Control of degradation rate and hydrophilicity in electrospun non-woven poly(D,L-lactide) nanofiber scaffolds for biomedical applications

被引:494
作者
Kim, K
Yu, M
Zong, XH
Chiu, J
Fang, DF
Seo, YS
Hsiao, BS [1 ]
Chu, B
Hadjiargyrou, M
机构
[1] SUNY Stony Brook, Dept Chem, Stony Brook, NY 11794 USA
[2] SUNY Stony Brook, Dept Mat Sci & Engn, Stony Brook, NY 11794 USA
[3] SUNY Stony Brook, Dept Biomed Engn, Stony Brook, NY 11794 USA
[4] Stonybrook Technol & Appl Res Inc, Stony Brook, NY 11790 USA
关键词
electrospinning; poly(lactide); nanofiber; degradation; hydrophobicity; cell scaffolds;
D O I
10.1016/S0142-9612(03)00407-1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Typical properties of poly(D,L-lactide) (PLA)-based scaffolds (films and foams), such as long degradation time, mechanical stiffness and hydrophobicity, are sometimes not suitable for biomedical applications. These properties can be substantially altered by electrospinning of PLA blends with miscible poly(lactide-co-glycolide) (PLGA) random copolymers, poly(lactide-b-ethylene glycol-b-lactide) (PLA-b-PEG-b-PLA) triblock copolymers, and a lactide (used as a hydrolytic catalyst). Electrospun scaffolds based on the multi-component PLA blends, comprised of randomly interconnected webs of sub-micron sized fibers, have a bulk density of 0.3-0.4 g/cm(3). In this study, the concentration effects of PLA-b-PEG-b-PLA triblock copolymer and lactide on the cell proliferation and the hydrophilicity of electrospun scaffolds were investigated. Based on in vitro degradation study, we found that the electrospun scaffold having PLA (40 wt%), PLGA (LA/GA = 50/50, 25 wt%), PLA-b-PEG-b-PLA (20 wt%), and lactide (15 wt%) underwent a rapid weight loss of similar to 65% in 7 weeks. The hydrophobicity of this membrane, as determined by contact angle measurements in a cell buffer solution, decreased by similar to 50% from 105degrees (of an electrospun PLA scaffold) to 50degrees. The selection of suitable chemical compositions in conjunction with the non-invasive electrospinning process is useful in the production of a new kind of biodegradable scaffolds suitable for different biomedical applications such as cell storage and delivery as well as prevention of post-surgical adhesion because of their porosity, mechanical flexibility and tunable biodegradability. (C) 2003 Elsevier Ltd. All rights reserved.
引用
收藏
页码:4977 / 4985
页数:9
相关论文
共 40 条
[1]  
Bognitzki M, 2000, ADV MATER, V12, P637, DOI 10.1002/(SICI)1521-4095(200005)12:9<637::AID-ADMA637>3.0.CO
[2]  
2-W
[3]   Tailoring tissue engineering scaffolds using electrostatic processing techniques: A study of poly(glycolic acid) electrospinning [J].
Boland, ED ;
Wnek, GE ;
Simpson, DG ;
Pawlowski, KJ ;
Bowlin, GL .
JOURNAL OF MACROMOLECULAR SCIENCE-PURE AND APPLIED CHEMISTRY, 2001, 38 (12) :1231-1243
[4]   Processing and microstructural characterization of porous biocompatible protein polymer thin films [J].
Buchko, CJ ;
Chen, LC ;
Shen, Y ;
Martin, DC .
POLYMER, 1999, 40 (26) :7397-7407
[5]  
CHU B, 2002, Patent No. 0292888
[6]  
DOSHI J, 1995, J ELECTROSTAT, V35, P151, DOI 10.1016/0304-3886(95)00041-8
[7]   DNA fibers by electrospinning [J].
Fang, X ;
Reneker, DH .
JOURNAL OF MACROMOLECULAR SCIENCE-PHYSICS, 1997, B36 (02) :169-173
[8]   Beaded nanofibers formed during electrospinning [J].
Fong, H ;
Chun, I ;
Reneker, DH .
POLYMER, 1999, 40 (16) :4585-4592
[9]   BIODEGRADABLE POLYMERS FOR USE IN SURGERY - POLYGLYCOLIC-POLY(ACTIC ACID) HOMOPOLYMERS AND COPOLYMERS .1. [J].
GILDING, DK ;
REED, AM .
POLYMER, 1979, 20 (12) :1459-1464
[10]   Bone regeneration in segmental defects with resorbable polymeric membranes:: IV.: Does the polymer chemical composition affect the healing process? [J].
Gogolewski, S ;
Pineda, L ;
Büsing, CM .
BIOMATERIALS, 2000, 21 (24) :2513-2520