Mesoscopic spatial designs of nano- and microfiber meshes for tissue-engineering matrix and scaffold based on newly devised multilayering and mixing electrospinning techniques

被引:412
作者
Kidoaki, S [1 ]
Kwon, IK [1 ]
Matsuda, T [1 ]
机构
[1] Kyushu Univ, Grad Sch Med, Div Biomed Engn, Fukuoka 8128582, Japan
关键词
electrospinning; multilayering; mixing; nanofibers; microfibers;
D O I
10.1016/j.biomaterials.2004.01.063
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
To design a mesoscopically ordered structure of the matrices and scaffolds composed of nano- and microscale fiber meshes for artificial and tissue-engineering devices, two new electrospinning techniques are proposed: multilayering electrospinning and mixing electrospinning. First, the following four kinds of component polymers were individually electrospun to determine the conditions for producing stable nano- and microfibers by optimizing the formulation parameters (solvent and polymer concentration) and operation parameters (voltage, air gap, and flow rate) for each polymer: (a) type I collagen, (b) styrenated gelatin (ST-gelatin), (c) segmented polyurethane (SPU), and (d) poly(ethylene oxide). A trilayered electrospun mesh, in which individual fiber meshes (type I collagen, ST-gelatin, and SPU) were deposited layer by layer, was formed by sequential electrospinning; this was clearly visualized by confocal laser scanning microscopy. The mixed electrospun-fiber mesh composed of SPU and PEO was prepared by simultaneous electrospinning on a stainless-steel mandrel with high-speed rotation and traverse movement. A bilayered tubular construct composed of a thick SPU microfiber mesh as an outer layer and a thin type I collagen nanofiber mesh as an inner layer was fabricated as a prototype scaffold of artificial grafts, and visualized by scanning electron microscopy. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:37 / 46
页数:10
相关论文
共 27 条
  • [1] ANNIS D, 1978, T AM SOC ART INT ORG, V24, P209
  • [2] Tailoring tissue engineering scaffolds using electrostatic processing techniques: A study of poly(glycolic acid) electrospinning
    Boland, ED
    Wnek, GE
    Simpson, DG
    Pawlowski, KJ
    Bowlin, GL
    [J]. JOURNAL OF MACROMOLECULAR SCIENCE-PURE AND APPLIED CHEMISTRY, 2001, 38 (12): : 1231 - 1243
  • [3] ELECTROSTATIC SPRAYING OF LIQUIDS - MAIN FUNCTIONING MODES
    CLOUPEAU, M
    PRUNETFOCH, B
    [J]. JOURNAL OF ELECTROSTATICS, 1990, 25 (02) : 165 - 184
  • [4] Electrospinning of polymer nanofibers with specific surface chemistry
    Deitzel, JM
    Kosik, W
    McKnight, SH
    Tan, NCB
    DeSimone, JM
    Crette, S
    [J]. POLYMER, 2002, 43 (03) : 1025 - 1029
  • [5] DOSHI J, 1995, J ELECTROSTAT, V35, P151, DOI 10.1016/0304-3886(95)00041-8
  • [6] FORMHALS A, 1929, Patent No. 364780
  • [7] Three-dimensional extracellular matrix textured biomaterials
    Goodman, SL
    Sims, PA
    Albrecht, RM
    [J]. BIOMATERIALS, 1996, 17 (21) : 2087 - 2095
  • [8] Electrospinning and electrically forced jets. I. Stability theory
    Hohman, MM
    Shin, M
    Rutledge, G
    Brenner, MP
    [J]. PHYSICS OF FLUIDS, 2001, 13 (08) : 2201 - 2220
  • [9] Electrospinning and electrically forced jets. II. Applications
    Hohman, MM
    Shin, M
    Rutledge, G
    Brenner, MP
    [J]. PHYSICS OF FLUIDS, 2001, 13 (08) : 2221 - 2236
  • [10] THE ELASTIC PROPERTIES OF A POLYURETHANE ARTERIAL PROSTHESIS
    HOW, TV
    CLARKE, RM
    [J]. JOURNAL OF BIOMECHANICS, 1984, 17 (08) : 597 - +