Research Journal of Applied Sciences

Year: 2013
Volume: 8
Issue: 4
Page No. 244 - 251

Electrospun Biomaterial Scaffolds for Skin Regenerative Medicine

Authors : Shahin Mohammadsadeghi and Abdorrasoul Malekpour

References

Alemdaroglu, C., Z. Degim, N. Celebi, M. Sengezer, M. Alomeroglu and A. Nacar, 2008. Investigation of epidermal growth factor containing liposome formulation effects on burn wound healing. J. Biomed. Mater. Res. A, 85: 271-283.
CrossRef  |  PubMed  |  

Annabi, N., S.M. Mithieux, E.A. Boughton, A.J. Ruys, A.S. Weiss and F. Dehghani, 2009. Synthesis of highly porous crosslinked elastin hydrogels and their interaction with fibroblasts In vitro. Biomaterials, 30: 4550-4557.
PubMed  |  

Barrientos, S., O. Stojadinovic, M.S. Golinko, H. Brem and M. Tomic-Canic, 2008. Growth factors and cytokines in wound healing. Wound Repair Regen., 16: 585-601.
CrossRef  |  PubMed  |  

Bates, D.O. and F.E. Curry, 1996. Vascular endothelial growth factor increases hydraulic conductivity of isolated perfused microvessels. Am. J. Physiol., 271: H2520-H1528.
PubMed  |  

Beenken, A. and M. Mohammadi, 2009. The FGF family: Biology, pathophysiology and therapy. Nat. Rev. Drug Discov., 8: 235-253.
PubMed  |  

Brauchle, M., R. Fassler and S. Werner, 1995. Suppression of keratinocyte growth factor expression by glucocorticoids In vitro and during wound healing. J. Invest. Dermatol., 105: 579-584.
PubMed  |  

Brem, H., A. Kodra, M.S. Golinko, H. Entero and O. Stojadinovic et al., 2009. Mechanism of sustained release of vascular endothelial growth factor in accelerating experimental diabetic healing. J. Invest. Dermatol., 129: 2275-2287.
PubMed  |  

Brown, G.L., L.J. Curtsinger, M. White, R.O. Mitchell and J. Pietsch et al., 1988. Acceleration of tensile strength of incisions treated with EGF and TGF-β. Ann. Surg., 208: 788-794.
PubMed  |  

Burke, J.F., I.V. Yannas, W.C. Quinby Jr, C.C. Bondoc and W.K. Jung, 1981. Successful use of a physiologically acceptable artificial skin in the treatment of extensive burn injury. Anna. Surg., 194: 413-428.
PubMed  |  Direct Link  |  

Cellot, G., E. Cilia, S. Cipollone, V. Rancic and A. Sucapane et al, 2009. Carbon nanotubes might improve neuronal performance by favouring electrical shortcuts. Nat. nanotechnol., 4: 126-133.
CrossRef  |  

Chen, Y.C., R.Z. Lin, H. Qi, Y. Yang and H. Bae et al., 2012. Functional human vascular network generated in photocrosslinkable gelatin methacrylate hydrogels. Adv. Funct. Mater., 22: 2027-2039.
CrossRef  |  Direct Link  |  

Chevallay, B. and D. Herbage, 2000. Collagen-based biomaterials as 3D scaffold for cell cultures: Applications for tissue engineering and gene therapy. Med. Biol. Eng. Comput., 38: 211-218.
PubMed  |  Direct Link  |  

Clark, R.A., 1993. Regulation of fibroplasia in cutaneous wound repair. Am. J. Med. Sci., 306: 42-48.
PubMed  |  

Connolly, D.T., D.M. Heuvelman, R. Nelson, J.V. Olander and B.L. Eppley et al., 1989. Tumor vascular permeability factor stimulates endothelial cell growth and angiogenesis. J. Clin. Invest., 84: 1470-1478.
CrossRef  |  Direct Link  |  

Cui, H., M.J. Webber and S.I. Stupp, 2010. Self-assembly of peptide amphiphiles: From molecules to nanostructures to biomaterials. Pept. Sci., 94: 1-8.
PubMed  |  

Daian, T., A. Ohtsuru, T. Rogounovitch, H. Ishihara and A. Hirano et al., 2003. Insulin-like growth factor-I enhances transforming growth factor-β-induced extracellular matrix protein production through the P38/activating transcription factor-2 signaling pathway in keloid fibroblasts. J. Invest. Dermatol., 120: 956-962.

