LS is a group of mitochondrial disorders with variable ophthalmologic manifestations, the most frequent being strabismus in this study. Ptosis could be an initial sign in patients with LS and these patients can be easily misdiagnosed as having juvenile myasthenia gravis.
Peri-operative application of diquafosol three per cent ophthalmic solution may prevent dry eye-related ocular surface changes accompanied by improvement of ocular symptom. No definite changes in corneal aberrations were noted.
Purpose: To investigate the causes of acute spontaneous submacular hemorrhage with indocyanine green angiography (ICGA). Methods: Retrospective observation case series. A total of 51 eyes from 51 patients with newly developed spontaneous submacular hemorrhage were enrolled. Best-corrected visual acuity (BCVA), fundus photography, fluorescein angiography, spectral domain optical coherence tomography (OCT), and ICGA at baseline were analyzed. The extent of hemorrhage using fundus photography, height of hemorrhage, and central foveal thickness measured by OCT was analyzed to compare the diagnostic and nondiagnostic groups. Results: The mean logarithm of the minimum angle of resolution (logMAR) BCVA at presentation was 1.21 ± 0.74 (Snellen equivalent, 20/324); the mean follow-up period was 23.9 ± 23.9 months. The cause of submacular hemorrhage was diagnosed in 43 of 51 eyes (84.3%) based on ICGA at presentation. The initial diagnoses were correct in 93% of eyes. In 3 cases, the initial diagnosis of age-related macular degeneration (AMD) was changed to polypoidal choroidal vasculopathy (PCV) based on follow-up ICGA. The central foveal thickness was significantly greater in the nondiagnostic group (1,102.4 vs. 666.7 μm, respectively; p = 0.008). The most common cause of submacular hemorrhage was neovascular AMD (52.9%), followed by PCV (37.3%), macroaneurysm (5.9%), and lacquer crack (3.9%). The mean final visual acuity was generally worse in patients with submacular hemorrhage with typical AMD (visual acuity 20/618) or PCV (visual acuity 20/240) compared to that in patients with retinal macroaneurysm (visual acuity 20/100) or lacquer crack (visual acuity 20/72). Conclusions: ICGA at initial presentation helps identify causes of submacular hemorrhage, allowing differential treatment approaches that may improve outcomes and safety.
Purpose:To determine the incidence of steroid-induced ocular hypertension following myopic vision correction. Methods: This study retrospectively reviewed the medical records of 6,087 patients (12,164 eyes) who underwent myopic refractive surgery (laser-assisted in-situ keratomileusis [LASIK]/ photorefractive keratectomy [PRK]/phakic intraocular lens [IOL] implantation) at Eyereum Eye Clinic between July 2011 and February 2013. Ocular hypertension was defined when postoperative intraocular pressure (IOP) was increased more than 30% compared to predicted IOP adjusted according to corneal thickness. All preoperative IOPs were measured using Goldmann applanation tonometer (GAT). Postoperative IOPs were measured using non-contact tonometer first and with GAT when the IOP was suspiciously increased. Results: Steroid-induced ocular hypertension after a myopic refractive surgery occurred in 680 eyes (5.58%) of 404 patients (6.64%). The incidence based on surgery was LASIK (0.06%, 2/3, 514 eyes) followed by PRK (7.63%, 575/7,533 eyes) and phakic IOL implantation (9.2%, 103/1,117 eyes). The average increased IOP level in patients with steroid-induced ocular hypertension was 5.62 ± 3.73 mm Hg after PRK and 9.35 ± 4.95 mm Hg after phakic IOL implantation. A statistically significantly higher change in IOP was observed in the phakic IOL group (p < 0.001). However, the PRK group had a longer treatment period for ocular hypertension and used more antiglaucoma medications than the phakic IOL group (p < 0.05). Most patients with ocular hypertension were successfully treated with cessation of topical steroid or use of antiglaucoma medications. Only 2 eyes required glaucoma surgery because IOP was not controlled. Conclusions: IOP measurements should be initiated no later than 1 week after surgery because steroid-induced ocular hypertension following myopic refractive surgery can occur in approximately 5.58% of patients and most cases of ocular hypertension can be controlled with careful follow-up and use of antiglaucoma medications.
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