In Situ Bioprinting of Autologous Skin Cells Accelerates Wound Healing of Extensive Excisional Full-Thickness Wounds
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Kyle W. Binder | Dennis D. Dice | Weixin Zhao | Tao Xu | A. Atala | A. Skardal | J. Jackson | J. Holmes | S. Murphy | Josh Tan | Shadi A. Qasem | Idris B. El-Amin | Jaehyun Kim | J. Yoo | Julie Marco | Jason Green | Mohammed Albanna
[1] Diego Velasco,et al. 3D bioprinting of functional human skin: production and in vivo analysis , 2016, Biofabrication.
[2] B. Mosadegh,et al. 3D bioprinting of functional human skin: production and in vivo analysis , 2016 .
[3] Anthony Atala,et al. 3D bioprinting of tissues and organs , 2014, Nature Biotechnology.
[4] Pankaj Karande,et al. Design and fabrication of human skin by three-dimensional bioprinting. , 2014, Tissue engineering. Part C, Methods.
[5] P. Vogt,et al. Tissue Engineered Skin Substitutes Created by Laser-Assisted Bioprinting Form Skin-Like Structures in the Dorsal Skin Fold Chamber in Mice , 2013, PloS one.
[6] James J. Yoo,et al. Complex heterogeneous tissue constructs containing multiple cell types prepared by inkjet printing technology. , 2013, Biomaterials.
[7] Robert J Snyder,et al. Spray-applied cell therapy with human allogeneic fibroblasts and keratinocytes for the treatment of chronic venous leg ulcers: a phase 2, multicentre, double-blind, randomised, placebo-controlled trial , 2012, The Lancet.
[8] Xiaofeng Cui,et al. Thermal inkjet printing in tissue engineering and regenerative medicine. , 2012, Recent patents on drug delivery & formulation.
[9] A. Schambach,et al. Skin tissue generation by laser cell printing , 2012, Biotechnology and bioengineering.
[10] Janice K Popp,et al. Health Problems Associated with International Business Travel , 2000, AAOHN journal : official journal of the American Association of Occupational Health Nurses.
[11] R. Cina,et al. Effectiveness of Biobrane for treatment of partial-thickness burns in children. , 2011, Journal of pediatric surgery.
[12] J. Jeng,et al. National Burn Repository 2007 Report: A Synopsis of the 2007 Call for Data , 2008, Journal of burn care & research : official publication of the American Burn Association.
[13] B. De Angelis,et al. A randomized trial comparing ReCell system of epidermal cells delivery versus classic skin grafts for the treatment of deep partial thickness burns. , 2007, Burns : journal of the International Society for Burn Injuries.
[14] M. Karasek,et al. A method for the isolation and serial propagation of keratinocytes, endothelial cells, and fibroblasts from a single punch biopsy of human skin , 1995, In Vitro Cellular & Developmental Biology - Animal.
[15] F. Wood,et al. The use of cultured epithelial autograft in the treatment of major burn injuries: a critical review of the literature. , 2006, Burns : journal of the International Society for Burn Injuries.
[16] S. MacNeil,et al. Developments in xenobiotic‐free culture of human keratinocytes for clinical use , 2004, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[17] Thomas Morrow,et al. Wound healing promoted with living-skin substitutes. , 2004, Managed care.
[18] D. Herndon,et al. Burns: military options and tactical solutions. , 2003, The Journal of trauma.
[19] R. Martin,et al. A guide to biological skin substitutes. , 2002, British journal of plastic surgery.
[20] D. W. Hayes,et al. Full-thickness burn of the foot: successful treatment with Apligraf. A case report. , 2001, Clinics in podiatric medicine and surgery.
[21] M. Sabolinski,et al. The effect of a tissue engineered bilayered living skin analog, over meshed split-thickness autografts on the healing of excised burn wounds. The Apligraf Burn Study Group. , 2000, Burns : journal of the International Society for Burn Injuries.
[22] F. A. Navarro,et al. Sprayed keratinocyte suspensions accelerate epidermal coverage in a porcine microwound model. , 2000, The Journal of burn care & rehabilitation.
[23] S. Lal,et al. Biobrane improves wound healing in burned children without increased risk of infection. , 2000, Shock.
[24] H. Brem,et al. Healing of diabetic foot ulcers and pressure ulcers with human skin equivalent: a new paradigm in wound healing. , 2000, Archives of surgery.
[25] N. Yamamoto,et al. Microarray fabrication with covalent attachment of DNA using Bubble Jet technology , 2000, Nature Biotechnology.
[26] K. Beckrich,et al. Hospital-acquired pressure ulcers: a comparison of costs in medical vs. surgical patients. , 1999, Nursing economic$.
[27] C. Compton,et al. Comparison of cultured and uncultured keratinocytes seeded into a collagen-GAG matrix for skin replacements. , 1999, British journal of plastic surgery.
[28] L D Solem,et al. A multicenter clinical trial of a biosynthetic skin replacement, Dermagraft-TC, compared with cryopreserved human cadaver skin for temporary coverage of excised burn wounds. , 1997, The Journal of burn care & rehabilitation.
[29] E. Mcloughlin,et al. Burn incidence and medical care use in the United States: estimates, trends, and data sources. , 1996, The Journal of burn care & rehabilitation.
[30] D. J. Wainwright. Use of an acellular allograft dermal matrix (AlloDerm) in the management of full-thickness burns. , 1995, Burns : journal of the International Society for Burn Injuries.
[31] F. Grinnell. Wound repair, keratinocyte activation and integrin modulation. , 1992, Journal of cell science.
[32] T. Lukens,et al. Outpatient management of partial-thickness burns: Biobrane versus 1% silver sulfadiazine. , 1990, Annals of emergency medicine.
[33] S. Boyce,et al. Burn wound closure with cultured autologous keratinocytes and fibroblasts attached to a collagen-glycosaminoglycan substrate. , 1989, JAMA.
[34] D. Heimbach,et al. Artificial Dermis for Major Burns: A Multi‐Center Randomized Clinical Trial , 1988, Annals of surgery.