Page 137 - IJB-10-2
P. 137

International Journal of Bioprinting                                  3D bioprinting for corneal regeneration




               cornea  in  aging,  disease,  and  photochemical  crosslinking.   recombinant human collagen scaffold.  Biomaterials.
               Front Bioeng Biotechnol. 2019;7:66.                2014;35(8):2420-2427.
               doi: 10.3389/fbioe.2019.00066                      doi: 10.1016/j.biomaterials.2013.11.079
            97.  Benzvi A, Rodrigues MM, Krachmer JH,  Fujikawa LS.   109.  Nishida K, Yamato M, Hayashida Y, et al. Corneal reconstruction
               Immunohistochemical characterization of extracellular-  with tissue-engineered cell sheets composed of autologous oral
               matrix in the developing human cornea.  Curr Eye Res.   mucosal epithelium. N Engl J Med. 2004;351(12):1187-1196.
               1986;5(2):105-117.                                 doi: 10.1056/Nejmoa040455
               doi: 10.3109/02713688609015099
                                                               110. Kobayashi T, Kan K, Nishida K,  Yamato M, Okano T.
            98.  Millin JA, Golub BM, Foster CS. Human basement   Corneal regeneration by transplantation of corneal epithelial
               membrane components of keratoconus and normal corneas.   cell sheets fabricated with automated cell culture system in
               Invest Ophthalmol Vis Sci. 1986;27(4):604-607.     rabbit model. Biomaterials. 2013;34(36):9010-9017.
            99.  Torricelli AA, Singh V, Santhiago MR,  Wilson SE. The      doi: 10.1016/j.biomaterials.2013.07.065
               corneal epithelial basement membrane: structure, function,   111. Lawrence BD, Pan Z, Liu AH, Kaplan DL, Rosenblatt MI.
               and disease.  Invest Ophthalmol Vis Sci.  2013;54(9):   Human corneal limbal epithelial cell response to varying
               6390-6400.                                         silk film geometric topography in vitro.  Acta Biomater.
               doi: 10.1167/iovs.13-12547                         2012;8(10):3732-3743.
            100. Newsome DA, Foidart JM, Hassell JR,  Krachmer JH,      doi: 10.1016/j.actbio.2012.06.009
               Rodrigues MM, Katz SI. Detection of specific collagen types   112. Levis  HJ, Massie I,  Dziasko  MA,  Kaasi A,  Daniels JT.
               in normal and keratoconus corneas. Invest Ophthalmol Vis   Rapid tissue engineering of biomimetic human corneal
               Sci. 1981;20(6):738-750.                           limbal crypts with 3D niche architecture.  Biomaterials.
            101. Tsuchiya S, Tanaka M, Konomi H, Hayashi T. Distribution   2013;34(35):8860-8868.
               of  specific collagen  types  and  fibronectin  in  normal  and      doi: 10.1016/j.biomaterials.2013.08.002
               keratoconus corneas. Jpn J Ophthalmol. 1986;30(1):14-31.   113. Mi SL, Chen B, Wright B, Connon CJ. Ex vivo construction of
            102. Dua HS, Faraj LA, Said DG, Gray T, Lowe J. Human corneal   an artificial ocular surface by combination of corneal limbal
               anatomy redefined: a novel pre-Descemet’s layer (Dua’s   epithelial cells and a compressed collagen scaffold containing
               layer). Ophthalmology. 2013;120(9):1778-1785.      keratocytes. Tissue Eng Part A. 2010;16(6):2091-2100.
               doi: 10.1016/j.ophtha.2013.01.018                  doi: 10.1089/ten.tea.2009.0748
            103. Tamura Y, Konomi H, Sawada H, Takashima S, Nakajima   114. Duan X, Sheardown H. Dendrimer crosslinked collagen as
               A. Tissue distribution of type VIII collagen in human   a corneal tissue engineering scaffold: mechanical properties
               adult and fetal eyes. Invest Ophthalmol Vis Sci. 1991;32(9):   and corneal epithelial cell interactions.  Biomaterials.
               2636-2644.                                         2006;27(26):4608-4617.
                                                                  doi: 10.1016/j.biomaterials.2006.04.022
            104. Luo H, Lu Y, Wu T, Zhang M, Zhang Y, Jin Y. Construction
               of tissue-engineered cornea composed of amniotic epithelial   115. Li FF, Carlsson D, Lohmann C,  et al. Cellular and nerve
               cells and acellular porcine cornea for treating corneal alkali   regeneration  within  a  biosynthetic  extracellular  matrix
               burn. Biomaterials. 2013;34(28):6748-6759.         for corneal transplantation.  Proc Natl Acad Sci USA.
               doi: 10.1016/j.biomaterials.2013.05.045            2003;100(26):15346-15351.
                                                                  doi: 10.1073/pnas.2536767100
            105. Rafat M, Li F, Fagerholm P, et al. PEG-stabilized carbodiimide
               crosslinked collagen-chitosan hydrogels for corneal tissue   116. Liu W, Merrett K, Griffith M,  et al. Recombinant human
               engineering. Biomaterials. 2008;29(29):3960-3972.   collagen for tissue engineered corneal substitutes.
               doi: 10.1016/j.biomaterials.2008.06.017            Biomaterials. 2008;29(9):1147-1158.
                                                                  doi: 10.1016/j.biomaterials.2007.11.011
            106. Alaminos M, Del Carmen Sanchez-Quevedo M, Munoz-
               Avila  JI,  et  al.  Construction  of  a  complete  rabbit  cornea   117. Torbet J, Malbouyres M, Builles N, et al. Orthogonal scaffold
               substitute using a fibrin-agarose scaffold. Invest Ophthalmol   of magnetically aligned collagen lamellae for corneal stroma
               Vis Sci. 2006;47(8):3311-3317.                     reconstruction. Biomaterials. 2007;28(29):4268-4276.
               doi: 10.1167/iovs.05-1647                          doi: 10.1016/j.biomaterials.2007.05.024
            107. Fagerholm P, Lagali NS, Merrett K,  et al. A biosynthetic   118. Builles N, Janin-Manificat H, Malbouyres M, et al. Use of
               alternative to human donor tissue for inducing corneal   magnetically  oriented  orthogonal  collagen  scaffolds  for
               regeneration: 24-month follow-up of a phase 1 clinical study.   hemi-corneal reconstruction and regeneration. Biomaterials.
               Sci Transl Med. 2010;2(46):46ra61.                 2010;31(32):8313-8322.
               doi: 10.1126/scitranslmed.3001022                  doi: 10.1016/j.biomaterials.2010.07.066
            108. Fagerholm P, Lagali NS, Ong JA,  et al. Stable corneal   119. Crabb RA, Chau EP, Evans MC,  Barocas VH, Hubel A.
               regeneration four years after  implantation  of  a cell-free   Biomechanical and microstructural characteristics of a


            Volume 10 Issue 2 (2024)                       129                                doi: 10.36922/ijb.1669
   132   133   134   135   136   137   138   139   140   141   142