Co-extrusion of biocompatible polymers for scaffolds with co-continuous morphology

被引:85
作者
Washburn, NR [1 ]
Simon, CG [1 ]
Tona, A [1 ]
Elgendy, HM [1 ]
Karim, A [1 ]
Amis, EJ [1 ]
机构
[1] Natl Inst Stand & Technol, Div Polymers, Gaithersburg, MD 20899 USA
来源
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH | 2002年 / 60卷 / 01期
关键词
polymers scaffolds; polymer processing; tissue; engineering; bone replacement materials; biocompatibility;
D O I
10.1002/jbm.10049
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A methodology for the preparation of porous scaffolds for tissue engineering using co-extrusion is presented. Poly (epsilon-caprolactone) is blended with poly(ethylene oxide) in a twin-screw extruder to form a two-phase material with micron-sized domains. Selective dissolution of the poly(ethylene oxide) with water results in a porous material. A range of blend volume fractions results in co-continuous networks of polymer and void spaces. Annealing studies demonstrate that the characteristic pore size may be increased to larger than 100 mum. The mechanical properties of the scaffolds are characterized by a compressive modulus on the order of 1 MPa at low strains but displaying a marked strain-dependence. The results of osteoblast seeding suggest it is possible to use co-extrusion to prepare polymer scaffolds without the introduction of toxic contaminants. Polymer co-extrusion is amenable to both laboratory- and industrial-scale production of scaffolds fur tissue engineering and only requires rheological characterization of the blend components. This method leads to scaffolds that have continuous void space and controlled characteristic length scales without the use of potentially toxic organic solvents. (C) 2002 John Wiley & Sons, Inc.* J Biomed Mater Res 60: 20-29, 2002.
引用
收藏
页码:20 / 29
页数:10
相关论文
共 47 条
[21]  
2-7
[22]   OSTEOBLAST FUNCTION ON SYNTHETIC BIODEGRADABLE POLYMERS [J].
ISHAUG, SL ;
YASZEMSKI, MJ ;
BIZIOS, R ;
MIKOS, AG .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1994, 28 (12) :1445-1453
[23]   Three-dimensional culture of rat calvarial osteoblasts in porous biodegradable polymers [J].
Ishaug-Riley, SL ;
Crane-Kruger, GM ;
Yaszemski, MJ ;
Mikos, AG .
BIOMATERIALS, 1998, 19 (15) :1405-1412
[24]   PHASE CONTINUITY AND INVERSION IN POLYMER BLENDS AND SIMULTANEOUS INTERPENETRATING NETWORKS [J].
JORDHAMO, GM ;
MANSON, JA ;
SPERLING, LH .
POLYMER ENGINEERING AND SCIENCE, 1986, 26 (08) :517-524
[25]   Tissue engineering: The challenges ahead [J].
Langer, RS ;
Vacanti, JP .
SCIENTIFIC AMERICAN, 1999, 280 (04) :86-89
[26]   Evolution of a dispersed morphology from a co-continuous morphology immiscible polymer blends [J].
Lee, JK ;
Han, CD .
POLYMER, 1999, 40 (10) :2521-2536
[27]  
Macosko C.W., 1994, RHEOLOGY Principles, Measurements and Applications
[28]   Improvement of thermal and mechanical properties by control of morphologies in PES-modified epoxy resins [J].
Mimura, K ;
Ito, H ;
Fujioka, H .
POLYMER, 2000, 41 (12) :4451-4459
[29]   EFFECTS ON INTACT FEMORA OF DOGS OF APPLICATION AND REMOVAL OF METAL PLATES - METABOLIC AND STRUCTURAL STUDY COMPARING STIFFER AND MORE FLEXIBLE PLATES [J].
MOYEN, BJL ;
LAHEY, PJ ;
WEINBERG, EH ;
HARRIS, WH .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1978, 60 (07) :940-947
[30]   High molecular weight poly(L-lactide) and poly(ethylene oxide) blends: Thermal characterization and physical properties [J].
Nijenhuis, AJ ;
Colstee, E ;
Grijpma, DW ;
Pennings, AJ .
POLYMER, 1996, 37 (26) :5849-5857