Skin Tissue Engineering Advances in Burns: A Brief Introduction to the Past, the Present, and the Future Potential

被引:19
作者
Chogan, Faraz [1 ,2 ]
Chen, Yufei [1 ,2 ]
Wood, Fiona [3 ,4 ,5 ,6 ,7 ]
Jeschke, Marc G. [1 ,8 ,9 ,10 ]
机构
[1] Sunnybrook Res Inst, Toronto, ON, Canada
[2] Univ Toronto, Inst Med Sci, Toronto, ON, Canada
[3] Perth Childrens Hosp, Dept Burns, Nedlands, WA, Australia
[4] Fiona Stanley Hosp, Dept Burns, Murdoch, WA, Australia
[5] Univ Western Australia, Div Surg, Crawley, WA, Australia
[6] Univ Western Australia, Sch Biomed Sci, Burn Injury Res Unit, Crawley, WA, Australia
[7] Fiona Stanley Hosp, Fiona Wood Fdn, Murdoch, WA, Australia
[8] Sunnybrook Hlth Sci Ctr, Ross Tilley Burn Ctr, Dept Immunol, Toronto, ON, Canada
[9] Univ Toronto, Fac Med, Dept Surg, Div Plast & Reconstruct Surg, Toronto, ON, Canada
[10] Sunnybrook Hlth Sci Ctr, Ross Tilley Burn Ctr, 2075 Bayview Ave, Toronto, ON M4N 3M5, Canada
基金
美国国家卫生研究院; 加拿大健康研究院;
关键词
ARTIFICIAL SKIN; SUBSTITUTE;
D O I
10.1093/jbcr/irac127
中图分类号
R4 [临床医学];
学科分类号
1002 ; 100602 ;
摘要
Burn injuries are a severe form of skin damage with a significant risk of scarring and systemic sequelae. Approximately 11 million individuals worldwide suffer burn injuries annually, with 180,000 people dying due to their injuries. Wound healing is considered the main determinant for the survival of severe burns and remains a challenge. The surgical treatment of burn wounds entails debridement of necrotic tissue, and the wound is covered with autologous skin substitutes taken from healthy donor areas. Autologous skin transplantation is still considered to be the gold standard for wound repair. However, autologous skin grafts are not always possible, especially in cases with extensive burns and limited donor sites. Allografts from human cadaver skin and xenografts from pig skin may be used in these situations to cover the wounds temporarily. Alternatively, dermal analogs are used until permanent coverage with autologous skin grafts or artificial skins can be achieved, requiring staged procedures to prolong the healing times with the associated risks of local and systemic infection. Over the last few decades, the wound healing process through tissue-engineered skin substitutes has significantly enhanced as the advances in intensive care ensuring early survival have led to the need to repair large skin defects. The focus has shifted from survival to the quality of survival, necessitating accelerated wound repair. This special volume of JBCR is dedicated to the discoveries, developments, and applications leading the reader into the past, present, and future perspectives of skin tissue engineering in burn injuries.
引用
收藏
页码:S1 / S4
页数:4
相关论文
共 30 条
[1]   Prospective Study on the Treatment of Lower-Extremity Chronic Venous and Mixed Ulcers Using Tissue-Engineered Skin Substitute Made by the Self-assembly Approach [J].
Boa, Olivier ;
Cloutier, Chanel Beaudoin ;
Genest, Herve ;
Labbe, Raymond ;
Rodrigue, Bertrand ;
Soucy, Jacques ;
Roy, Michel ;
Arsenault, Frederic ;
Ospina, Carlos E. ;
Dube, Nathalie ;
Rochon, Marie-Helene ;
Larouche, Danielle ;
Moulin, Veronique J. ;
Germain, Lucie ;
Auger, Francois A. .
ADVANCES IN SKIN & WOUND CARE, 2013, 26 (09) :400-409
[2]   Tissue engineering of skin [J].
Boettcher-Haberzeth, Sophie ;
Biedermann, Thomas ;
Reichmann, Ernst .
BURNS, 2010, 36 (04) :450-460
[3]  
Boyce S T, 1996, Tissue Eng, V2, P255, DOI 10.1089/ten.1996.2.255
[4]   Principles and practices for treatment of cutaneous wounds with cultured skin substitutes [J].
Boyce, ST ;
Warden, GD .
AMERICAN JOURNAL OF SURGERY, 2002, 183 (04) :445-456
[5]   SUCCESSFUL USE OF A PHYSIOLOGICALLY ACCEPTABLE ARTIFICIAL SKIN IN THE TREATMENT OF EXTENSIVE BURN INJURY [J].
BURKE, JF ;
YANNAS, IV ;
QUINBY, WC ;
BONDOC, CC ;
JUNG, WK .
ANNALS OF SURGERY, 1981, 194 (04) :413-428
[6]   Skin tissue engineering advances in severe burns: review and therapeutic applications [J].
Chua, Alvin Wen Choong ;
Khoo, Yik Cheong ;
Tan, Bien Keem ;
Tan, Kok Chai ;
Foo, Chee Liam ;
Chong, Si Jack .
BURNS & TRAUMA, 2016, 4
[7]   Use of Biodegradable Temporizing Matrix (BTM) in large trauma induced soft tissue injury: A two stage repair [J].
Crowley, K. ;
Balaji, S. ;
Stalewski, H. ;
Carroll, D. ;
Mariyappa-Rathnamma, B. .
JOURNAL OF PEDIATRIC SURGERY CASE REPORTS, 2020, 63
[8]   Hydrogels as extracellular matrices for skeletal tissue engineering: state-of-the-art and novel application in organ printing [J].
Fedorovich, Natalja E. ;
Alblas, Jacqueline ;
de Wijn, Joost R. ;
Hennink, Wim E. ;
Verbout, Ab J. ;
Dhert, Wouter J. A. .
TISSUE ENGINEERING, 2007, 13 (08) :1905-1925
[9]   GROWTH OF CULTURED HUMAN EPIDERMAL-CELLS INTO MULTIPLE EPITHELIA SUITABLE FOR GRAFTING [J].
GREEN, H ;
KEHINDE, O ;
THOMAS, J .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1979, 76 (11) :5665-5668
[10]   Handheld skin printer: in situ formation of planar biomaterials and tissues [J].
Hakimi, Navid ;
Cheng, Richard ;
Leng, Lian ;
Sotoudehfar, Mohammad ;
Ba, Phoenix Qing ;
Bakhtyar, Nazihah ;
Amini-Nik, Saeid ;
Jeschke, Marc G. ;
Guenther, Axel .
LAB ON A CHIP, 2018, 18 (10) :1440-1451