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Original Articles

Effects of mature adipocyte-derived dedifferentiated fat (DFAT) cells on generation and vascularisation of dermis-like tissue after artificial dermis grafting

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Pages 25-31 | Accepted 29 Apr 2014, Published online: 09 Jun 2014

References

  • Yannas IV, Burke JF. Design of an artificial skin. I. Basic design principles. J Biomed Mater Res 1980;65–81.
  • Suzuki S, Matsuda K, Isshiki N, et al. Clinical evaluation of a new bilayer "artificial skin" composed of collagen sponge and silicone layer. Br J Plast Surg 1990;43:47–54.
  • Moiemen NS, Staiano JJ, Ojeh NO, et al. Reconstructive surgery with a dermal regeneration template: clinical and histologic study. Plast Reconstr Surg 2001;108:93–103.
  • Yannas IV, Orgill DP, Burke JF. Template for skin regeneration. Plast Reconstr Surg 2011;127:60S–70S.
  • Heimbach D, Luterman A, Burke J, et al. Artificial dermis for major burns. A multi-center randomized clinical trial. Ann Surg 1988;208:313–20.
  • Burke JF, Yannas IV, Quinby WCJr, et al. Successful use of a physiologically acceptable artificial skin in the treatment of extensive burn injury. Ann Surg 1981;194:413–28.
  • Yeong EK, Yu YC, Chan ZH, Roan TL. Is artificial dermis an effective tool in the treatment of tendon-exposed wounds? J Burn Care Res 2013;34:161–7.
  • Soejima K, Nozaki M, Sasaki K, et al. Reconstruction of burn deformity using artificial dermis combined with thin split-skin grafting. Burns 1997;23:501–4.
  • Prystowsky JH, Siegel DM, Ascherman JA. Artificial skin for closure and healing of wounds created by skin cancer excisions. Dermatol Surg 2001;27:648–53; discussion 653–4.
  • Canonico S, Campitiello F, Della Corte A, Fattopace A. The use of a dermal substitute and thin skin grafts in the cure of "complex" leg ulcers. Dermatol Surg 2009;35:195–200.
  • Campitiello E, Della Corte A, Fattopace A, et al. The use of artificial dermis in the treatment of chronic and acute wounds: regeneration of dermis and wound healing. Acta Biomed 2005;76:69–71.
  • Stern R, McPherson M, Longaker MT. Histologic study of artificial skin used in the treatment of full-thickness thermal injury. J Burn Care Rehabil 1990;11:7–13.
  • Shevchenko RV, James SL, James SE. A review of tissue-engineered skin bioconstructs available for skin reconstruction. J R Soc Interface 2010;7:229–58.
  • Ono I, Tateshita T, Inoue M. Effects of a collagen matrix containing basic fibroblast growth factor on wound contraction. J Biomed Mater Res 1999;48:621–30.
  • Kawai K, Suzuki S, Tabata Y, Ikada Y, Nishimura Y. Accelerated tissue regeneration through incorporation of basic fibroblast growth factor-impregnated gelatin microspheres into artificial dermis. Biomaterials 2000;21:489–99.
  • Tsuji-Saso Y, Kawazoe T, Morimoto N, et al. Incorporation of basic fibroblast growth factor into preconfluent cultured skin substitute to accelerate neovascularisation and skin reconstruction after transplantation. Scand J Plast Reconstr Surg Hand Surg 2007;41:228–35.
  • Akasaka Y, Ono I, Tominaga A, et al. Basic fibroblast growth factor in an artificial dermis promotes apoptosis and inhibits expression of alpha-smooth muscle actin, leading to reduction of wound contraction. Wound Repair Regen 2007;15:378–89.
  • Davidson JM, Klagsbrun M, Hill KE, et al. Accelerated wound repair, cell proliferation, and collagen accumulation are produced by a cartilage-derived growth factor. J Cell Biol 1985;100:1219–27.
