Endothelial cell scaffolds generated by 3D direct writing of biodegradable polymer microfibers

被引:25
作者
Berry, Scott M. [2 ]
Warren, Sean P. [1 ]
Hilgart, DeVonnah A. [1 ]
Schworer, Adam T. [1 ]
Pabba, Santosh [3 ,4 ]
Gobin, Andrea S. [1 ]
Cohn, Robert W. [3 ,4 ]
Keynton, Robert S. [1 ,2 ,3 ,4 ]
机构
[1] Univ Louisville, Dept Bioengn, Louisville, KY 40292 USA
[2] Univ Louisville, Dept Mech Engn, Louisville, KY 40292 USA
[3] Univ Louisville, Elect Opt Res Inst, Louisville, KY 40292 USA
[4] Univ Louisville, Nanotechnol Ctr, Louisville, KY 40292 USA
基金
美国国家航空航天局; 美国国家科学基金会;
关键词
Direct-write; Endothelial cell scaffold; Microfibers; Biodegradable materials; Tissue engineering; SOFT LITHOGRAPHY; FIBERS; ANGIOGENESIS; FABRICATION; DEPOSITION; BEHAVIOR; COLLAGEN; GROWTH;
D O I
10.1016/j.biomaterials.2010.11.023
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The engineering of large (thickness > 100 mu m) tissues requires a microvascular network to supply nutrients and remove waste. To produce microvasculature in vitro, a scaffold is required to mechanically support and stimulate endothelial cell (EC) adhesion and growth. Scaffolds for ECs are currently produced by patterning polymers or other biomaterials into configurations which often possess isotropic morphologies such as porous films and fibrous mats. We propose a new "direct-write" process for fabricating scaffolds composed of suspended polymer microfibers that are precisely oriented in 3D, providing directional architecture for selectively guiding cell growth along a desired pathway. The diameters of the fibers produced with this process were predictably and repeatably controlled through modulation of the system parameters, enabling production of fibers with microvascular-scale diameters (5-20 mu m) from a variety of biodegradable polymers. These scaffolds were successfully seeded with ECs, which conformed to the geometry of the fibers and proliferated over the course of one week. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1872 / 1879
页数:8
相关论文
共 34 条
  • [1] Abramoff M.D., 2004, Biophotonics International, V11, P36
  • [2] Characterization of micromanipulator-controlled dry spinning of micro- and sub-microscale polymer fibers
    Berry, Scott M.
    Harfenist, Steven A.
    Cohn, Robert W.
    Keynton, Robert S.
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2006, 16 (09) : 1825 - 1832
  • [3] Bicknell R., 1996, ENDOTHELIAL CELL CUL
  • [4] Protein patterning
    Blawas, AS
    Reichert, WM
    [J]. BIOMATERIALS, 1998, 19 (7-9) : 595 - 609
  • [5] Bronzino J.D., 2000, The biomedical engineering handbook, V2nd
  • [6] Patterned melt electrospun substrates for tissue engineering
    Dalton, Paul D.
    Joergensen, Nanna T.
    Groll, Juergen
    Moeller, Martin
    [J]. BIOMEDICAL MATERIALS, 2008, 3 (03)
  • [7] Dike LE, 1999, IN VITRO CELL DEV-AN, V35, P441
  • [8] Combining electrospun scaffolds with electrosprayed hydrogels leads to three-dimensional cellularization of hybrid constructs
    Ekaputra, Andrew K.
    Prestwich, Glenn D.
    Cool, Simon M.
    Hutmacher, Dietmar W.
    [J]. BIOMACROMOLECULES, 2008, 9 (08) : 2097 - 2103
  • [9] Farnia SMF, 1999, J APPL POLYM SCI, V73, P633
  • [10] Bioactive polymer fibers to direct endothelial cell growth in a three-dimensional environment
    Hadjizadeh, Afra
    Doillon, Charles J.
    Vermette, Patrick
    [J]. BIOMACROMOLECULES, 2007, 8 (03) : 864 - 873