Stem cell- and scaffold-based tissue engineering approaches to osteochondral regenerative medicine

被引:219
作者
Sundelacruz, Sarah [1 ]
Kaplan, David L. [1 ]
机构
[1] Tufts Univ, Dept Biomed Engn, Medford, MA 02155 USA
关键词
Tissue engineering; Regenerative medicine; Osteochondral; Bone development; Bone healing; BONE MORPHOGENETIC PROTEIN-2; MARROW STROMAL CELLS; BMP-INDUCED OSTEOGENESIS; N-CADHERIN EXPRESSION; IN-VITRO; SILK FIBROIN; BIOMATERIAL SCAFFOLDS; MOLECULAR ASPECTS; FRACTURE REPAIR; GENE-EXPRESSION;
D O I
10.1016/j.semcdb.2009.03.017
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
In osteochondral tissue engineering, cell recruitment, proliferation, differentiation, and patterning are critical for forming biologically and structurally viable constructs for repair of damaged or diseased tissue. However, since constructs prepared ex vivo lack the multitude of cues present in the in vivo microenvironment, cells often need to be supplied with external biological and physical stimuli to coax them toward targeted tissue functions. To determine which stimuli to present to cells, bioengineering strategies can benefit significantly from endogenous examples of skeletogenesis. As an example of developmental skeletogenesis, the developing limb bud serves as an excellent model system in which to study how osteochondral structures form from undifferentiated precursor cells. Alongside skeletal formation during embryogenesis, bone also possesses innate regenerative capacity, displaying remarkable ability to heal after damage. Bone fracture healing shares many features with bone development, driving the hypothesis that the regenerative process generally recapitulates development. Similarities and differences between the two modes of bone formation may offer insight into the special requirements for healing damaged or diseased bone. Thus, endogenous fracture healing, as an example of regenerative skeletogenesis, may also inform bioengineering strategies. In this review, we summarize the key cellular events involving stem and progenitor cells in developmental and regenerative skeletogenesis, and discuss in parallel the corresponding cell- and scaffold-based strategies that tissue engineers employ to recapitulate these events in vitro. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:646 / 655
页数:10
相关论文
共 115 条
[91]   Bone remodeling during fracture repair: The cellular picture [J].
Schindeler, Aaron ;
McDonald, Michelle M. ;
Bokko, Paul ;
Little, David G. .
SEMINARS IN CELL & DEVELOPMENTAL BIOLOGY, 2008, 19 (05) :459-466
[92]   Dedifferentiation-associated changes in morphology and gene expression in primary human articular chondrocytes in cell culture [J].
Schnabel, M ;
Marlovits, S ;
Eckhoff, G ;
Fichtel, I ;
Gotzen, L ;
Vécsei, V ;
Schlegel, J .
OSTEOARTHRITIS AND CARTILAGE, 2002, 10 (01) :62-70
[93]  
Shum Lillian, 2003, Birth Defects Research, V69, P102, DOI 10.1002/bdrc.10012
[94]  
Sofia S, 2001, J BIOMED MATER RES, V54, P139, DOI 10.1002/1097-4636(200101)54:1<139::AID-JBM17>3.0.CO
[95]  
2-7
[96]   Stretching the Limits: Stem Cells in Regeneration Science [J].
Stocum, David L. ;
Zupanc, Guenther K. H. .
DEVELOPMENTAL DYNAMICS, 2008, 237 (12) :3648-3671
[97]   Effect of the fiber diameter and porosity of non-woven PET fabrics on the osteogenic differentiation of mesenchymal stem cells [J].
Takahashi, Y ;
Tabata, Y .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2004, 15 (01) :41-57
[98]   N-CAM AND N-CADHERIN EXPRESSION DURING IN-VITRO CHONDROGENESIS [J].
TAVELLA, S ;
RAFFO, P ;
TACCHETTI, C ;
CANCEDDA, R ;
CASTAGNOLA, P .
EXPERIMENTAL CELL RESEARCH, 1994, 215 (02) :354-362
[99]   Chondrocyte hypertrophy can be induced by a cryptic sequence of type II collagen and is accompanied by the induction of MMP-13 and collagenase activity: Implications for development and arthritis [J].
Tchetina, Elena V. ;
Kobayashi, Masahiko ;
Yasuda, Tadashi ;
Meijers, Tineke ;
Pidoux, Isabelle ;
Poole, A. Robin .
MATRIX BIOLOGY, 2007, 26 (04) :247-258
[100]   Adult bone marrow-derived stem cells for organ regeneration and repair [J].
Toegel, Florian ;
Westenfelder, Christof .
DEVELOPMENTAL DYNAMICS, 2007, 236 (12) :3321-3331