Dailey, L., D. Ambrosetti, A. Mansukhani and C. Basilico, 2005. Mechanisms underlying differential responses to FGF signaling. Cytokine Growth Factor Rev., 16: 233-247.
CrossRef  |  PubMed  |  

Dasu, M.R.K., D.N. Herndon, O. Nesic and J.R. Perez-Polo, 2003. IGF-I gene transfer effects on inflammatory elements present after thermal trauma. Am. J. Physiol. Regul. Integr. Comp. Physiol., 285: R741-R746.
PubMed  |  

Drinkwater, S.L., A. Smith, B.M. Sawyer and K.G. Burnand, 2002. Effect of venous ulcer exudates on angiogenesis In vitro. Br. J. Surg., 89: 709-713.
CrossRef  |  PubMed  |  

Edalat, F., I. Sheu, S. Manoucheri and A. Khademhosseini, 2012. Material strategies for creating artificial cell-instructive niches. Curr. Opin. Biotechnol., 23: 820-825.
CrossRef  |  PubMed  |  

Ferrara, N. and W.J. Henzel, 1989. Pituitary follicular cells secrete a novel heparin-binding growth factor specific for vascular endothelial cells. Biochem. Biophys. Res. Commun., 161: 851-858.
PubMed  |  

Finch, P.W. and J.S. Rubin, 2004. Keratinocyte growth factor/fibroblast growth factor 7, a homeostatic factor with therapeutic potential for epithelial protection and repair. Adv. Cancer Res., 91: 69-136.
CrossRef  |  PubMed  |  

Galeano, M., B. Deodato, D. Altavilla, G. Squadrito and P. Seminara et al., 2003. Effect of recombinant adeno-associated virus vector-mediated vascular endothelial growth factor gene transfer on wound healing after burn injury. Crit. Care Med., 31: 1017-1025.
CrossRef  |  PubMed  |  

Gartner, M.H., J.D. Benson and M.D. Caldwell, 1992. Insulin-like growth factors I and II expression in the healing wound. J. Surgical Res., 52: 389-394.

Grayson, W.L., M. Frohlich, K. Yeager, S. Bhumiratana and M.E. Chanet al., 2010. Engineering anatomically shaped human bone grafts. Proc. Nat. Acad. Sci., 107: 3299-3304.
Direct Link  |  

Hardwicke, J., D. Schmaljohann, D. Boyce and D. Thomas, 2008. Epidermal growth factor therapy and wound healing-past, present and future perspectives. Surgeon, 6: 172-177.
CrossRef  |  

Hartgerink, J.D., E. Beniash and S.I. Stupp, 2001. Self-assembly and mineralization of peptide-amphiphile nanofibers. Science, 294: 1684-1688.
CrossRef  |  

Jones, I., L. Currie and R. Martin, 2002. A guide to biological skin substitutes. Br. J. Plast. Surg., 55: 185-193.
CrossRef  |  PubMed  |  

Kannan, R.Y., H.J. Salacinski, J. Ghanavi and A. Narulaet al., 2007. Silsesquioxane nanocomposites as tissue implants. Plast. Reconstructive Surg., 119: 1653-1662.
Direct Link  |  

Kim, B.S. and D.J. Mooney, 1998. Development of biocompatible synthetic extracellular matrices for tissue engineering. Trends Biotechnol., 16: 224-230.
CrossRef  |  PubMed  |  

Komori, M., Y. Tomizawa, K. Takada and M. Ozaki, 2005. A single local application of recombinant human basic fibroblast growth factor accelerates initial angiogenesis during wound healing in rabbit ear chamber. Anesth. Analg., 100: 830-834.
PubMed  |  

Koolwijk, P., M. van Erck, W. de Vree, M.A. Vermeer and H.A. Weich et al., 1996. Cooperative effect of TNFα, bFGF and VEGF on the formation of tubular structures of human microvascular endothelial cells in a fibrin matrix. Role of urokinase activity. J. Cell Biolo., 132: 1177-1188.
PubMed  |  

