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1.
J Refract Surg ; 36(6): 406-413, 2020 Jun 01.
Article in English | MEDLINE | ID: mdl-32521029

ABSTRACT

PURPOSE: To evaluate a new non-ablative and adjustable procedure for laser ablative refractive corneal surgery in hyperopia using the injection of a biocompatible liquid filler material into a stromal pocket. METHODS: A total of 120 stromal pockets were created using a clinical femtosecond laser system in 96 rabbit corneoscleral discs and 24 whole globes. Pockets were cut at a depth of 120 or 250 µm below the epithelial surface. Hyaluronic acid was injected manually into the pocket. To determine the refractive changes, three-dimensional optical coherence tomography images and a specifically developed picture recognition Matlab (The Mathworks) routine were used. RESULTS: After injection, a steepening of the anterior and flattening of the posterior corneal surface was observed, which led to hyperopic correction. The two main factors determining the amount of correction were the pocket depth and the injected volume. After the pocket was homogeneously filled, an initial refractive increase was observed, followed by a linear relation between the injected volume and the refraction increase. CONCLUSIONS: This possible clinical protocol for controlled refraction correction of hyperopia suggests a potential readjustable clinical application. [J Refract Surg. 2020;36(6):406-414.].


Subject(s)
Corneal Stroma/drug effects , Hyaluronic Acid/administration & dosage , Hyperopia/drug therapy , Viscosupplements/administration & dosage , Animals , Biocompatible Materials/administration & dosage , Corneal Stroma/diagnostic imaging , Corneal Topography , Hyperopia/diagnostic imaging , Hyperopia/physiopathology , Injections, Intraocular , Rabbits , Refraction, Ocular/physiology , Tomography, Optical Coherence , Visual Acuity/physiology
2.
Invest Ophthalmol Vis Sci ; 60(6): 1845-1852, 2019 05 01.
Article in English | MEDLINE | ID: mdl-31042790

ABSTRACT

Purpose: Rose bengal (RB)-photosensitized protein crosslinking has been proposed for several applications in the eye. This study identifies oxygen-dependent and oxygen-independent mechanistic pathways in cornea for RB-photosensitized crosslinking to enhance its efficiency for ocular treatments. Methods: Rabbit corneas ex vivo were stained with 1 mM RB and irradiated at 532 nm. RB photobleaching, measured by spectrophotometry and linear tensile strength testing, were performed with and without oxygen present. The effects of sodium azide, D2O, arginine, and ascorbate were used to discriminate between mechanisms involving energy transfer (forming singlet oxygen) and electron transfer (forming radical ions). The influence of corneal depth on RB photobleaching was determined using inclined corneal incisions. Results: RB photobleaching was greater in the presence than the absence of oxygen, enhanced by D2O and partially inhibited by azide, indicating a singlet oxygen pathway. Photobleaching without oxygen was enhanced by arginine and ascorbate and accompanied by a shift in the absorption to shorter wavelengths, suggesting that electron transfer initiates RB photodecomposition. The RB-photosensitized tensile strength increase in air was enhanced by D2O and inhibited by azide. In an O2-free environment, arginine was required for an increase in tensile strength, which matched that attained by irradiation in air without arginine, suggesting an efficient electron transfer pathway. Rapid photobleaching was observed below 80 to 120 µm only when arginine was present. Conclusions: These results indicate that RB photosensitizes crosslinking in cornea by both singlet oxygen and electron transfer mechanisms and that adding enhancers may increase the efficiency of this treatment.


Subject(s)
Collagen/pharmacology , Cornea/metabolism , Cross-Linking Reagents/pharmacology , Light , Photosensitizing Agents/pharmacology , Rose Bengal/pharmacology , Animals , Cornea/cytology , Cornea/drug effects , Fluorescent Dyes/pharmacology , Models, Animal , Rabbits , Spectrophotometry
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