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PubMed · 11394474

Recent developments in vitreoretinal surgery.

Abstract

In the past three decades, a great improvement has occurred in microsurgical techniques used in the management of various eye diseases involving retina and vitreous. Advances in instrumentation has made the surgery easier and refined. The instruments used are narrated widely in this article. Various vitreous substitutes have been developed and are required in vitreoretinal surgery. These are gases, silicone oil, perfluorocarbon liquids and fluorosilicone oil. Anterior segment indications for vitreous surgery are: Vitreous loss during cataract surgery, thick after cataracts that can't be managed with Nd: YAG capsulotomy, vitreocorneal touch, updrawn pupils, incarcerated vitreous in the wound causing cystoid macular oedema, malignant glaucoma, penetrating keratoplasty in aphakic patients, congenital cataracts and filtering procedures in aphakic eyes. In posterior segment indications, vitrectomy is useful in penetrating trauma, haemorrhage, retinal deetachment, intra-ocular foreign bodies and infection endophthalmitis Macular surgery involves peeling of epimacular membrane or proliferation, treating vitreomacular traction syndrome, idiopathic macular holes, retinal detachment associated with optic pit, evacuation of submacular haemorrhage and excision of choroidal neovascular membranes. Available options to treat retinal detachments are pneumatic retinopexy, scleral buckling and vitreous surgery. Proliferative vitreoretinopathy remains the important cause of failure and occurs in about 8-10% cases after retinal detachment. Vitreous surgery for ocular trauma, vitrectomy for proliferative diabetic retinopathy, macular hole surgery, submacular surgery are also discussed in detail.

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BibTeXRIS

T Sharma, L Gopal. 2000. Recent developments in vitreoretinal surgery.. https://pubmed.ncbi.nlm.nih.gov/11394474/

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Proteome analysis of human vitreous proteins.

PURPOSE: Various protein contents such as enzymes, growth factors, and structural components are responsible for biological activities in organs. We have created a map of vitreous proteins and developed a proteome analysis of human vitreous samples to understand the underlying molecular mechanism and to provide clues to new therapeutic approaches in eyes with proliferative diabetic retinopathy (PDR). METHODS: Vitreous and serum samples were obtained from subjects with idiopathic macular hole (MH, 26 cases) and PDR (33 cases). The expressed proteins in the samples were separated by two-dimensional (2-D) polyacrylamide gel electrophoresis. Protein spots were visualized by silver staining, and their expression patterns were analyzed. Some protein spots of concern were excised from the 2-D gels, digested in situ with trypsin, and analyzed by mass spectrometry. RESULTS: More than 400 spots were detected on 2-D gels of MH cases, of which 78 spots were successfully analyzed. The spots corresponded to peptide fragments of 18 proteins, including pigment epithelium-derived factor, prostaglandin-D2 synthase, and interphotoreceptor retinoid-binding protein. These were not identified in the corresponding serum samples. These proteins were also expressed in PDR samples, with no distinct tendency to increase or decrease compared with the MH samples. More than 600 spots were detected on 2-D gels of PDR cases, of which 141 spots were successfully analyzed. The spots corresponded to peptide fragments of 38 proteins. Enolase and catalase were identified among four detected spots. Neither was found in MH vitreous or in PDR serum samples. CONCLUSION: A map of protein expression was made in human vitreous from eyes with MH and PDR. In the PDR eyes, the increased protein expression observed was due to barrier dysfunction and/or production in the eye. Proteome analysis was useful in systematic screening of various protein expression in human vitreous samples.

Diabetic Retinopathy↗