Kraehenbuehl, T.P., P. Zammaretti, A.J.V. der Vlies, R.G. Schoenmakers, M.P. Lutolf, M.E. Jaconi and J.A. Hubbell, 2008. Three-dimensional extracellular matrix-directed cardioprogenitor differentiation: Systematic modulation of a synthetic cell-responsive PEG-hydrogel. Biomaterials, 29: 2757-2766.
PubMed  |  

Kwon, M.J., S. An, S. Choi, K. Nam and H.S. Jung et al., 2012. Effective healing of diabetic skin wounds by using nonviral gene therapy based on minicircle vascular endothelial growth factor DNA and a cationic dendrimer. J. Gene Med., 14: 272-278.
CrossRef  |  PubMed  |  

Liu, J.P., J. Baker, A.S. Perkins, E.J. Robertson and A. Efstratiadis, 1993. Mice carrying null mutations of the genes encoding insulinlike growth factor I (Igf-1) and type 1 IGF receptor (Igfr). Cell, 75: 59-72.
PubMed  |  

Liu, X. and P.X. Ma, 2009. Phase separation, pore structure and properties of nanofibrous gelatin scaffolds. Biomaterials, 30: 4094-4103.
PubMed  |  

Marchese, C., M. Chedid, O.R. Dirsch, K.G. Csaky, F. Santanelli and C. Latini, 1995. Modulation of keratinocyte growth factor and its receptor in reepithelializing human skin. J. Exp. Med., 182: 1369-1376.

Min, B.M., G. Lee, S.H. Kim, Y.S. Nam, Y.S. Lee and W.H. Park, 2004. Electrospinning of silk fibroin nanofibers and its effect on the adhesion and spreading of normal human keratinocytes and fibroblasts in vitro. Biomaterials, 25: 1289-1297.
CrossRef  |  Direct Link  |  

Min, B.M., L. Jeong, K.Y. Lee and W.H. Park, 2006. Regenerated silk fibroin nanofibers: Water vapor-induced structural changes and their effects on the behavior of normal human cells. Macromol. Biosci., 6: 285-292.
CrossRef  |  PubMed  |  

Murphy, K.E., C.L. Hall, S.W. McCue and D.S. McElwain, 2011. A two-compartment mechanochemical model of the roles of transforming growth factor β and tissue tension in dermal wound healing. J. Theor. Biol., 272: 145-159.

Namgung, S., K.Y. Baik, J. Park and S. Hong, 2011. Controlling the growth and differentiation of human mesenchymal stem cells by the arrangement of individual carbon nanotubes. ACS Nano, 5: 7383-7390.
PubMed  |  

Nissen, N.N., R.L. Gamelli, P.J. Polverini and L.A. DiPietro, 2003. Differential angiogenic and proliferative activity of surgical and burn wound fluids. J. Trauma, 54: 1205-1210.
PubMed  |  

Okamoto, Y., M. Watanabe, K. Miyatake, M. Morimoto, Y. Shigemasa and S. Minami, 2002. Effects of chitin/chitosan and their oligomers/monomers on migrations of fibroblasts and vascular endothelium. Biomaterials, 23: 1975-1979.
CrossRef  |  PubMed  |  

Ott, H.C., T.S. Matthiesen, S.K. Goh, L.D. Black and S.M. Kren et al., 2008. Perfusion-decellularized matrix: Using nature's platform to engineer a bioartificial heart. Nat. med., 14: 213-221.
Direct Link  |  

Park, K.E., S.Y. Jung, S.J. Lee, B.M. Min and W.H. Park, 2006. Biomimetic nanofibrous scaffolds: Preparation and characterization of chitin/silk fibroin blend nanofibers. Int. J. Biol. Macromol., 38: 165-173.
CrossRef  |  PubMed  |  Direct Link  |  

Petersen, T.H., E.A. Calle, L. Zhao, E.J. Lee and L. Gui et al., 2010. Tissue-engineered lungs for In vivo implantation. Sci., 329: 358-541.
Direct Link  |  

Quint, C., Y. Kondo, R.J. Manson, J.H. Lawson, A. Dardik and L.E. Niklason, 2011. Decellularized tissue-engineered blood vessel as an arterial conduit. Proc. Nat. Acad. Sci., 108: 9214-9219.
Direct Link  |  

