Growth factor-delivery systems for tissue engineering: a materials perspective

被引:105
作者
Vasita, Rajesh [1 ]
Katti, Dhirendra S. [1 ]
机构
[1] Indian Inst Technol, Dept Biol Sci & Bioengn, Kanpur 208016, Uttar Pradesh, India
关键词
biomaterials; degradable polymers; growth factors; growth factor delivery systems; scaffolds; tissue engineering;
D O I
10.1586/17434440.3.1.29
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The transplantation of organs, their surgical reconstruction or implantation of synthetic devices that can perform the function of organs, are the currently available methods for treating loss of tissue/organs in humans. However, the limitations associated with these techniques have led to the development of tissue engineering. One of the primary goals of tissue engineering is to provide growth factor delivery systems that can induce desired cell responses both in vitro and in vivo, in order to cause accelerated tissue regeneration. To make growth factors a more therapeutically viable alternative for the treatment of chronic degenerative diseases, a wide range of natural and synthetic materials have been employed as vehicles for their controlled delivery. The choice of material and design of the carrier device influence the mode of immobilization of growth factors on the scaffolds and their local/systemic administration. From a tissue engineer's perspective, materials could be used for designing scaffolds as well as for delivering single or multiple growth factors. Therefore, this review discusses growth factor delivery systems, with particular reference to carrier-based growth factor delivery systems with a focus on materials.
引用
收藏
页码:29 / 47
页数:19
相关论文
共 114 条
[31]  
HUANG Y, 2005, IN PRESS BIOTECHNOL
[32]  
Ishihara M, 2000, J BIOMED MATER RES, V50, P144, DOI 10.1002/(SICI)1097-4636(200005)50:2<144::AID-JBM8>3.3.CO
[33]  
2-J
[34]   Combined chondrocyte-copolymer implantation with slow release of basic fibroblast growth factor for tissue engineering an auricular cartilage construct [J].
Isogai, N ;
Morotomi, T ;
Hayakawa, S ;
Munakata, H ;
Tabata, Y ;
Ikada, Y ;
Kamiishi, H .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2005, 74A (03) :408-418
[35]   Gelatin sheet incorporating basic fibroblast growth factor enhances sternal healing after harvesting bilateral internal thoracic arteries [J].
Iwakura, A ;
Tabata, Y ;
Koyama, T ;
Doi, K ;
Nishimura, K ;
Kataoka, K ;
Fujita, M ;
Komeda, M .
JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2003, 126 (04) :1113-1120
[36]   Gene delivery from polymer scaffolds for tissue engineering [J].
Jang, JH ;
Houchin, TL ;
Shea, LD .
EXPERT REVIEW OF MEDICAL DEVICES, 2004, 1 (01) :127-138
[37]   Engineering of tooth-supporting structures by delivery of PDGF gene therapy vectors [J].
Jin, QM ;
Anusaksathien, O ;
Webb, SA ;
Printz, MA ;
Giannobile, WV .
MOLECULAR THERAPY, 2004, 9 (04) :519-526
[38]   Potentiation of the activity of bone morphogenetic protein-2 in bone regeneration by a PLA-PEG/hydroxyapatite composite [J].
Kaito, T ;
Myoui, A ;
Takaoka, K ;
Saito, N ;
Nishikawa, M ;
Tamai, N ;
Ohgushi, H ;
Yoshikawa, H .
BIOMATERIALS, 2005, 26 (01) :73-79
[39]   Collagenous matrices as release carriers of exogenous growth factors [J].
Kanematsu, A ;
Yamamoto, S ;
Ozeki, M ;
Noguchi, T ;
Kanatani, I ;
Ogawa, O ;
Tabata, Y .
BIOMATERIALS, 2004, 25 (18) :4513-4520
[40]   Type I collagen can function as a reservoir of basic fibroblast growth factor [J].
Kanematsu, A ;
Marui, A ;
Yamamoto, S ;
Ozeki, M ;
Hirano, Y ;
Yamamoto, M ;
Ogawa, O ;
Komeda, M ;
Tabata, Y .
JOURNAL OF CONTROLLED RELEASE, 2004, 99 (02) :281-292