  • Barrientos S, Stojadinovic O, Golinko MS, et al. Growth factors and cytokines in wound healing. Wound Repair Regen 2008;16:585–601.
  • Przybylski M. A review of the current research on the role of bFGF and VEGF in angiogenesis. J Wound Care 2009;18:516–19.
  • Mustoe TA, O’Shaughnessy K, Kloeters O. Chronic wound pathogenesis and current treatment strategies: a unifying hypothesis. Plast Reconstr Surg 2006;117:35s–41s.
  • Yagi K, Kondo D, Okazaki Y, Kano K. A novel preadipocyte cell line established from mouse adult mature adipocytes. Biochem Biophys Res Commun 2004;321:967–74.
  • Matsumoto T, Kano K, Kondo D, et al. Mature adipocyte-derived dedifferentiated fat cells exhibit multilineage potential. J Cell Physiol 2008;215:210–22.
  • Jumabay M, Abdmaulen R, Urs S, et al. Endothelial differentiation in multipotent cells derived from mouse and human white mature adipocytes. J Mol Cell Cardiol 2012;53:790–800.
  • Nobusue H, Endo T, Kano K. Establishment of a preadipocyte cell line derived from mature adipocytes of GFP transgenic mice and formation of adipose tissue. Cell Tissue Res 2008;332:435–46.
  • Soejima K, Chen X, Nozaki M, et al. Novel application method of artificial dermis: one-step grafting procedure of artificial dermis and skin, rat experimental study. Burns 2006;32:312–18.
  • Akita S, Akino K, Tanaka K, et al. A basic fibroblast growth factor improves lower extremity wound healing with a porcine-derived skin substitute. J Trauma 2008;64:809–15.
  • Gospodarowicz D, Neufeld G, Schweigerer L. Fibroblast growth factor. Mol Cell Endocrinol 1986;46:187–204.
  • Schweigerer L. Basic fibroblast growth factor as a wound healing hormone. Trends Pharmacol Sci 1988;9:427–8.
  • Agren MS, Steenfos HH, Dabelsteen S, et al. Proliferation and mitogenic response to PDGF-BB of fibroblasts isolated from chronic venous leg ulcers is ulcer-age dependent. J Invest Dermatol 1999;112:463–9.
  • Mendez MV, Stanley A, Phillips T, et al. Fibroblasts cultured from distal lower extremities in patients with venous reflux display cellular characteristics of senescence. J Vasc Surg 1998;28:1040–50.
  • Grigoriadis AE, Heersche JN, Aubin JE. Differentiation of muscle, fat, cartilage, and bone from progenitor cells present in a bone-derived clonal cell population: effect of dexamethasone. J Cell Biol 1988;106:2139–51.
  • Prockop DJ. Marrow stromal cells as stem cells for nonhematopoietic tissues. Science 1997;276:71–4.
  • Lee OK, Kuo TK, Chen WM, et al. Isolation of multipotent mesenchymal stem cells from umbilical cord blood. Blood 2004;103:1669–75.
  • Zuk PA, Zhu M, Mizuno H, et al. Multilineage cells from human adipose tissue: implications for cell-based therapies. Tissue Eng 2001;7:211–28.
  • Behr B, Hee Ko S, Wong VW, et al. Stem cells. Plast Reconstr Surg 2010;126:1163–71.
  • Mizuno H, Nambu M. Adipose-derived stem cells for skin regeneration. Methods Mol Biol 2011;702:453–9.
  • Shen T, Pan ZG, Zhou X, Hong CY. Accelerated healing of diabetic wound using artificial dermis constructed with adipose stem cells and poly (L-glutamic acid)/chitosan scaffold. Chin Med J (Engl) 2013;126:1498–503.
  • Oki Y, Watanabe S, Endo T, Kano K. Mature adipocyte-derived dedifferentiated fat cells can trans-differentiate into osteoblasts in vitro and in vivo only by all-trans retinoic acid. Cell Struct Funct 2008;33:211–22.
  • Jumabay M, Matsumoto T, Yokoyama S, et al. Dedifferentiated fat cells convert to cardiomyocyte phenotype and repair infarcted cardiac tissue in rats. J Mol Cell Cardiol 2009;47:565–75.

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