Recent Developments in Scaffold-Guided Cartilage Tissue Regeneration

被引:69
作者
Liao, Jinfeng
Shi, Kun
Ding, Qiuxia
Qu, Ying
Luo, Feng
Qian, Zhiyong [1 ]
机构
[1] Sichuan Univ, West China Med Sch, West China Hosp, State Key Lab Biotherapy, Chengdu 610041, Peoples R China
关键词
Scaffold; Nanobiomaterials; Growth Factor; Cartilage Tissue Engineering; MESENCHYMAL STEM-CELLS; FULL-THICKNESS DEFECTS; HUMAN ARTICULAR CHONDROCYTES; POLY(ETHYLENE GLYCOL) HYDROGELS; BONE MORPHOGENETIC PROTEIN-2; COLLAGEN-GAG SCAFFOLDS; GROWTH-FACTOR DELIVERY; STABLE FIBRIN GELS; CROSS-LINKING; IN-VITRO;
D O I
10.1166/jbn.2014.1934
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Articular cartilage repair is one of the most challenging problems in biomedical engineering because the regenerative capacity of cartilage is intrinsically poor. The lack of efficient treatment modalities motivates researches into cartilage tissue engineering such as combing cells, scaffolds and growth factors. In this review we summarize the current developments on scaffold systems available for cartilage tissue engineering. The factors that are critical to successfully design an ideal scaffold for cartilage regeneration were discussed. Then we present examples of selected material types (natural polymers and synthetic polymers) and fabricated forms of the scaffolds (three-dimensional scaffolds, micro-or nanoparticles, and their composites). In the end of review, we conclude with an overview of the ways in which biomedical nanotechnology is widely applied in cartilage tissue engineering, especially in the design of composite scaffolds. This review attempts to provide recommendations on the combination of qualities that would produce the ideal scaffold system for cartilage tissue engineering.
引用
收藏
页码:3085 / 3104
页数:20
相关论文
共 225 条
[1]  
Aeschlimann Daniel, 1996, Seminars in Thrombosis and Hemostasis, V22, P437
[2]  
Ahn JH, 2009, TISSUE ENG PT A, V15, P2595, DOI 10.1089/ten.TEA.2008.0511
[3]   Collagens -: major component of the physiological cartilage matrix, major target of cartilage degeneration, major tool in cartilage repair [J].
Aigner, T ;
Stöve, J .
ADVANCED DRUG DELIVERY REVIEWS, 2003, 55 (12) :1569-1593
[4]   PRELIMINARY-OBSERVATIONS OF CHONDRAL ABRASION IN A CANINE MODEL [J].
ALTMAN, RD ;
KATES, J ;
CHUN, LE ;
DEAN, DD ;
EYRE, D .
ANNALS OF THE RHEUMATIC DISEASES, 1992, 51 (09) :1056-1062
[5]   Chondrocyte survival in articular cartilage THE INFLUENCE OF SUBCHONDRAL BONE IN A BOVINE MODEL [J].
Amin, A. K. ;
Huntley, J. S. ;
Simpson, A. H. R. W. ;
Hall, A. C. .
JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 2009, 91B (05) :691-699
[6]   Engineering of osteochondral tissue with bone marrow mesenchymal progenitor: Cells in a derivatized hyaluronan-gelatin composite sponge [J].
Angele, P ;
Kujat, R ;
Nerlich, M ;
Yoo, J ;
Goldberg, V ;
Johnstone, B .
TISSUE ENGINEERING, 1999, 5 (06) :545-553
[7]   Chitosan-hyaluronan/nano chondroitin sulfate ternary composite sponges for medical use [J].
Anisha, B. S. ;
Sankar, Deepthi ;
Mohandas, Annapoorna ;
Chennazhi, K. P. ;
Nair, Shantikumar V. ;
Jayakumar, R. .
CARBOHYDRATE POLYMERS, 2013, 92 (02) :1470-1476
[8]  
[Anonymous], 2013, J NANOPHARMACEUTICS
[9]   In situ forming degradable networks and their application in tissue engineering and drug delivery [J].
Anseth, KS ;
Metters, AT ;
Bryant, SJ ;
Martens, PJ ;
Elisseeff, JH ;
Bowman, CN .
JOURNAL OF CONTROLLED RELEASE, 2002, 78 (1-3) :199-209
[10]   ENDOSCOPIC TREATMENT OF VESICOURETERAL REFLUX WITH A CHONDROCYTE-ALGINATE SUSPENSION [J].
ATALA, A ;
KIM, W ;
PAIGE, KT ;
VACANTI, CA ;
RETIK, AB .
JOURNAL OF UROLOGY, 1994, 152 (02) :641-643