Co-culture of bone marrow fibroblasts and endothelial cells on modified polycaprolactone substrates for enhanced potentials in bone tissue engineering

被引:98
作者
Choong, Cleo S. N. [1 ]
Hutmacher, Dietmar W.
Triffitt, James T.
机构
[1] Univ Oxford, Inst Musculoskeletal Sci, Botnar Res Ctr, Oxford OX3 7LD, England
[2] Natl Univ Singapore, Fac Engn, Div Bioengn, Singapore 117548, Singapore
来源
TISSUE ENGINEERING | 2006年 / 12卷 / 09期
关键词
D O I
10.1089/ten.2006.12.2521
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The creation of a vascularized bed makes the survival of seeded cells on 3-dimensional scaffolds much more likely. However, relying purely on random capillary ingrowth into the porous scaffolds from the host may compromise vascularization of a scaffold. One solution is to transplant cells capable of differentiating into new blood vessels into the scaffolds to accelerate the creation of a vascularized scaffold. Because endothelial cells are the key cells involved in blood vessel formation, the present study was designed to investigate the development of a biomaterial surface that supports endothelial cell attachment and proliferation. The subsequent effects of the material surface modifications on the differentiation and proliferation of human bone marrow-derived fibroblasts (HBMFs) when grown in co-culture with a human bone marrow endothelial cell line (HBMEC-60) were studied. Endothelialization studies showed that the gelatin-coated and hydroxyapatite-coated substrates were superior for HBMEC-60 attachment and proliferation to hydrolyzed-only or untreated polycaprolactone substrates. Co-culture studies showed that the presence of the HBMEC-60 specifically enhanced HBMF cell proliferation and differentiation and that this effect was not observed with co-culture with skin fibroblasts. It is concluded that the co-culture of endothelial cells with HBMFs could be a promising culture system for bone tissue engineering applications.
引用
收藏
页码:2521 / 2531
页数:11
相关论文
共 64 条
[1]  
[Anonymous], 2000, BONE ENG
[2]   Osteoblast adhesion on biomaterials [J].
Anselme, K .
BIOMATERIALS, 2000, 21 (07) :667-681
[3]   MIGRATION AND PROLIFERATION OF ENDOTHELIAL CELLS IN PREFORMED AND NEWLY FORMED BLOOD-VESSELS DURING TUMOR ANGIOGENESIS [J].
AUSPRUNK, DH ;
FOLKMAN, J .
MICROVASCULAR RESEARCH, 1977, 14 (01) :53-65
[4]   Direct cell contact influences bone marrow mesenchymal stem cell fate [J].
Ball, SG ;
Shuttleworth, AC ;
Kielty, CM .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2004, 36 (04) :714-727
[5]   An in vitro model of angiogenesis: Basic features [J].
Bishop E.T. ;
Bell G.T. ;
Bloor S. ;
Broom I.J. ;
Hendry N.F.K. ;
Wheatley D.N. .
Angiogenesis, 1999, 3 (4) :335-344
[6]   Electrostatic endothelial cell seeding technique for small-diameter (<6 mm) vascular prostheses:: Feasibility testing [J].
Bowlin, GL ;
Rittgers, SE .
CELL TRANSPLANTATION, 1997, 6 (06) :623-629
[7]   Polycaprolactone scaffolds for bone tissue engineering - Effects of a calcium phosphate coating layer on osteogenic cells [J].
Choong, C ;
Triffitt, JT ;
Cui, ZF .
FOOD AND BIOPRODUCTS PROCESSING, 2004, 82 (C2) :117-125
[8]  
CHOONG C, 2004, WORLD BIOM C SYDN AU
[9]   ROLE OF VASCULAR ENDOTHELIAL-CELLS IN BONE BIOLOGY [J].
COLLINOSDOBY, P .
JOURNAL OF CELLULAR BIOCHEMISTRY, 1994, 55 (03) :304-309
[10]   IMPLANTABLE BIOHYBRID ARTIFICIAL ORGANS [J].
COLTON, CK .
CELL TRANSPLANTATION, 1995, 4 (04) :415-436