Three-dimensional bioassembly tool for generating viable tissue-engineered constructs

被引:208
|
作者
Smith, CM [1 ]
Stone, AL [1 ]
Parkhill, RL [1 ]
Stewart, RL [1 ]
Simpkins, MW [1 ]
Kachurin, AM [1 ]
Warren, WL [1 ]
Williams, SK [1 ]
机构
[1] Sciperio, Stillwater, OK USA
来源
TISSUE ENGINEERING | 2004年 / 10卷 / 9-10期
关键词
D O I
10.1089/1076327042500274
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The primary emphasis of tissue engineering is the design and fabrication of constructs for the replacement of nonfunctional tissue. Because tissue represents a highly organized interplay of cells and extracellular matrix, the fabrication of replacement tissue should mimic this spatial organization. This report details studies evaluating the use of a three-dimensional, direct-write cell deposition system to construct spatially organized viable structures. A direct-write bioassembly system was designed and fabricated to permit layer-by-layer placement of cells and extracellular matrix on a variety of material substrates. Human fibroblasts suspended in polyoxyethylene/polyoxypropylene were coextruded through a positive displacement pen delivery onto a polystyrene slide. After deposition, approximately 60% of the fibroblasts remained viable. Bovine aortic endothelial cells (BAECs) suspended in soluble collagen type I were coextruded via microdispense pen delivery onto the hydrophilic side of flat sheets of polyethylene terephthalate. After deposition with a 25-gauge tip, approximately 86% of the BAECs were viable. When maintained in culture for up to 35 days, the constructs remained viable and maintained their original spatial organization. These results indicate the potential for utilizing a direct-write, three-dimensional bioassembly tool to create viable, patterned tissue-engineered constructs.
引用
收藏
页码:1566 / 1576
页数:11
相关论文
共 50 条
  • [31] A Perfusion Bioreactor for Making Tissue-Engineered Constructs
    Sevastianov V.I.
    Basok Y.B.
    Grigoryev A.M.
    Kirsanova L.A.
    Vasilets V.N.
    Biomedical Engineering, 2017, 51 (3) : 162 - 165
  • [32] Fabrication of viable tissue-engineered constructs with 3D cell-assembly technique
    Yan, YN
    Wang, XH
    Pan, YQ
    Liu, HX
    Cheng, J
    Xiong, Z
    Lin, F
    Wu, RD
    Zhang, RJ
    Lu, QP
    BIOMATERIALS, 2005, 26 (29) : 5864 - 5871
  • [33] Tissue-Engineered Cardiac Constructs for Cardiac Repair
    Miyagawa, Shigeru
    Roth, Matthias
    Saito, Atsuhiro
    Sawa, Yoshiki
    Kostin, Sawa
    ANNALS OF THORACIC SURGERY, 2011, 91 (01): : 320 - 329
  • [34] Vascularization of tissue-engineered skeletal muscle constructs
    Gholobova, D.
    Terrie, L.
    Gerard, M.
    Declercq, H.
    Thorrez, L.
    BIOMATERIALS, 2020, 235
  • [35] Cryopreservation of Cell/Scaffold Tissue-Engineered Constructs
    Costa, Pedro F.
    Dias, Ana F.
    Reis, Rui L.
    Gomes, Manuela E.
    TISSUE ENGINEERING PART C-METHODS, 2012, 18 (11) : 852 - 858
  • [36] MR elastography monitoring of tissue-engineered constructs
    Othman, Shadi F.
    Curtis, Evan T.
    Plautz, Sarah A.
    Pannier, Angela K.
    Butler, Stephanie D.
    Xu, Huihui
    NMR IN BIOMEDICINE, 2012, 25 (03) : 452 - 463
  • [37] Trehalose glycopolymers for cryopreservation of tissue-engineered constructs
    Wang, Jin
    Shi, Xiaodi
    Xiong, Minghao
    Tan, Wen-Song
    Cai, Haibo
    CRYOBIOLOGY, 2022, 104 : 47 - 55
  • [38] Vitrification as a prospect for cryopreservation of tissue-engineered constructs
    Kuleshova, L. L.
    Gouk, S. S.
    Hutmacher, D. W.
    BIOMATERIALS, 2007, 28 (09) : 1585 - 1596
  • [39] Monitoring of metabolite gradients in tissue-engineered constructs
    Boubriak, Olga A.
    Urban, Jill P. G.
    Cui, Zhanfeng
    JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2006, 3 (10) : 637 - 648
  • [40] Study of spinal cord cells interactions in a tissue-engineered three-dimensional in vitro model
    Beaulieu, Marie-Michele
    Grenier, Myriam
    Berthod, Francois
    FASEB JOURNAL, 2009, 23