Literature DB >> 14703712

Collagen-poly(N-isopropylacrylamide)-based membranes for corneal stroma scaffolds.

Shigeto Shimmura1, Charles J Doillon, May Griffith, Masatsugu Nakamura, Edith Gagnon, Akemi Usui, Naoshi Shinozaki, Kazuo Tsubota.   

Abstract

PURPOSE: To investigate the feasibility of using the biocompatibility of collagen-based blended biomaterials as cell-delivery systems in ocular surface reconstruction in vivo.
METHODS: Collagen-based composites that were blended with synthetic acrylamide-based polymers [poly(N-isopropylacrylamide), pNIPAAm] were transplanted into corneal pockets of white rabbits, with a 3-mm epithelial window. Epithelial cells were allowed to migrate onto the polymer. Transplanted eyes were examined daily for up to 30 days, after which animals were killed for histologic examination. Immunohistochemistry was performed for vimentin, alpha-smooth muscle actin (alpha-SMA), CD4, and CD8. Gold-chloride staining was performed to observe neuronal regrowth. Human amniotic membranes (AMs) and sham-operated corneas served as controls. All animals received topical antibiotics (levofloxacin) without the use of steroids or other immunosuppressive agents.
RESULTS: The pNIPAAm polymer allowed smooth epithelialization of the cornea, which was similar to the epithelialization observed in sham controls and AM-transplanted eyes. Histology revealed that epithelium overlying the polymer was bundled into several layers, without the orientation observed with AM and sham controls. The polymer gradually thinned and was gradually replaced by host tissue. Vimentin- and alpha-SMA-positive cells were found in stromal pockets up to 1 month following polymer transplantation. These cells were responsible for slight subepithelial haze near the wound edge. CD4- and CD8-positive lymphocytes were also observed in the vicinity of the polymer. Gold-chloride staining showed nerve regrowth in the wound edge after 1 month and subepithelial branches after 3 months.
CONCLUSION: Collagen-pNIPAAm blended polymers may be effective as biomaterials to be used in the early stages of lamellar stromal replacement

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Year:  2003        PMID: 14703712     DOI: 10.1097/00003226-200310001-00012

Source DB:  PubMed          Journal:  Cornea        ISSN: 0277-3740            Impact factor:   2.651


  6 in total

1.  Biosynthetic corneal substitute implantation in dogs.

Authors:  Ellison Bentley; Christopher J Murphy; Fengfu Li; David J Carlsson; May Griffith
Journal:  Cornea       Date:  2010-08       Impact factor: 2.651

Review 2.  Evaluation of corneal cell growth on tissue engineering materials as artificial cornea scaffolds.

Authors:  Hai-Yan Wang; Rui-Hua Wei; Shao-Zhen Zhao
Journal:  Int J Ophthalmol       Date:  2013-12-18       Impact factor: 1.779

3.  Effect of substrate storage conditions on the stability of "Smart" films used for mammalian cell applications.

Authors:  Blake M Bluestein; Jamie A Reed; Heather E Canavan
Journal:  Appl Surf Sci       Date:  2016-09-01       Impact factor: 6.707

Review 4.  Development of hydrogel-based keratoprostheses: a materials perspective.

Authors:  David Myung; Pierre-Emile Duhamel; Jennifer R Cochran; Jaan Noolandi; Christopher N Ta; Curtis W Frank
Journal:  Biotechnol Prog       Date:  2008-04-19

5.  Decellularized human cornea for reconstructing the corneal epithelium and anterior stroma.

Authors:  Maryam A Shafiq; Richard A Gemeinhart; Beatrice Y J T Yue; Ali R Djalilian
Journal:  Tissue Eng Part C Methods       Date:  2011-12-22       Impact factor: 3.056

6.  Microkeratome assisted deep lamellar keratoprosthesis.

Authors:  S Shimmura; H Miyashita; Y Uchino; T Taguchi; H Kobayashi; J Shimazaki; J Tanaka; K Tsubota
Journal:  Br J Ophthalmol       Date:  2006-04-05       Impact factor: 4.638

  6 in total

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