Biodegradable polymers applied in tissue engineering research: a review

被引:424
作者
Martina, Monique [1 ]
Hutmacher, Dietmar W. [1 ]
机构
[1] Natl Univ Singapore, Yong Loo Lin Sch Med, Fac Engn, Div Bioengn,Dept Orthopaed Surg, Singapore 119260, Singapore
关键词
scaffolds; biodegradable polymers; tissue engineering; matrices;
D O I
10.1002/pi.2108
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Typical applications and research areas of polymeric biomaterials include tissue replacement, tissue augmentation, tissue support, and drug delivery. In many cases the body needs only the temporary presence of a device/biomaterial, in which instance biodegradable and certain partially biodegradable polymeric materials are better alternatives than biostable ones. Recent treatment concepts based on scaffold-based tissue engineering principles differ from standard tissue replacement and drug therapies as the engineered tissue aims not only to repair but also regenerate the target tissue. Cells have been cultured outside the body for many years; however, it has only recently become possible for scientists and engineers to grow complex three-dimensional tissue grafts to meet clinical needs. New generations of scaffolds based on synthetic and natural polymers are being developed and evaluated at a rapid pace, aimed at mimicking the structural characteristics of natural extracellular matrix. This review focuses on scaffolds made of more recently developed synthetic polymers for tissue engineering applications. Currently, the design and fabrication of biodegradable synthetic scaffolds is driven by four material categories: (i) common clinically established polymers, including polyglycolide, polylactides, polycaprolactone; (ii) novel di- and tri-block polymers; (iii) newly synthesized or studied polymeric biomaterials, such as polyorthoester, polyanhydrides, polyhydroxyalkanoate, polypyrroles, poly(ether ester amide)s, elastic shape-memory polymers; and (iv) biomimetic materials, supramolecular polymers formed by self-assembly, and matrices presenting distinctive or a variety of biochemical cues. This paper aims to review the latest developments from a scaffold material perspective, mainly pertaining to categories (ii) and (iii) listed above. (c) 2006 Society of Chemical Industry.
引用
收藏
页码:145 / 157
页数:13
相关论文
共 49 条
[11]   In vitro characterization of polyorthoester microparticles containing bupivacaine [J].
Deng, JS ;
Li, L ;
Tian, YQ ;
Ginsburg, E ;
Widman, M ;
Myers, A .
PHARMACEUTICAL DEVELOPMENT AND TECHNOLOGY, 2003, 8 (01) :31-38
[12]   Poly(ether ester amide)s for tissue engineering [J].
Deschamps, AA ;
van Apeldoorn, AA ;
de Bruijn, JD ;
Grijpma, DW ;
Feijen, J .
BIOMATERIALS, 2003, 24 (15) :2643-2652
[13]   Chitosan: A versatile biopolymer for orthopaedic tissue-engineering [J].
Di Martino, A ;
Sittinger, M ;
Risbud, MV .
BIOMATERIALS, 2005, 26 (30) :5983-5990
[14]   Study of a (trimethylenecarbonate-co-ε-caprolactone) polymer -: Part 2:: in vitro cytocompatibility analysis and in vivo ED1 cell response of a new nerve guide [J].
Fabre, T ;
Schappacher, M ;
Bareille, R ;
Dupuy, B ;
Soum, A ;
Bertrand-Barat, J ;
Baquey, C .
BIOMATERIALS, 2001, 22 (22) :2951-2958
[15]   Novel agmatine-containing poly(amidoamine) hydrogels as scaffolds for tissue engineering [J].
Ferruti, P ;
Bianchi, S ;
Ranucci, E ;
Chiellini, F ;
Piras, AM .
BIOMACROMOLECULES, 2005, 6 (04) :2229-2235
[16]   Novel poly(amido-amine)-based hydrogels as scaffolds for tissue engineering [J].
Ferruti, P ;
Bianchi, S ;
Ranucci, E ;
Chiellini, F ;
Caruso, V .
MACROMOLECULAR BIOSCIENCE, 2005, 5 (07) :613-622
[17]   Endothelialized microvasculature based on a biodegradable elastomer [J].
Fidkowski, C ;
Kaazempur-Mofrad, MR ;
Borenstein, J ;
Vacanti, JP ;
Langer, R ;
Wang, YD .
TISSUE ENGINEERING, 2005, 11 (1-2) :302-309
[18]   Fabrication and biocompatibility of polypyrrole implants suitable for neural prosthetics [J].
George, PM ;
Lyckman, AW ;
LaVan, DA ;
Hegde, A ;
Leung, Y ;
Avasare, R ;
Testa, C ;
Alexander, PM ;
Langer, R ;
Sur, M .
BIOMATERIALS, 2005, 26 (17) :3511-3519
[19]   Low temperature formation of hydroxyapatite-poly(alkyl oxybenzoate)phosphazene composites for biomedical applications [J].
Greish, YE ;
Bender, JD ;
Lakshmi, S ;
Brown, PW ;
Allcock, HR ;
Laurencin, CT .
BIOMATERIALS, 2005, 26 (01) :1-9
[20]   Preparation of biodegradable networks by photo-crosslinking lactide, ε-caprolactone and trimethylene carbonate-based oligomers functionalized with fumaric acid monoethyl ester [J].
Grijpma, DW ;
Hou, QP ;
Feijen, J .
BIOMATERIALS, 2005, 26 (16) :2795-2802