Szemészet, 2009 (146. évfolyam, 1-4. szám)

2009-10-01 / 3. szám

96 Szemészet 9. Gürses-Özden R., Teng C., Vessani R., ZafarS., Liebmann J.M., Ritch R.: Macular and retinal nerve fiber layer thickness measurement reproducibility using optical coherence tomography (OCT3). J Glaucoma 2004; 13(3): 238-244. 10. Hendrickson A., Yuodelis C.: The morphological development of the human fovea. Ophthalmology 1984; 91: 603-12. 11. Hendrickson A.E.: Primate foveal development: a microcosm of current questions in neurobiology. Invest Ophthalmol Vis Sei 1994; 35: 3129-3133. 12. Hungerford J., Stewart A., Hope R: ocular sequale of preterm birth and their relation to ultrasound evidence of cerebral damage. Br J Ophthalmol 1986; 70: 463-468. 13. Huynh S.C., Wang X.Y., Rochtchina E., Mitchell R: Distribution of macular thickness by optical coherence tomography. Findings from population-based study of 6-year-old children. Invest Ophthalmol Vis Sei 2006; 47(6): 2351-2357. 14. Keith C.G., Kitchen W.H.: Ocular morbidity in infants of very low birthweight. Br J Ophthalmol 1983; 67: 302-305. 15. Lederer D.E., Joel S., Hertzmark E., Heltzer J., Mattox C., Fujimoto J.: Analysis of macular volume in normal and glaucomatous eyes using optical coherence tomography. Am J Ophthalmol 2003; 135: 838-843. 16. Lim M.C.C., Hoh S.T., Foster P.J., Lim T.H., Chew S.J., Seah S.K.L., Aung T: Use of optical Coherence tomography to assess variations in macular thickness in myopia. Invest Ophthalmol Vis Sei 2005; 46(3): 974-978. 17. Luo H.D., Gazzard G., Fong A., Aung T, Hoh S.T., Loon Sch., Healey R. Tan D.T.H., Wong T.Y., Saw S.M.: Myopia, axial length, and OCT characteristics of the macula in singaporean children. Invest Ophthalmol Vis Sei 2006; 47(7): 2773-2781. 18. Mintz-Hittner H.A., Knight-Nanan D.M., Satriano D.R., Kretzer F.L.: A small avascular zone may be an historic mark of prematurity. Ophthalmology 1999; 106: 1409-1413. 19. O’Connor A.R., Stephenson T.J. Johnson A,. Tobin M.I.J. Ratib S., Fielder A.R.: Change of refractive state and eye size in children of birth weight less than 1701 g. Br J Ophthalmol 2006; 90(4): 456- 460. 20. Provis J.M., Sandercoe T, Hendrickson A.E.: Astrocytes and blood vessels define the foveal rim during primate retinal development. Invest Ophthalmol Vis Sei 2000; 41(10): 2827-2836. 21. ReisnerD.S., Hansen R.M., Findl O., Petersen R.A., Fulton A. B.: Dark adapted thresholds in children with histories of mild retinopathy of prematurity. Invest Ophthalmol Vis Sei 1997; 38(6): 1175-1183. 22. Snir M., Nissenkorn I., Sherf I., Cohen S., Sira I.B.: Visual acuity, strabismus and amblyopia in preterm babies with and without retinopathy of prematurity. Ann Ophthalmol 1988; 20: 256-258. 23. Springer A.D.: New role for the primate fovea: a retinal excavation determines photoreceptor deployment and shape. Vis Neurosci 1999; 16(4): 629-636. 24. Yuodelis C, Hendrickson A.: A qualitative and quantitative analysis of the human fovea during development. Vision Res 1986; 26(6): 847-855. Levelezési cím: Dr. Ecsedy Mónika Semmelweis Egyetem, Szemészeti Klinika 1085 Budapest, Mária utca 39. E-mail: ecsedy@yahoo.co.uk

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