Page 306 - IJB-9-3
P. 306

International Journal of Bioprinting                  3D bioprinting as a prospective therapeutic strategy for LSCD



               Use of magnetically oriented orthogonal collagen scaffolds   94.  Ahmad S, Stewart R, Yung S,  et al., 2007, Differentiation
               for  hemi-corneal reconstruction and  regeneration.   of human embryonic stem cells into corneal epithelial-like
               Biomaterials, 31:8313–8322.                        cells by in vitro replication of the corneal epithelial stem cell
                                                                  niche. Stem Cells, 25:1145–1155.
            85.  Mi S, Chen B, Wright B, et al., 2010, Ex vivo construction
               of an artificial ocular surface by combination of corneal   95.  Rama P, Matuska S, Paganoni G, et al., 2010, Limbal stem-
               limbal epithelial cells and a compressed collagen scaffold   cell therapy and long-term corneal regeneration. N Engl J
               containing keratocytes. Tissue Eng Part A, 16:2091–2100.  Med, 363:147–155.
            86.  Barbaro V, Ferrari S, Fasolo A, et al., 2009, Reconstruction of   96.  Nishida K, Yamato M, Hayashida Y,  et  al., 2004, Corneal
               a human hemicornea through natural scaffolds compatible   reconstruction with tissue-engineered cell sheets composed
               with the growth of corneal epithelial stem cells and stromal   of autologous oral mucosal epithelium.  N Engl J Med,
               keratocytes. Mol Vis, 15:2084–2093.                351:1187–1196.
            87.  Mi S, Connon CJ, 2013, The formation of a tissue-engineered   97.  Mahdavi SS, Abdekhodaie MJ, Kumar H,  et al., 2020,
               cornea using plastically compressed collagen scaffolds and   Stereolithography 3D bioprinting method for fabrication
               limbal stem cells, in Corneal Regenerative Medicine: Methods   of human corneal stroma equivalent.  Ann  Biomed  Eng,
               and Protocols Methods in Molecular Biology, B Wright, CJ   48:1955–1970.
               Connon (eds), Humana Press, Totowa, NJ, 143–155.  98.  Kim H, Jang J, Park J, et al., 2019, Shear-induced alignment
            88.  Gomes JÁP, Monteiro BG, Melo GB,  et al., 2010 Corneal   of collagen fibrils using 3D cell printing for corneal stroma
               reconstruction with tissue-engineered cell sheets composed   tissue engineering. Biofabrication, 11:035017.
               of human immature dental pulp stem cells. Invest Ophthalmol   99.  Kong B, Chen Y, Liu R, et al., 2020, Fiber reinforced GelMA
               Vis Sci, 51:1408–1414.                             hydrogel to induce the regeneration of corneal stroma. Nat
            89.  Ma Y, Xu Y, Xiao Z, et al., 2006, Reconstruction of chemically   Commun, 11(1):1435.
               burned rat corneal surface by bone marrow–derived human   100. Duarte  Campos  DF,  Rohde  M,  Ross  M,  et al.,  2019,
               mesenchymal stem cells. Stem Cells, 24(2):315–321.  Corneal  bioprinting  utilizing  collagen-based  bioinks  and
            90.  Ye J, Yao K, Kim JC, 2006, Mesenchymal stem cell   primary human keratocytes.  J Biomed Mater Res Part A,
               transplantation in a rabbit corneal alkali burn model:   107:1945–1953.
               Engraftment and involvement in wound healing.  Eye   101. Bektas CK, Hasirci V, 2019, Cell loaded 3D bioprinted
               (London, England), 20(4):482–490.                  GelMA hydrogels for corneal stroma engineering. Biomater
            91.  Fernandes-Cunha GM, Na K-S, Putra I, et al., 2019, Corneal   Sci, 8:438–449.
               wound healing effects of mesenchymal stem cell secretome   102. Ulag S, Ilhan E, Sahin A, et al., 2020, 3D printed artificial
               delivered within a viscoelastic gel carrier. Stem Cells Transl   cornea for corneal stromal transplantation.  Eur Polym J,
               Med, 8:478–489.                                    133:109744.
            92.  Hayashi R, Ishikawa Y, Ito M,  et  al., 2012, Generation of   103. Wu Z, Kong B, Liu R, et al., 2018, Engineering of corneal
               corneal epithelial cells from induced pluripotent stem cells   tissue through an aligned PVA/collagen composite
               derived from human dermal fibroblast and corneal limbal   nanofibrous  electrospun  scaffold.  Nanomaterials  (Basel),
               epithelium. PLoS One, 7:e45435.                    8:E124.
            93.  Yoshida S, Yasuda M, Miyashita H, et al., 2011, Generation   104. Kim H, Jang J, Kim H-K, et al., 2018, 3D cell printed corneal
               of stratified squamous epithelial progenitor cells from   stromal analogues for corneal tissue engineering. 2018 IEEE
               mouse induced pluripotent stem cells. PLoS One, 6:e28856.  International Conference on Cyborg and Bionic Systems
                                                                  (CBS), 191–194.





















            Volume 9 Issue 3 (2023)                        298                          https://doi.org/10.18063/ijb.710
   301   302   303   304   305   306   307   308   309   310   311