Bio rapid prototyping by extruding/aspirating/refilling thermoreversible hydrogel

被引:51
作者
Iwami, K. [1 ]
Noda, T. [1 ]
Ishida, K. [1 ]
Morishima, K. [2 ]
Nakamura, M. [3 ]
Umeda, N. [1 ]
机构
[1] Tokyo Univ Agr & Technol, Dept Mech Syst & Engn, Koganei, Tokyo 1848588, Japan
[2] Tokyo Univ Agr & Technol, Dept Bioapplicat & Syst Engn, Koganei, Tokyo 1848588, Japan
[3] Toyama Univ, Dept Life Sci & Bioengn, Toyama 9308555, Japan
基金
日本学术振兴会;
关键词
CELLS;
D O I
10.1088/1758-5082/2/1/014108
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
This paper reports a method for rapid prototyping of cell tissues, which is based on a system that extrudes, aspirates and refills a mixture of cells and thermoreversible hydrogel as a scaffold. In the extruding mode, a cell-mixed scaffold solution in the sol state is extruded from a cooled micronozzle into a temperature-controlled substrate, which keeps the scaffold in the gel state. In the aspiration mode, the opposite process is performed by Bernoulli suction. In the refilling mode, the solution is extruded into a groove created in the aspiration mode. The minimum width of extruded hydrogel pattern is 114 +/- 15 mu m by employing a nozzle of diameter 100 mu m, and that of aspirated groove was 355 +/- 10 mu m using a 500 mu m-diameter nozzle. Gum arabic is mixed with the scaffold solution to avoid peeling-off of the gel pattern from the substrate. Patterning of Sf-9 cell tissue is demonstrated, and the stability of the patterned cell is investigated. This system offers a procedure for rapid prototyping and local modification of cell scaffolds for tissue engineering.
引用
收藏
页数:5
相关论文
共 12 条
[1]   Taking cell-matrix adhesions to the third dimension [J].
Cukierman, E ;
Pankov, R ;
Stevens, DR ;
Yamada, KM .
SCIENCE, 2001, 294 (5547) :1708-1712
[2]   Hybrid Process for Fabricating 3D Hierarchical Scaffolds Combining Rapid Prototyping and Electrospinning [J].
Kim, GeunHyung ;
Son, JoonGon ;
Park, Sua ;
Kim, WanDoo .
MACROMOLECULAR RAPID COMMUNICATIONS, 2008, 29 (19) :1577-1581
[3]   Rapid prototyping of scaffolds derived from thermoreversible hydrogels and tailored for applications in tissue engineering [J].
Landers, R ;
Hübner, U ;
Schmelzeisen, R ;
Mülhaupt, R .
BIOMATERIALS, 2002, 23 (23) :4437-4447
[4]   Fabrication of microstructures in photosensitive biodegradable polymers for tissue engineering applications [J].
Leclerc, E ;
Furukawa, KS ;
Miyata, F ;
Sakai, Y ;
Ushida, T ;
Fujii, T .
BIOMATERIALS, 2004, 25 (19) :4683-4690
[5]   A relationship between extrudate swell ratio and entry stored elastic strain energy during die flow of tyre compounds [J].
Liang, JZ .
POLYMER TESTING, 2004, 23 (04) :441-446
[6]   The growth of tissue engineering [J].
Lysaght, MJ ;
Reyes, J .
TISSUE ENGINEERING, 2001, 7 (05) :485-493
[7]   Biocompatible inkjet printing technique for designed seeding of individual living cells [J].
Nakamura, M ;
Kobayashi, A ;
Takagi, F ;
Watanabe, A ;
Hiruma, Y ;
Ohuchi, K ;
Iwasaki, Y ;
Horie, M ;
Morita, I ;
Takatani, S .
TISSUE ENGINEERING, 2005, 11 (11-12) :1658-1666
[8]   Stem cells for regenerative medicine: advances in the engineering of tissues and organs [J].
Ringe, J ;
Kaps, C ;
Burmester, GR ;
Sittinger, M .
NATURWISSENSCHAFTEN, 2002, 89 (08) :338-351
[9]   Inkjet printing for high-throughput cell patterning [J].
Roth, EA ;
Xu, T ;
Das, M ;
Gregory, C ;
Hickman, JJ ;
Boland, T .
BIOMATERIALS, 2004, 25 (17) :3707-3715
[10]   Exploring and engineering the cell surface interface [J].
Stevens, MM ;
George, JH .
SCIENCE, 2005, 310 (5751) :1135-1138