Orthop       Date:  2010-02-07       Impact factor: 3.075

5.  The effect of combination therapy on critical-size bone defects using non-activated platelet-rich plasma and adipose-derived stem cells.

Authors:  Woonhyeok Jeong; Young Seok Kim; Tai Suk Roh; Eun Hye Kang; Bok Ki Jung; In Sik Yun
Journal:  Childs Nerv Syst       Date:  2019-03-16       Impact factor: 1.475

6.  Bone morphogenetic protein 9 (BMP9) induces effective bone formation from reversibly immortalized multipotent adipose-derived (iMAD) mesenchymal stem cells.

Authors:  Shun Lu; Jing Wang; Jixing Ye; Yulong Zou; Yunxiao Zhu; Qiang Wei; Xin Wang; Shengli Tang; Hao Liu; Jiaming Fan; Fugui Zhang; Evan M Farina; Maryam M Mohammed; Dongzhe Song; Junyi Liao; Jiayi Huang; Dan Guo; Minpeng Lu; Feng Liu; Jianxiang Liu; Li Li; Chao Ma; Xue Hu; Michael J Lee; Russell R Reid; Guillermo A Ameer; Dongsheng Zhou; Tongchuan He
Journal:  Am J Transl Res       Date:  2016-09-15       Impact factor: 4.060

7.  Beta-tricalcium phosphate 3D scaffold promote alone osteogenic differentiation of human adipose stem cells: in vitro study.

Authors:  Gerardo Marino; Francesco Rosso; Gennaro Cafiero; Carla Tortora; Marco Moraci; Manlio Barbarisi; Alfonso Barbarisi
Journal:  J Mater Sci Mater Med       Date:  2009-08-05       Impact factor: 3.896

8.  Bone grafts engineered from human adipose-derived stem cells in perfusion bioreactor culture.

Authors:  Mirjam Fröhlich; Warren L Grayson; Darja Marolt; Jeffrey M Gimble; Nevenka Kregar-Velikonja; Gordana Vunjak-Novakovic
Journal:  Tissue Eng Part A       Date:  2010-01       Impact factor: 3.845

9.  Fabrication and characterization of a rapid prototyped tissue engineering scaffold with embedded multicomponent matrix for controlled drug release.

Authors:  Muwan Chen; Dang Q S Le; San Hein; Pengcheng Li; Jens V Nygaard; Moustapha Kassem; Jørgen Kjems; Flemming Besenbacher; Cody Bünger
Journal:  Int J Nanomedicine       Date:  2012-08-03

10.  Adenovirus-mediated transfer of VEGF into marrow stromal cells combined with PLGA/TCP scaffold increases vascularization and promotes bone repair in vivo.

Authors:  Chunguang Duan; Jian Liu; Zhi Yuan; Guolin Meng; Xiumei Yang; Shuaijun Jia; Jinkang Zhang; Shi Chen
Journal:  Arch Med Sci       Date:  2012-10-08       Impact factor: 3.318

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