Preparation and cell affinity of microtubular orientation-structured PLGA(70/30) blood vessel scaffold

被引:112
作者
Hu, Xixue [1 ]
Shen, Hong [1 ]
Yang, Fei [1 ]
Bei, Jianzhong [1 ]
Wang, Shenguo [1 ]
机构
[1] Chinese Acad Sci, Inst Chem, State Key Lab Polymer Phys & Chem, BNLMS, Beijing 100080, Peoples R China
关键词
blood vessel scaffolds; PLGA(70/30); microtubular structure; thermal-induced phase separation (TIPS) technique; surface modification; cell affinity;
D O I
10.1016/j.biomaterials.2008.04.010
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In this study, a kind of microtubular orientation-structured blood vessel mimicking natural structure was fabricated with poly(lactide-co-glycolide)(70/30) (PLGA(70/30)) solutions in 1,4-dioxane by an improved thermal-induced phase separation (TIPS) technique. The effect of main factors of the TIPS technique, such as environmental temperature, temperature gradient and concentration of the polymer solution on the structure and morphology of formed vessel scaffold was investigated. It was observed that the outer-wall of the scaffold became thick obviously and the microtubules neighboring the outer-wall became disordered with environmental temperature increasing. The diameter of microtubules of vessel scaffolds reduced with temperature gradient increasing or concentration of the polymer solution increasing. By controlling parameters of the TIPS, the scaffolds with various morphologies could be manufactured, which had different diameters of microtubules. On the other hand, inner-diameter and outer-diameter of the vessel scaffolds could be controlled by adjusting size of the polyethylene mould. Cell affinity of the scaffolds was tested in vitro by using A10 cell as model cells. Results showed that the cells grew well in the vessel scaffolds which were modified by ammonia plasma treatment and then anchored with collagen. The cells could array along the direction of the microtubules. (c) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3128 / 3136
页数:9
相关论文
共 43 条
[1]  
Ao Q., 2004, ADV BIOMATER, V4, P27
[3]   Preparation and characterisation of poly(lactide-co-glycolide) (PLGA) and PLGA/Bioglass® composite tubular foam scaffolds for tissue engineering applications [J].
Boccaccini, AR ;
Blaker, JJ ;
Maquet, V ;
Day, RM ;
Jérôme, R .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2005, 25 (01) :23-31
[4]   Growing a living blood vessel: Insights for the second hundred years [J].
Brewster, Luke P. ;
Bufallino, Dominick ;
Ucuzian, Areck ;
Greisler, Howard P. .
BIOMATERIALS, 2007, 28 (34) :5028-5032
[5]   The effect of high outflow permeability in asymmetric poly(DL-lactic acid-co-glycolic acid) conduits for peripheral nerve regeneration [J].
Chang, CJ ;
Hsu, SH .
BIOMATERIALS, 2006, 27 (07) :1035-1042
[6]   The evaluation of a small-diameter polysaccharide-based arterial graft in rats [J].
Chaouat, Marc ;
Le Visage, Catherine ;
Autissier, Aude ;
Chaubet, Frederic ;
Letourneur, Didier .
BIOMATERIALS, 2006, 27 (32) :5546-5553
[7]   Tissue engineering: A 21st century solution to surgical reconstruction [J].
Fuchs, JR ;
Nasseri, BA ;
Vacanti, JP .
ANNALS OF THORACIC SURGERY, 2001, 72 (02) :577-591
[8]   Tissue engineering: Key elements and some trends [J].
Gomes, ME ;
Reis, RL .
MACROMOLECULAR BIOSCIENCE, 2004, 4 (08) :737-742
[9]   Fabricating tubular scaffolds with a radial pore size gradient by a spinning technique [J].
Harley, BA ;
Hastings, AZ ;
Yannas, IV ;
Sannino, A .
BIOMATERIALS, 2006, 27 (06) :866-874
[10]  
IKADA Y, 2006, TISSUE ENG FUNDAMENT, V8, P144