Tissue Engineering in Wound Repair: The three "R"s-Repair, Replace, Regenerate

被引:46
作者
Theoret, Christine [1 ]
机构
[1] Univ Montreal, Fac Med Vet, Dept Biomed Vet, St Hyacinthe, PQ J2S 7C6, Canada
关键词
SMALL-INTESTINAL SUBMUCOSA; STEM-CELLS; EXTRACELLULAR-MATRIX; DEGRADATION-PRODUCTS; VETERINARY-MEDICINE; SKIN SUBSTITUTES; EXPRESSION; HORSES; BONE; DRESSINGS;
D O I
10.1111/j.1532-950X.2009.00585.x
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
Horses are predisposed to traumatic wounds that can be labor intensive and expensive to manage. Skin has a considerable potential for efficient and functional repair however, while cutaneous repair is a regenerative process in the fetus, this capability declines in late gestation as inflammation and scarring alter the outcome of healing. The historical gold standard for replacement of lost skin is the autologous skin graft. However, the horse's lack of redundant donor skin limits the practicality of full-thickness grafting to smaller wounds; moreover, graft failure is relatively common in equine patients as a result of infection, inflammation, fluid accumulation beneath the graft, and motion. Tissue engineering has emerged as an interdisciplinary field with the aim to regenerate new biological material for replacing diseased or damaged tissues or organs. In the case of skin, the ultimate goal is to rapidly create a construct that effects the complete regeneration of functional skin, including all its layers and appendages. Moreover, an operational vascular and nervous network, with scar-free integration within the surrounding host tissue, is desirable. For this to be achieved, not only is an appropriate source of cells required, but also a scaffold designed from natural or synthetic polymers. The newly created tissue might finally meet the numerous needs and expectations of practitioners and surgeons managing a catastrophic wound in a horse.
引用
收藏
页码:905 / 913
页数:9
相关论文
共 60 条
[1]  
Auger FA, 2004, BIOTECHNOL APPL BIOC, V39, P263
[2]   Treatment of chronic wounds with bone marrow-derived cells [J].
Badiavas, EV ;
Falanga, V .
ARCHIVES OF DERMATOLOGY, 2003, 139 (04) :510-516
[3]  
BADYLAK SF, 2008, EQUINE WOUND MANAGEM, P161
[4]   Immune response to biologic scaffold materials [J].
Badylak, Stephen E. ;
Gilbert, Thomas W. .
SEMINARS IN IMMUNOLOGY, 2008, 20 (02) :109-116
[5]   In vitro reconstruction of a human capillary-like network in a tissue-engineered skin equivalent [J].
Black, AF ;
Berthod, F ;
L'Heureux, N ;
Germain, L ;
Auger, FA .
FASEB JOURNAL, 1998, 12 (13) :1331-1340
[6]   Antibacterial activity within degradation products of biological scaffolds composed of extracellular matrix [J].
Brennan, Ellen P. ;
Reing, Janet ;
Chew, Douglas ;
Myers-Irvin, Julie M. ;
Young, E. J. ;
Badylak, Stephen F. .
TISSUE ENGINEERING, 2006, 12 (10) :2949-2955
[7]   Chemoattractant activity of degradation products of fetal and adult skin extracellular matrix for keratinocyte progenitor cells [J].
Brennan, Ellen P. ;
Tang, Xiao-Han ;
Stewart-Akers, Ann M. ;
Gudas, Lorraine J. ;
Badylak, Stephen F. .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2008, 2 (08) :491-498
[8]   Fetal wound healing: Current biology [J].
Bullard, KM ;
Longaker, MT ;
Lorenz, HP .
WORLD JOURNAL OF SURGERY, 2003, 27 (01) :54-61
[9]   Stem cells in cutaneous wound healing [J].
Cha, Jisun ;
Falanga, Vincent .
CLINICS IN DERMATOLOGY, 2007, 25 (01) :73-78
[10]   Tissue engineering for cutaneous wounds [J].
Clark, Richard A. F. ;
Ghosh, Kaustabh ;
Tonnesen, Marcia G. .
JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2007, 127 (05) :1018-1029