Development of biodegradable electrospun scaffolds for dermal replacement.
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S. MacNeil | J. Haycock | A. Ryan | I. Brook | Robert Mckean | I. Cantón | S. Rimmer | Keith A. Blackwood | P. Farthing | C. Freeman | Kirsty L. Franklin | D. Cole
[1] S. MacNeil,et al. Inhibition of Keratinocyte-Driven Contraction of Tissue-Engineered Skin In Vitro by Calcium Chelation and Early Restraint But Not Submerged Culture , 2008, Journal of burn care & research : official publication of the American Burn Association.
[2] Sheila MacNeil,et al. The mechanism of skin graft contraction: an update on current research and potential future therapies. , 2008, Burns : journal of the International Society for Burn Injuries.
[3] W. Jeffcoate,et al. Randomized, controlled, single-blind study on use of autologous keratinocytes on a transfer dressing to treat nonhealing diabetic ulcers. , 2007, Regenerative medicine.
[4] Stephen F Badylak,et al. The extracellular matrix as a biologic scaffold material. , 2007, Biomaterials.
[5] Sheila MacNeil,et al. Progress and opportunities for tissue-engineered skin , 2007, Nature.
[6] George P McCabe,et al. Extracellular matrix bioscaffolds for orthopaedic applications. A comparative histologic study. , 2006, The Journal of bone and joint surgery. American volume.
[7] Sheila MacNeil,et al. Use of an in vitro model of tissue-engineered skin to investigate the mechanism of skin graft contraction. , 2006, Tissue engineering.
[8] Sheila MacNeil,et al. Clinical experience using cultured epithelial autografts leads to an alternative methodology for transferring skin cells from the laboratory to the patient. , 2006, Regenerative medicine.
[9] Seeram Ramakrishna,et al. Nano-featured scaffolds for tissue engineering: a review of spinning methodologies. , 2006, Tissue engineering.
[10] C. Vacanti,et al. Polyglycolic acid-induced inflammation: role of hydrolysis and resulting complement activation. , 2006, Tissue engineering.
[11] Sheila MacNeil,et al. Self-organization of skin cells in three-dimensional electrospun polystyrene scaffolds. , 2005, Tissue engineering.
[12] R. M. Warner,et al. Treatment of burns and chronic wounds using a new cell transfer dressing for delivery of autologous keratinocytes , 2005, European Journal of Plastic Surgery.
[13] Seeram Ramakrishna,et al. Electrospinning of gelatin fibers and gelatin/PCL composite fibrous scaffolds. , 2005, Journal of biomedical materials research. Part B, Applied biomaterials.
[14] Silvano Sozzani,et al. The chemokine system in diverse forms of macrophage activation and polarization. , 2004, Trends in immunology.
[15] H. Tsuji,et al. In vitro hydrolysis of poly(L-lactide) crystalline residues as extended-chain crystallites. Part I: long-term hydrolysis in phosphate-buffered solution at 37 degrees C. , 2004, Biomaterials.
[16] S. MacNeil,et al. A new autologous keratinocyte dressing treatment for non‐healing diabetic neuropathic foot ulcers , 2004, Diabetic medicine : a journal of the British Diabetic Association.
[17] S. MacNeil,et al. Use of peracetic acid to sterilize human donor skin for production of acellular dermal matrices for clinical use , 2004, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[18] S. MacNeil,et al. Tissue‐engineered buccal mucosa for substitution urethroplasty , 2004, BJU international.
[19] Nicola J Brown,et al. Development of a reconstructed human skin model for angiogenesis , 2003, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[20] Benjamin Chu,et al. Structure and morphology changes during in vitro degradation of electrospun poly(glycolide-co-lactide) nanofiber membrane. , 2003, Biomacromolecules.
[21] Y. Bello,et al. The role of graftskin (Apligraf) in difficult-to-heal venous leg ulcers. , 2002, Journal of wound care.
[22] P T Khaw,et al. KERATINOCYTE‐DRIVEN CONTRACTION OF RECONSTRUCTED HUMAN SKIN , 2001, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[23] S. Boyce,et al. The 1999 clinical research award. Cultured skin substitutes combined with Integra Artificial Skin to replace native skin autograft and allograft for the closure of excised full-thickness burns. , 1999, The Journal of burn care & rehabilitation.
[24] S. Mac Neil,et al. Development of autologous human dermal–epidermal composites based on sterilized human allodermis for clinical use , 1999, The British journal of dermatology.
[25] Boyce,et al. The requirement for basement membrane antigens in the production of human epidermal/dermal composites in vitro , 1999, The British journal of dermatology.
[26] C Lindqvist,et al. A 5-year in vitro and in vivo study of the biodegradation of polylactide plates. , 1998, Journal of oral and maxillofacial surgery : official journal of the American Association of Oral and Maxillofacial Surgeons.
[27] M. M. Ghosh,et al. A Comparison of Methodologies for the Preparation of Human Epidermal‐Dermal Composites , 1997, Annals of plastic surgery.
[28] S. Macneil,et al. Keratinocytes contract human dermal extracellular matrix and reduce soluble fibronectin production by fibroblasts in a skin composite model. , 1997, British journal of plastic surgery.
[29] Joseph McGuire,et al. USE OF CULTURED EPIDERMAL AUTOGRAFTS AND DERMAL ALLOGRAFTS AS SKIN REPLACEMENT AFTER BURN INJURY , 1986, The Lancet.
[30] C. Compton,et al. Permanent Coverage of Large Burn Wounds with Autologous Cultured Human Epithelium , 1984 .
[31] J. Burke,et al. Successful Use of a Physiologically Acceptable Artificial Skin in the Treatment of Extensive Burn Injury , 1981, Annals of surgery.
[32] R. Brentani,et al. Picrosirius staining plus polarization microscopy, a specific method for collagen detection in tissue sections , 1979, The Histochemical Journal.
[33] C. M. Agrawal,et al. Sterilization, toxicity, biocompatibility and clinical applications of polylactic acid/polyglycolic acid copolymers. , 1996, Biomaterials.
[34] W C de Bruijn,et al. Late degradation tissue response to poly(L-lactide) bone plates and screws. , 1995, Biomaterials.
[35] G. Boering,et al. Resorbable materials of poly(L-lactide). VI. Plates and screws for internal fracture fixation. , 1987, Biomaterials.