Schmid, P., P. Itin, G. Cherry, C. Bi and D.A. Cox, 1998. Enhanced expression of transforming growth factor-β type I and type II receptors in wound granulation tissue and hypertrophic scar. Am. J. Pathol., 152: 485-493.
PubMed  |  

Semenova, E., H. Koegel, S. Hasse, J.E. Klatte and E. Slonimsky et al., 2008. Overexpression of mIGF-1 in keratinocytes improves wound healing and accelerates hair follicle formation and cycling in mice. Am. J. Pathol., 173: 1295-1310.
PubMed  |  

Shah, M., D.M. Foreman and M. Ferguson, 1995. Neutralisation of TGF-β 1 and TGF-β 2 or exogenous addition of TGF-β 3 to cutaneous rat wounds reduces scarring. J. Cell Sci., 108: 985-1002.
Direct Link  |  

Shin, H., B.D. Olsen and A. Khademhosseini, 2012. The mechanical properties and cytotoxicity of cell-laden double-network hydrogels based on photocrosslinkable gelatin and gellan gum biomacromolecules. Biomaterials, 33: 3143-3152.
CrossRef  |  

Shin, S.R., H. Bae, J.M. Cha, J.Y. Mun and Y.C. Chen et al, 2012. Carbon nanotube reinforced hybrid microgels as scaffold materials for cell encapsulation. ACS Nano, 6: 362-372.
CrossRef  |  PubMed  |  

Slaughter, B.V., S.S. Khurshid, O.Z. Fisher, A. Khademhosseini and N.A. Peppas, 2009. Hydrogels in regenerative medicine. Adv. Mate., 21: 3307-3329.
CrossRef  |  

Spielberger, R., P. Stiff, W. Bensinger, T. Gentile and D. Weisdorf et al., 2004. Palifermin for oral mucositis after intensive therapy for hematologic cancers. N. Engl. J. Med., 351: 2590-2598.
PubMed  |  

Spies, M., O. Nesic, R.E. Barrow, J.R. Perez-Polo and D.N. Herndon, 2001. Liposomal IGF-1 gene transfer modulates pro-and anti-inflammatory cytokine mRNA expression in the burn wound. Gene Ther., 8: 1409-1415.
PubMed  |  

Tanaka, A., T. Nagate and H. Matsuda, 2005. Acceleration of wound healing by gelatin film dressings with epidermal growth factor. J. Vet. Med. Sci., 67: 909-913.
PubMed  |  

Thisse, B. and C. Thisse, 2005. Functions and regulations of fibroblast growth factor signaling during embryonic development. Dev. Biol., 287: 390-402.
CrossRef  |  PubMed  |  Direct Link  |  

Thorne, C., 2007. Grabb and Smith’s Plastic Surgery. Lippincott Williams and Wilkins, Philadelphia.

Throm, A.M., W.C. Liu, C.H. Lock and K.L. Billiar, 2010. Development of a cell-derived matrix: Effects of epidermal growth factor in chemically defined culture. J. Biomed. Mater. Res. A, 92: 533-541.
CrossRef  |  

Tibbitt, M.W. and K.S. Anseth, 2009. Hydrogels as extracellular matrix mimics for 3D cell culture. Biotechnol. Bioeng., 103: 655-663.
CrossRef  |  PubMed  |  Direct Link  |  

Tomasek, J.J., G. Gabbiani, B. Hinz, C. Chaponnier and R.A. Brown, 2003. Myofibroblasts and mechano-regulation of connective tissue remodelling. Nat. Rev. Mol. Cell Biol., 3: 349-363.
PubMed  |  

Uhl, E., F. Rosken, A. Sirsjo and K. Messmer, 2003. Influence of platelet-derived growth factor on microcirculation during normal and impaired wound healing. Wound Repair Regen., 11: 361-367.
PubMed  |  

Ulubayram, K., A.N. Cakar, P. Korkusuz, C. Ertan and N. Hasirci, 2001. EGF containing gelatin-based wound dressing. Biomaterials, 22: 1345-1356.
CrossRef  |  

