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Abrigo M., McArthur S.L., Kingshott P., Electrospun nanofibers as dressings for chronic wound care: Advances, challenges, and future prospects, Macromolecular Bioscience, 2014, 14, 772–792.Search in Google Scholar
Aramwit P., Siritientong T., Kanokpanont S. et al., Formulation and characterization of silk sericin-PVA scaffold crosslinked with genipin, Int. J. Biol. Macromol., 2010, 47, 668–675.Search in Google Scholar
Butler M.F., Ng Y.F., Pudney P.D.A., Mechanism and kinetics of the crosslinking reaction between biopolymers containing primary amine groups and genipin, J. Polym. Sci. Part A Polym. Chem., 2003, 41, 3941–3953.Search in Google Scholar
Chang W.H., Chang Y., Lai P.H. et al., A genipin--crosslinked gelatin membrane as wound-dressing material: In vitro and in vivo studies, J. Biomater. Sci. Polym. Ed., 2003, 14, 481–495.Search in Google Scholar
Chen K.Y., Liao W.J., Kuo S.M., Tsai F.J., Chen Y.S., Huang C.Y. et al., Asymmetric chitosan membrane containing collagen I nanospheres for skin tissue engineering, Biomacromolecules, 2009, 10, 1642–1649.Search in Google Scholar
Choi S.M., Singh D., Kumar A. et al., Porous threedimensional PVA/gelatin sponge for skin tissue engineering, Int. J. Polym. Mater. Polym. Biomate., 2013, 62, 384–389.Search in Google Scholar
Ganther H.E., Hafeman D.G., Lawrence R.A. et al., Selenium and Glutathione Peroxidase in Health and Disease, Essential and Toxic Element, 1976, 71, 952–958.Search in Google Scholar
Gopee N.V., Johnson V.J., Sharma R.P., Sodium selenite--induced apoptosis in murine B-lymphoma cells is associated with inhibition of protein kinase C-δ, nuclear factor κB, and inhibitor of apoptosis protein, Toxicol. Sci., 2004, 78, 204–214.Search in Google Scholar
Gorczyca G., Tylingo R., Szweda P., Augustin E., Sadowska M., Milewski S., Preparation and characterization of genipin cross-linked porous chitosan-collagen-gelatin scaffolds using chitosan-CO2solution, Carbohydr. Polym., 2014, 901–911.Search in Google Scholar
Guan L., Han B., Li Z. et al., Sodium selenite induces apoptosis by ROS-mediated endoplasmic reticulum stress and mitochondrial dysfunction in human acute promyelocytic leukemia NB4 cells, Apoptosis, 2009, 14, 218–225.Search in Google Scholar
Guo S., DiPietro L.A., Critical review in oral biology and medicine: Factors affecting wound healing, J. Dent. Res., 2010, 89, 219–229.Search in Google Scholar
Hayashi Y., Furue M.K., Okamoto T. et al., Integrins Regulate Mouse Embryonic Stem Cell Self-Renewal, Stem Cells, 2007, 25, 3005–3015.Search in Google Scholar
Huang C.Y., Hu K.H., Wei Z.H., Comparison of cell behavior on pva/pva-gelatin electrospun nanofibers with random and aligned configuration, Sci. Rep., 2016, 6, 37960.Search in Google Scholar
Kobielarz M., Tomanik M., Mroczkowska K., Szustakiewicz K., Oryszczak M., Mazur A., Antończak A., Filipiak J., Laser-modified PLGA for implants: in vitro degradation and mechanical properties, Acta of Bioengineering and Biomechanics, 2020, Vol. 22, No. 1.Search in Google Scholar
Langer R., Vacanti J.P., Tissue engineering, Science (80-), 1993, 260, 920–926.Search in Google Scholar
Mahnama H., Dadbin S., Frounchi M. et al., Preparation of biodegradable gelatin/PVA porous scaffolds for skin regeneration, Artif Cells, Nanomedicine Biotechnol., 2017, 45, 928–935.Search in Google Scholar
Malafaya P.B., Silva G.A., Reis R.L., Natural-origin polymers as carriers and scaffolds for biomolecules and cell delivery in tissue engineering applications, Adv. Drug. Deliv. Rev., 2007, 59, 207–233.Search in Google Scholar
Mekhail M., Wong K.K.H., Padavan D.T. et al., Genipincross-linked electrospun collagen fibers, J. Biomater. Sci. Polym. Ed., 2011, 22, 2241–2259.Search in Google Scholar
McKeehan W.L., Hamilton W.G., Ham R.G., Selenium is an essential trace nutrient for growth of WI-38 diploid human fibroblasts, Proc. Natl. Acad. Sci. USA, 1976, 73, 2023–2027.Search in Google Scholar
Mirzaei E., Faridi-Majidi R., Shokrgozar M.A. et al., Genipin cross-linked electrospun chitosan-based nanofibrous mat as tissue engineering scaffold Genipin cross-linked chitosan nanofibrous scaffold, Nanomed. J., 2014, 1, 37–146.Search in Google Scholar
Mu C., Zhang K., Lin W., Li D., Ring-opening polymerization of genipin and its long-range crosslinking effect on collagen hydrogel, J. Biomed. Mater. Res. – Part A, 2013, 101, 385–393.Search in Google Scholar
Nathan C., Xie Q.W., Regulation of biosynthesis of nitric oxide, Journal of Biological Chemistry, 1994, 13725–13728.Search in Google Scholar
Nguyen T.H., Ventura R., Min Y.K. et al., Genipin Cross--Linked Polyvinyl Alcohol-Gelatin Hydrogel for Bone Regeneration, J. Biomedical Science and Engineering, 2016, 9, 419–429, 28.Search in Google Scholar
