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      Effect of corneal epithelium on ultraviolet-A and riboflavin absorption Translated title: Efeito do epitélio na absorção corneana de raios ultravioleta-A e riboflavina

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          Abstract

          PURPOSE: To determine if the corneal epithelium prevents the collagen cross-linking effect. Using immunofluorescence microscopy after CXL, we indirectly analyzed the role of the epithelium as ultraviolet-A (UVA) shield as well as a barrier to riboflavin penetration. METHODS: Fifteen freshly enucleated porcine eyes were divided into 3 groups. The corneal epithelium was kept intact in all groups. Five eyes served as control (Group 1). On group 2, eyes received tetracaine anesthetic drops and topical 0.1% riboflavin solution (10 mg riboflavin-5-phosphate in 10 mL 20% dextran-T-500). On Group 3, riboflavin was injected into the anterior chamber to allow penetration of the drug through the endothelium. Groups 2 and 3 were exposed to UVA (365 nm, 3 mW/cm²) for 30 minutes. Ultra-thin sections (8 µm) of the corneas were stained with anti-collagen type I and DAPI (4,6-diamidino-2-fenilindole dihydrocloride) and analyzed with fluorescence microscopy. RESULTS: Corneas treated with UVA irradiation and intracameral injection of riboflavin (Group 3) showed greater pattern of collagen organization compared to groups 1 (Control) and 2 (riboflavin and tetracaine eye drops). A yellow stromal staining, which represents the riboflavin diffusion into the stroma, was only observed in eyes injected with riboflavin into the anterior chamber. CONCLUSION: Using immunofluorescence microscopy in porcine corneas, we demonstrated that the corneal epithelium reduces the effectiveness of CXL by preventing the penetration of the drug and not by limiting the UVA transmittance. An inadequate intrastromal concentration of riboflavin may impair CXL effect.

          Translated abstract

          OBJETIVO: Determinar se o epitélio corneano pode impedir ou diminuir o efeito do tratamento com "cross-linking" (CXL). Por meio de microscopia por imunofluorescência, foi indiretamente analisado o efeito do epitélio como escudo aos raios ultravioleta-A (UVA), assim como barreia à penetração da riboflavina. MÉTODOS: Quinze olhos enucleados de porcos foram divididos em 3 grupos. O epitélio corneano foi mantido intacto em todos os grupos. Cinco olhos serviram como controle (Grupo 1). No grupo 2, os olhos foram instilados com colírio anestésico de tetracaína, assim como colírio de riboflavina 0,1% (10 mg de riboflavina-5-fosfato em 10 ml de dextran 20% T-500). No grupo 3, solução de riboflavina foi injetada na câmara anterior para permitir a penetração da droga através do endotélio. Os grupos 2 e 3 foram então expostos à radiação UVA (365 nm, 3 mW/cm²) por 30 minutos. Subsequentemente, cortes ultrafinos (8 µm) das córneas foram marcados com anticolágeno tipo I e DAPI (4,6-diamidino-2-fenilindole dihydrocloride) e analisados com microscópio de imunofluorescência. RESULTADOS: As córneas que receberam injeção intracameral de riboflavina e foram irradiadas com UVA (Grupo 3) mostraram um padrão maior de organização das fibras de colágeno em relação aos grupos 1 (Controle) e 2 (instiladas com colírio anestésico e de riboflavina). Macroscopicamente, a coloração amarelada do estroma, que representa a difusão da riboflavina, foi apenas observada nos olhos que receberam riboflavina intracameral. CONCLUSÃO: Foi demonstrado, através de microscopia por imunofluorescência em córneas de porcos, que o epitélio corneano íntegro diminui a efetividade do CXL por reduzir a penetração da riboflavina, e não por impedir a penetração dos raios UVA. Uma concentração intraestromal inadequada de riboflavina limita o efeito do tratamento.

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          Most cited references55

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          Riboflavin/ultraviolet-a–induced collagen crosslinking for the treatment of keratoconus

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            Stress-strain measurements of human and porcine corneas after riboflavin-ultraviolet-A-induced cross-linking.