Unemori, E.N., N. Ferrara, E.A. Bauer and E.P. Amento, 2005. Vascular endothelial growth factor induces interstitial collagenase expression in human endothelial cells. J. Cell. Physiol., 153: 557-562.
PubMed  |  

Uygun, B.E., A. Soto-Gutierrez, H. Yagi, M.L. Izamis and M.A. Guzzardiet al., 2010. Organ reengineering through development of a transplantable recellularized liver graft using decellularized liver matrix. Nat. med., 16: 814-820.
Direct Link  |  

Wang, M., J.H. Yu, D.L. Kaplan and G.C. Rutledge, 2006. Production of submicron diameter silk fibers under benign processing conditions by two-fluid electrospinning. Macromolecules, 39: 1102-1107.
CrossRef  |  

Werner, S., M. Breeden, G. Hubner, D.G. Greenhalgh and M.T. Longaker, 1994. Induction of keratinocyte growth factor expression is reduced and delayed during wound healing in the genetically diabetic mouse. J. Invest. Dermatol., 103: 469-473.
PubMed  |  

Wise, L.M., M.K. Inder, N.C. Real, G.S. Stuart, S.B. Fleming and A.A. Mercer, 2012. The Vascular Endothelial Growth Factor (VEGF)-E encoded by orf virus regulates keratinocyte proliferation and migration and promotes epidermal regeneration. Cell. Microbiol., 14: 1376-1390.
CrossRef  |  PubMed  |  

Wong, V.W., K.C. Rustad, M.G. Galvez, E. Neofytou and J.P. Glotzbachet al., 2010. Engineered pullulan-collagen composite dermal hydrogels improve early cutaneous wound healing. Tissue Engin. Part A., 17: 631-644.

Wu, H., T. Suzuki, B. Carey, B.C. Trapnell and F.X. McCormack, 2011. Keratinocyte growth factor augments pulmonary innate immunity through epithelium-driven, GM-CSF-dependent paracrine activation of alveolar macrophages. J. Biol. Chem., 286: 14932-14940.
PubMed  |  

Yang, Y., T. Xia, F. Chen, W. Wei and C. Liu et al. 2011. Electrospun fibers with plasmid bFGF polyplex loadings promote Skin wound healing in diabetic Rats. Molecul. Pharm., 9: 48-58.

Yazbeck, R., G.S. Howarth, L. Borges, M.S. Geier, C.L. Smith, G.P. Davidson and R.N. Butler, 2011. Non-invasive detection of a palifermin-mediated adaptive response following chemotherapy-induced damage to the distal small intestine of rats. Cancer Biol. Ther., 12: 399-406.
PubMed  |  Direct Link  |  

Yildirimer, L., N.T.K. Thanh and A.M. Seifalian, 2012. Skin regeneration scaffolds: A multimodal bottom-up approach. Trends Biotechnol., 30: 638-648.
Direct Link  |  

Yildirimer, L., N.T.K. Thanhb, M. Loizidoua and A.M. Seifalian, 2011. Toxicology and clinical potential of nanoparticles. Nano Today, 6: 585-607.
Direct Link  |  

Yoo, C.R., I.S. Yeo, K.E. Park, J.H. Park, S.J. Lee, W.H. Park and B.M. Min, 2008. Effect of chitin/silk fibroin nanofibrous bicomponent structures on interaction with human epidermal keratinocytes. Int. J. Biol. Macromol., 42: 324-334.
CrossRef  |  PubMed  |  

You, J.O., M. Rafat, G.J.C. Ye and D.T. Auguste, 2011. Nanoengineering the heart: Conductive scaffolds enhance connexin 43 expression. Nano lett., 11: 3643-3648.
CrossRef  |  

Zhang, P., Z. Hong, T. Yu, X. Chen and X. Jing, 2009. In vivo mineralization and osteogenesis of nanocomposite scaffold of poly (lactide- co-glycolide) and hydroxyapatite surface-grafted with poly (l-lactide). Biomaterials, 30: 58-70.
PubMed  |  

Zhu, J., 2010. Bioactive modification of poly(ethylene glycol) hydrogels for tissue engineering. Biomaterials, 31: 4639-4656.
CrossRef  |  

Design and power by Medwell Web Development Team. © Medwell Publishing 2024 All Rights Reserved