The effect of implantation on scaffoldless three-dimensional engineered bone constructs

被引:10
|
作者
Smietana, Michael J.
Syed-Picard, Fatima N.
Ma, Jinjin
Kostrominova, Tatiana [2 ]
Arruda, Ellen M. [1 ]
Larkin, Lisa M. [1 ]
机构
[1] Univ Michigan, Program Macromol Sci & Engn, Ann Arbor, MI 48109 USA
[2] Indiana Univ, Sch Med NW, Dept Anat & Cell Biol, Gary, IN 46409 USA
关键词
Tissue engineering; Bone; TISSUE; MINERALIZATION; MATRIX;
D O I
10.1007/s11626-009-9216-3
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Our laboratory has previously developed scaffoldless engineered bone constructs (EBC). Bone marrow stromal cells (BMSC) were harvested from rat femur and cultured in medium that induced osteogenic differentiation. After reaching confluence, the monolayer of cells contracted around two constraint points forming a cylinder. EBCs were placed in small diameter (0.5905 x 0.0625 in.) or large diameter (0.5905 x 0.125 in.) silicone tubing and implanted intramuscularly in the hind limb of a rat. Bone mineral content (BMC) of the EBC was analyzed before implantation and at 1 and 2 mo following implantation and compared to that of native femur bone at different stages of development. Negligible BMC was observed in E-20 femur or EBCs prior to implantation. One-month implantation in both small and large tubing increased BMC in the EBC. BMC of EBC from large tubing was greater than in 14 d rat neonatal femurs, but was 2% and 3% of BMC content in adult bone after 1 and 2 mo of implantation, respectively. Alizarine Red and osteopontin staining of the EBCs before and after implantation confirmed increased bone mineralization in the implanted EBCs. Implanted EBCs also had extensive vascularization. Our data suggest that BMSC can be successfully used for the generation of scaffoldless EBC, and this model can be potentially used for the generation of autologous bone transplants in humans.
引用
收藏
页码:512 / 522
页数:11
相关论文
共 50 条
  • [31] Three-dimensional neuron-muscle constructs with neuromuscular junctions
    Morimoto, Yuya
    Kato-Negishi, Midori
    Onoe, Hiroaki
    Takeuchi, Shoji
    BIOMATERIALS, 2013, 34 (37) : 9413 - 9419
  • [32] Personalized Reconstruction with Three-dimensional Printed Urological Tissue Constructs
    Lee, Sang Jin
    EUROPEAN UROLOGY FOCUS, 2024, 10 (02): : 259 - 262
  • [33] In vitro constitution and in vivo implantation of engineered skin constructs with sweat glands
    Huang, Sha
    Xu, Yongan
    Wu, Changhao
    Sha, Deqian
    Fu, Xiaobing
    BIOMATERIALS, 2010, 31 (21) : 5520 - 5525
  • [34] Human adipose-derived stem cells and three-dimensional scaffold constructs: A review of the biomaterials and models currently used for bone regeneration
    Zanetti, Andrea S.
    Sabliov, Cristina
    Gimble, Jeffrey M.
    Hayes, Daniel J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2013, 101B (01) : 187 - 199
  • [35] Engineering three-dimensional bone macro-tissues by guided fusion of cell spheroids
    Prabhakaran, Vinothini
    Melchels, Ferry P. W.
    Murray, Lyndsay M.
    Paxton, Jennifer Z.
    FRONTIERS IN ENDOCRINOLOGY, 2023, 14
  • [36] In vivo periodontal tissue regeneration by periodontal ligament stem cells and endothelial cells in three-dimensional cell sheet constructs
    Panduwawala, C. P.
    Zhan, X.
    Dissanayaka, W. L.
    Samaranayake, L. P.
    Jin, L.
    Zhang, C.
    JOURNAL OF PERIODONTAL RESEARCH, 2017, 52 (03) : 408 - 418
  • [37] Three-dimensional assembly of tissue-engineered cartilage constructs results in cartilaginous tissue formation without retainment of zonal characteristics
    Schuurman, W.
    Harimulyo, E. B.
    Gawlitta, D.
    Woodfield, T. B. F.
    Dhert, W. J. A.
    van Weeren, P. R.
    Malda, J.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2016, 10 (04) : 315 - 324
  • [38] Tissue-Engineered Three-Dimensional Platforms for Disease Modeling and Therapeutic Development
    Wheeler, Erika E.
    Leach, J. Kent
    TISSUE ENGINEERING PART B-REVIEWS, 2024,
  • [39] Three-Dimensional Printing of Bone Extracellular Matrix for Craniofacial Regeneration
    Hung, Ben P.
    Naved, Bilal A.
    Nyberg, Ethan L.
    Dias, Miguel
    Holmes, Christina A.
    Elisseeff, Jennifer H.
    Dorafshar, Amir H.
    Grayson, Warren L.
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2016, 2 (10): : 1806 - 1816
  • [40] Sound-based assembly of three-dimensional cellularized and acellularized constructs
    Tognato, Riccardo
    Parolini, Romedi
    Jahangir, Shahrbanoo
    Ma, Junxuan
    Florczak, Sammy
    Richards, R. Geoff
    Levato, Riccardo
    Alini, Mauro
    Serra, Tiziano
    MATERIALS TODAY BIO, 2023, 22