            To evaluate the biomechanical effect of combined riboflavin-ultraviolet A (UVA) treatment on porcine and human corneas. Department of Ophthalmology, Technical University of Dresden, Dresden, Germany. Corneal strips from 5 human enucleated eyes and 20 porcine cadaver corneas were treated with the photosensitizer riboflavin and irradiated with 2 double UVA diodes (370 nm, irradiance = 3 mW/cm2) for 30 minutes. After cross-linking, static stress-strain measurements of the treated and untreated corneas were performed using a microcomputer-controlled biomaterial tester with a prestress of 5 x 10(3) Pa. There was a significant increase in corneal rigidity after cross-linking, indicated by a rise in stress in treated porcine corneas (by 71.9%) and human corneas (by 328.9%) and in Young's modulus by the factor 1.8 in porcine corneas and 4.5 in human corneas. The mean central corneal thickness was 850 microm +/- 70 (SD) in porcine corneas and 550 +/- 40 microm in human corneas. Riboflavin-UVA-induced collagen cross-linking led to an increase in mechanical rigidity in porcine corneas and an even greater increase in human corneas. As collagen cross-linking is maximal in the anterior 300 microm of the cornea, the greater stiffening effect in human corneas can be explained by the relatively larger portion of the cornea being cross-linked in the overall thinner human cornea.
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              Safety of UVA-riboflavin cross-linking of the cornea.

              To study potential damage to ocular tissue during corneal collagen cross-linking (X-linking) by means of the riboflavin/UVA (370 nm) approach. Comparison of the currently used technique with officially accepted guidelines regarding direct UV damage and the damage created by the induced free radicals (photochemical damage). The currently used UVA radiant exposure of 5.4 mJ/cm and the corresponding irradiance of 3 mW/cm2 is below the known damage thresholds of UVA for the corneal endothelium, lens, and retina. Regarding the photochemical damage caused by the free radicals, the damage thresholds for keratocytes and endothelial cells are 0.45 and 0.35 mW/cm, respectively. In a 400-microm-thick cornea saturated with riboflavin, the irradiance at the endothelial level was 0.18 mW/cm, which is a factor of 2 smaller than the damage threshold. After corneal X-linking, the stroma is depopulated of keratocytes approximately 300 microm deep. Repopulation of this area takes up to 6 months. As long as the cornea treated has a minimum thickness of 400 microm (as recommended), the corneal endothelium will not experience damage, nor will deeper structures such as lens and retina. The light source should provide a homogenous irradiance, avoiding hot spots.
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                Author and article information

                Contributors
                Role: ND
                Role: ND
                Role: ND
                Role: ND
                Role: ND
                Journal
                abo
                Arquivos Brasileiros de Oftalmologia
                Arq. Bras. Oftalmol.
                Conselho Brasileiro de Oftalmologia (São Paulo, SP, Brazil )
                0004-2749
                1678-2925
                October 2011
                : 74
                : 5
                : 348-351
                Affiliations
                [02] São Paulo SP orgnameUniversidade Federal de São Paulo orgdiv1Department of Biochemistry orgdiv2Molecular Biology Division Brazil
                [01] São Paulo SP orgnameUniversidade Federal de São Paulo orgdiv1Department of Ophthalmology Brazil
                Article
                S0004-27492011000500008
                10.1590/S0004-27492011000500008
                29d59a58-5adb-40fa-8b17-f22c48a3a2c9

                This work is licensed under a Creative Commons Attribution 4.0 International License.

                History
                : 02 February 2011
                : 23 September 2011
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 30, Pages: 4
                Product

                SciELO Brazil


                Epithelium, corneal,Riboflavin,Cross-linking reagents,Suíno,Raios ultravioleta,Agentes fotossensibilizantes,Microscopia de imunofluorescência,Epitélio corneano,Riboflavina,Microscopy, immunofluorescence,Reagentes para ligações cruzadas,Swine,Ultraviolet rays,Photosensitizing agents

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