Tissue engineering in the twenty-first century

被引:29
作者
Terada, S [1 ]
Sato, M [1 ]
Sevy, A [1 ]
Vacanti, JP [1 ]
机构
[1] Harvard Univ, Dept Surg, Massachusetts Gen Hosp, Sch Med,Ctr Innovat Minimally Invas Therapy, Boston, MA 02114 USA
关键词
cell; culture; biology; polymer; biodegradation; liver; intestine; heart; finger; bone; cartilage; capillary;
D O I
10.3349/ymj.2000.41.6.685
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
In the 20(th) century, free tissue transfers have been successfully introduced using microvascular anastomosis techniques. Transplants not only include whole organs such as the kidney, liver and lung, but also bone, muscle and skin. However, there are a limited number of organs available for transplantation. This leads to the patient not only suffering from the malfunctioning tissue or organ, but also from the psychological trauma of an indefinite waiting period. The rapidly evolving field of tissue engineering is beginning to have an impact on free tissue transfers including organ. Small biopsy specimens can be grown into a large number of cells. These cultured cells can then be seeded onto biodegradable polymers, which serve several purposes. Firstly, the polymers function as a cell delivery system that enables the transplantation of a large numbers of cells into an organism. Secondly, they create a three-dimensional space for cell growth and serve as a template, thereby providing a structure for the extracellular matrix. These approaches have been demonstrated as practical strategies for the reconstruction of many tissues such as the liver, intestines, heart valve leaflets, bone and cartilage.
引用
收藏
页码:685 / 691
页数:7
相关论文
共 23 条
[1]  
BREUER CK, 1999, BIOTECHNOL BIOENG, V50, P562
[2]   Studies of brush border enzymes, basement membrane components, and electrophysiology of tissue-engineered neointestine [J].
Choi, RS ;
Riegler, M ;
Pothoulakis, C ;
Kim, BS ;
Mooney, D ;
Vacanti, M ;
Vacanti, JP .
JOURNAL OF PEDIATRIC SURGERY, 1998, 33 (07) :991-996
[3]  
Griffith LG, 1997, ANN NY ACAD SCI, V831, P382
[4]   Formation of phalanges and small joints by tissue-engineering [J].
Isogai, N ;
Landis, W ;
Kim, TH ;
Gerstenfeld, LC ;
Upton, J ;
Vacanti, JP .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1999, 81A (03) :306-316
[5]   Survival and function of rat hepatocytes cocultured with nonparenchymal cells or sinusoidal endothelial cells on biodegradable polymers under flow conditions [J].
Kaihara, S ;
Kim, S ;
Kim, BS ;
Mooney, DJ ;
Tanaka, K ;
Vacanti, JP .
JOURNAL OF PEDIATRIC SURGERY, 2000, 35 (09) :1287-1290
[6]   End-to-end anastomosis between tissue-engineered intestine and native small bowel [J].
Kaihara, S ;
Kim, S ;
Benvenuto, M ;
Kim, BS ;
Mooney, DJ ;
Tanaka, K ;
Vacanti, JP .
TISSUE ENGINEERING, 1999, 5 (04) :339-346
[7]   Successful anastomosis between tissue-engineered intestine and native small bowel [J].
Kaihara, S ;
Kim, SS ;
Benvenuto, M ;
Choi, R ;
Kim, BS ;
Mooney, D ;
Tanaka, K ;
Vacanti, JP .
TRANSPLANTATION, 1999, 67 (02) :241-245
[8]   Long-term follow-up of tissue-engineered intestine after anastomosis to native small bowel [J].
Kaihara, S ;
Kim, SS ;
Kim, BS ;
Mooney, D ;
Tanaka, K ;
Vacanti, JP .
TRANSPLANTATION, 2000, 69 (09) :1927-1932
[9]   Silicon micromachining to tissue engineer branched vascular channels for liver fabrication [J].
Kaihara, S ;
Borenstein, J ;
Koka, R ;
Lalan, S ;
Ochoa, ER ;
Ravens, M ;
Pien, H ;
Cunningham, B ;
Vacanti, JP .
TISSUE ENGINEERING, 2000, 6 (02) :105-117
[10]   Evaluation of methods of hepatotrophic stimulation in rat heterotopic hepatocyte transplantation using polymers [J].
Kaufmann, PM ;
Sano, K ;
Uyama, S ;
Breuer, CK ;
Organ, GM ;
Schloo, BL ;
Kluth, D ;
Vacanti, JP .
JOURNAL OF PEDIATRIC SURGERY, 1999, 34 (07) :1118-1123