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1.
Mater Sci Eng C Mater Biol Appl ; 114: 111075, 2020 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-32993970

RESUMEN

Biological membranes are currently used in Ophthalmology in order to treat different ocular disorders. These membranes have different properties such as cellular biocompatibility and promoting wound healing. Moreover, intrinsic antimicrobial properties could also be desirable because it would allow their use reducing the risk of infections. Graphene and its derivatives are promising biomaterials that already proved their bactericidal effect. However, their clinical use is limited due to the controversial results regarding their toxicity. In this work, we have developed and characterized a reduced graphene oxide membrane (rGOM) for its use in ocular Regenerative Medicine, and studied its in vitro and in vivo biocompatibility and genotoxicity with different types of human ocular cells. We proved that rGOM allowed the growth of different ocular cells without inducing in vitro or in vivo cytotoxicity or genotoxicity in the short-term. These results indicate that rGOM may be a promising candidate in Regenerative Medicine for the treatment of different ocular pathologies.


Asunto(s)
Grafito , Materiales Biocompatibles/farmacología , Ojo , Humanos , Medicina Regenerativa
2.
PLoS One ; 11(12): e0167578, 2016.
Artículo en Inglés | MEDLINE | ID: mdl-27907157

RESUMEN

Corneal keratoplasty (penetrating or lamellar) using cadaveric human tissue, is nowadays the main treatment for corneal endotelial dysfunctions. However, there is a worldwide shortage of donor corneas available for transplantation and about 53% of the world's population have no access to corneal transplantation. Generating a complete cornea by tissue engineering is still a tough goal, but an endothelial lamellar graft might be an easier task. In this study, we developed a tissue engineered corneal endothelium by culturing human corneal endothelial cells on a human purified type I collagen membrane. Human corneal endothelial cells were cultured from corneal rims after corneal penetrating keratoplasty and type I collagen was isolated from remnant cancellous bone chips. Isolated type I collagen was analyzed by western blot, liquid chromatography -mass spectrometry and quantified using the exponentially modified protein abundance index. Later on, collagen solution was casted at room temperature obtaining an optically transparent and mechanically manageable membrane that supports the growth of human and rabbit corneal endothelial cells which expressed characteristic markers of corneal endothelium: zonula ocluddens-1 and Na+/K+ ATPase. To evaluate the therapeutic efficiency of our artificial endothelial grafts, human purified type I collagen membranes cultured with rabbit corneal endothelial cells were transplanted in New Zealand white rabbits that were kept under a minimal immunosuppression regimen. Transplanted corneas maintained transparency for as long as 6 weeks without obvious edema or immune rejection and maintaining the same endothelial markers that in a healthy cornea. In conclusion, it is possible to develop an artificial human corneal endothelial graft using remnant tissues that are not employed in transplant procedures. This artificial endothelial graft can restore the integrality of corneal endothelium in an experimental model of endothelial dysfunction. This strategy could supply extra endothelial tissue and compensate the deficit of cadaveric grafts for corneal endothelial transplantation.


Asunto(s)
Distrofias Hereditarias de la Córnea/terapia , Trasplante de Córnea , Endotelio Corneal/trasplante , Ingeniería de Tejidos , Animales , Colágeno Tipo I/metabolismo , Colágeno Tipo I/uso terapéutico , Córnea/patología , Distrofias Hereditarias de la Córnea/fisiopatología , Modelos Animales de Enfermedad , Endotelio Corneal/metabolismo , Endotelio Corneal/patología , Humanos , Queratoplastia Penetrante/métodos , Conejos , ATPasa Intercambiadora de Sodio-Potasio/metabolismo , Proteína de la Zonula Occludens-1/metabolismo
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