INCREASE OF OCULAR AXIAL LENGTH IN INFANTILE TRAUMATIC CATARACT

被引:14
作者
CALOSSI, A [1 ]
机构
[1] OPHTHALM MICROSURG CTR,BOLOGNA,ITALY
关键词
EMMETROPIZATION; VISUAL DEPRIVATION; MYOPIA CONTROL; TRAUMATIC CATARACT; OCULAR AXIAL LENGTH;
D O I
10.1097/00006324-199406000-00006
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
Introduction. Emmetropization of the eye may be affected by visual experience. In many kinds of animal species it is possible to alter the refractive state of the eyes by manipulating the visual input during early periods of development. It is however doubtful whether the results obtained in experimental animals will help us explain the genesis of human myopia. Materials and methods. We selected a group of patients who suffered from unilateral visual deprivation in their early life. We examined 13 adult patients who had a unilateral traumatic infantile cataract. Seven of these patients were aphakic. Results. In all of these patients we found a greater axial length in the affected eye as compared to the uninjured eye. The difference ranged from 0.1 to 11.5 mm (mean 2.48) and was statistically significant (p = 0.0015). Conclusions. Our data support the view that in humans as well as in animals a severe visual deprivation in early life induces an axial elongation of the eyeball and that the refractive errors experimentally induced in animals by visual deprivation have a clinical counterpart in the human population. These data suggest that the model of the system's loss of control on the elongation of the eye may provide valuable information and a precise direction for research on etiology and control of myopia.
引用
收藏
页码:386 / 391
页数:6
相关论文
共 52 条
[41]  
Curtin B.J., Iwamoto T., Renaldo D.P., Normal and staphylom-atous sclera of high myopia: An electron microscopic study, Arch Ophthalmol, 97, pp. 912-915, (1979)
[42]  
Gottlied M.D., Joshi H.B., Nickla D.L., Scleral changes in chicks with form-deprivation myopia, Curr Eye Res, 9, pp. 1157-1165, (1990)
[43]  
Christensen A.M., Wallman J., Evidence that increased scleragrowth underlies visual deprivation myopia in chicks, Invest Ophthalmol Vis Sci, 32, pp. 2143-2150, (1991)
[44]  
Rada J.A., McFarland A.L., Cornuet P.K., Hassell J.R., Proteoglycan synthesis by scleral chondrocytes is modulated by a vision dependent mechanism, Curr Eye Res, 11, pp. 767-782, (1992)
[45]  
Donders F.C., On the Anomalies of Accommodation and Refraction of the Eye, pp. 415-433, (1864)
[46]  
Goss D.A., Attempts to reduce the rate of increase of myopia in young people. A critical literature review, Am J Optom Physiol Opt, 59, pp. 828-841, (1982)
[47]  
Grosvenor T., Myopia: What can we do about it clinically?, Optom Vis Sci, 66, pp. 415-419, (1989)
[48]  
Goldschmidt E., Myopia in humans: Can progression be arrested?, Myopia and the Control of Eye Growth. Ciba Foundation Symposium, 155, pp. 222-233, (1990)
[49]  
Woo G.C., Wilson M.A., Current methods of treating and preventing myopia, Am J Optom Physiol Opt, 67, pp. 719-727, (1990)
[50]  
Grosvenor T., Management of myopia: Functional methods, Refractive Anomalies: Research and Clinical Applications, pp. 345-370, (1991)