Nyambat B., Manga Y.B., Chen C.H., Gankhuyag U., Andi Pratomo W.P., Satapathy M.K. et al., New insight into natural extracellular matrix: Genipin cross-linked adipose derived stem cell extracellular matrix gel for tissue engineering, Int. J. Mol. Sci., 2020, 21, 4864.Search in Google Scholar
Papp L.V., Lu J., Holmgren A. et al., From selenium to selenoproteins: Synthesis, identity, and their role in human health, Antioxidants and Redox Signaling, 2007, 775–806.Search in Google Scholar
Pilehvar-Soltanahmadi Y., Dadashpour M., Mohajeri A. et al., An Overview on Application of Natural Substances Incorporated with Electrospun Nanofibrous Scaffolds to Development of Innovative Wound Dressings Mini-Reviews, Med. Chem., 2018, 18, 414–427.Search in Google Scholar
Rayman M.P., The argument for increasing selenium intake, Proc. Nutr. Soc., 2002, 61, 203–215.Search in Google Scholar
Reverchon E., Cardea S., Rapuano C., A new supercritical fluid-based process to produce scaffolds for tissue replacement, J. Supercrit. Fluids, 2008, 5, 365–373.Search in Google Scholar
Rieger K.A., Birch N.P., Schiffman J.D., Designing electrospun nanofiber mats to promote wound healing-a review, Journal of Materials Chemistry B, 2013, 1, 4531–4541.Search in Google Scholar
Saral Y., Uyar B., Ayar A. et al., Protective effects of topical alpha-tocopherol acetate on UVB irradiation in guinea pigs: Importance of free radicals, Physiol. Res., 2002, 51, 285–290.Search in Google Scholar
Song H., Kim J., Lee H.K. et al., Selenium inhibits migration of murine melanoma cells via down-modulation of IL-18 expression, Int. Immunopharmacol., 2011, 9, 236–242.Search in Google Scholar
Subramanian A., Krishnan U.M., Sethuraman S., Fabrication, characterization and in vitro evaluation of aligned PLGA-PCL nanofibers for neural regeneration, Ann. Biomed. Eng., 2012, 40, 2098–2110.Search in Google Scholar
Sundaramurthi D., Krishnan U.M., Sethuraman S., Electrospun nanofibers as scaffolds for skin tissue engineering, Polymer Reviews, 2014, 54, 348–376.Search in Google Scholar
U_uz A.C., Naziro_lu M., Espino J. et al., Selenium modulates oxidative stress-induced cell apoptosis in human myeloid HL-60 cells through regulation of calcium release and caspase-3 and -9 activities, J. Membr. Biol., 2009, 232, 15–23.Search in Google Scholar
Yang C., Wu X., Zhao Y. et al., Nanofibrous scaffold prepared by electrospinning of poly(vinyl alcohol)/gelatin aqueous solutions, J. Appl. Polym. Sci., 2011, 121, 3047–3055.Search in Google Scholar
Yan L.P., Wang Y.J., Ren L., Wu G., Caridade S.G., Fan J.B. et al., Genipin-cross-linked collagen/chitosan biomimetic scaffolds for articular cartilage tissue engineering applications, J. Biomed. Mater. Res. – Part A, 2010, 95, 465–475.Search in Google Scholar
Yang S.F., Leong K.F., Du H. et al., The design of scaffolds for use in tissue engineering. Part II. Rapid prototyping techniques, Tissue Eng., 2002, 1, 1–11.Search in Google Scholar
Yüksel E., Naziroğlu M., Şahin M., Çiğ B., Involvement of TRPM2 and TRPV1 channels on hyperalgesia, apoptosis and oxidative stress in rat fibromyalgia model: Protective role of selenium, Scientific Reports OPEN, 2017, 7–17543.Search in Google Scholar
Zhang B., Cu Y., Yin G. et al., Synthesis and swelling properties of hydrolyzed cottonseed protein composite superabsorbent hydrogel, Int. J. Polym. Mater. Polym. Biomater., 2010, 59, 1018–1032.Search in Google Scholar
Zhaoa X., Sun X., Yildirimera L., Langa Q., Yuan Z.L., Zhenga R., Zhangh Y., Cuia W., Annabia N., Khademhosseinia A., Cell infiltrative hydrogel fibrous scaffolds for accelerated wound healing, Acta Biomater., 2017, 49, 66–77.Search in Google Scholar
Zhong S.P., Zhang Y.Z., Lim C.T., Tissue scaffolds for skin wound healing and dermal reconstruction, Wiley Interdisciplinary Reviews, Nanomedicine and Nanobiotechnology, 2010, 2, 510–525.Search in Google Scholar
Zhang Y.Z., Venugopal J., Huang Z.M., Lim C.T., Ramakrishna S., Crosslinking of the electrospun gelatin nanofibers, Polymer (Guildf), 2006, 47, 2911–2917.Search in Google Scholar
Zhou Y., Yang D., Chen X. et al., Electrospun water-soluble carboxyethyl chitosan/poly(vinyl alcohol) nanofibrous membrane as potential wound dressing for skin regeneration, Biomacromolecules, 2008, 1, 349–354.Search in Google Scholar
Xiao J., Duan H., Liu Z. et al., Construction of the recellularized corneal stroma using porous acellular corneal scaffold, Biomaterials, 2011, 32:6962–71.Search in Google Scholar
Waldeck H., Chung A.S., Kao W.J., Interpenetrating polymer networks containing gelatin modified with PEGylated RGD and soluble KGF: Synthesis, characterization, and application in in vivo critical dermal wound, J. Biomed. Mater. Res. – Part A, 2007, 82, 861–871.Search in Google Scholar