Studies of P(L/D)LA 96/4 non-woven scaffolds and fibres;: properties, wettability and cell spreading before and after intrusive treatment methods

被引:12
作者
Ella, Ville
Gomes, Manuela E.
Reis, Rui L.
Tormala, Pertti
Kellomaki, Minna
机构
[1] Tampere Univ Technol, Inst Biomat, FIN-33101 Tampere, Finland
[2] Univ Minho, Res Grp Biomat Biodegradables & Biomimet, P-4710057 Braga, Portugal
[3] Univ Minho, Dept Polymer Engn, P-4800058 Guimaraes, Portugal
关键词
D O I
10.1007/s10856-007-0144-z
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Poly(L/D)lactide 96/4 fibres with diameters of 50 and 80 mu m were produced. The smaller diameter fibres were carded and needle punched to form a non-woven mat. Fibres and non-woven mats were hydrolysed for a period of 20 weeks. Fibres and pressed non-woven discs were treated with low-temperature oxygen plasma and alkaline KOH hydrolysis and ethanol washing was used as a reference treatment. The non-wovens lost 50% of their tear strength after 8 weeks in vitro while the fibres still retained 65% tensile strength after 20 weeks. Hydrolysation time in KOH, treatment time and power settings of the oxygen plasma were all directly proportional to the mechanical properties of the fibres. Increasing time (and power) resulted in lower tensile properties. Rapid wetting of the scaffolds was achieved by oxygen plasma, KOH hydrolysation and ethanol washing. Cell culturing using fibroblast cell line was carried out for the treated and non-treated non-woven scaffolds. In terms of adhesion and the spreading of the cells into the scaffold, best results after 3-day culturing were obtained for the oxygen plasma treated scaffolds.
引用
收藏
页码:1253 / 1261
页数:9
相关论文
共 25 条
[1]   Efficacy of glow discharge gas plasma treatment as a surface modification process for three-dimensional poly (D,L-lactide) scaffolds [J].
Chim, H ;
Ong, JL ;
Schantz, JT ;
Hutmacher, DW ;
Agrawal, CM .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2003, 65A (03) :327-335
[2]   Resorbable polymer fibers for ligament augmentation [J].
Dürselen, L ;
Dauner, M ;
Hierlemann, H ;
Planck, H ;
Claes, LE ;
Ignatius, A .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 2001, 58 (06) :666-672
[3]   INVESTIGATION OF STRUCTURE OF SOLUTION GROWN CRYSTALS OF LACTIDE COPOLYMERS BY MEANS OF CHEMICAL-REACTIONS [J].
FISCHER, EW ;
STERZEL, HJ ;
WEGNER, G .
KOLLOID-ZEITSCHRIFT AND ZEITSCHRIFT FUR POLYMERE, 1973, 251 (11) :980-990
[4]   BIODEGRADABLE POLYMER SCAFFOLDS FOR TISSUE ENGINEERING [J].
FREED, LE ;
VUNJAKNOVAKOVIC, G ;
BIRON, RJ ;
EAGLES, DB ;
LESNOY, DC ;
BARLOW, SK ;
LANGER, R .
BIO-TECHNOLOGY, 1994, 12 (07) :689-693
[5]  
Gogolewski S, 1996, J BIOMED MATER RES, V32, P227
[6]   Protein adsorption, attachment, growth and activity of primary rat osteoblasts on polylactide membranes with defined surface characteristics [J].
Gugala, Z ;
Gogolewski, S .
BIOMATERIALS, 2004, 25 (12) :2341-2351
[7]   Synthesis and cell affinity of functionalized poly(L-lactide-co-β-malic acid) with high molecular weight [J].
He, B ;
Wan, YQ ;
Bei, JZ ;
Wang, SG .
BIOMATERIALS, 2004, 25 (22) :5239-5247
[8]   Bioreconstructive joint scaffold implant arthroplasty in metacarpophalangeal joints:: Short-term results of a new treatment concept in rheumatoid arthritis patients [J].
Honkanen, PB ;
Kellomäki, M ;
Lehtimäki, MY ;
Törmälä, P ;
Mäkelä, S ;
Lehto, MUK .
TISSUE ENGINEERING, 2003, 9 (05) :957-965
[9]   Improved cell adhesion by plasma-induced grafting of L-lactide onto polyurethane surface [J].
Hsu, SH ;
Chen, WC .
BIOMATERIALS, 2000, 21 (04) :359-367
[10]   Elastic cartilage engineering using novel scaffold architectures in combination with a biomimetic cell carrier [J].
Hutmacher, DW ;
Ng, KW ;
Kaps, C ;
Sittinger, M ;
Kläring, S .
BIOMATERIALS, 2003, 24 (24) :4445-4458