SOFT LENS MOVEMENT - TEMPORAL CHARACTERISTICS

被引:26
作者
BRENNAN, NA
LINDSAY, RG
MCCRAW, K
YOUNG, L
BRUCE, AS
GOLDING, TR
机构
[1] Corneal Biophysics Laboratory, Department of Optometry, University of Melbourne, Parkville, VIC
[2] Centre for Eye Research, School of Optometry, Queensland University of Technology, Brisbane, QLD
关键词
HYDROGEL CONTACT LENSES; LENS MOVEMENT; LENS WATER CONTENT;
D O I
10.1097/00006324-199406000-00001
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
The time-course of on-eye hydrogel lens movement has not been carefully scrutinized, despite the importance of lens movement in optimizing lens fit and corneal physiology. We conducted a study to define the time-course of soft lens movement using 26 subjects. Video slitlamp recordings were made of lens movement at 5-min intervals for 30-min wear and after 8-h wear of 38 or 67% water content lenses (N = 14 and 12, respectively). Lens mobility profiles were statistically indistinguishable for high and low water content lenses, and for experienced and neophyte lens wearers. Lens movement displayed biphasic temporal characteristics, decreasing significantly over the first 25 min from a median of 0.6 to 0.3 mm (Wilcoxon matched-pairs signed-rank test, p = 0.002), then increasing significantly to 0.5 mm after 8 h of wear (p = 0.03). Although some subjects exhibited little alteration in lens movement, 31% showed a decrease in lens movement >0.25 mm during the first half-hour of wear. Optimal predictability of lens mobility after 8-h wear was achieved 5 min after insertion, with 77% of subjects displaying lens movement within +/-0.25 mm of the final value. In-office assessment of lens movement is best achieved 5 min after insertion, although clinical and real world lens mobility will differ significantly in about one in four patients.
引用
收藏
页码:359 / 363
页数:5
相关论文
共 23 条
[1]  
Mertz G.W., Kissack B.T., Walter H.C., When and why to use ultra-thin lenses, Contact Lens Forum, 3, 7, pp. 65-72, (1978)
[2]  
Hayashi T., Fatt I., A lubrication theory model of tear exchange under a soft contact lens, Am J Optom Physiol Opt, 53, pp. 101-103, (1976)
[3]  
Poise K.A., Tear flow under hydrogel contact lenses, Invest Ophthalmol Vis Sci, 18, pp. 409-413, (1979)
[4]  
Orsborn G.N., Zantos S.G., Burstein N.L., The relationship between lens movement and tear exchange under hydrogel contact lenses, Am J Optom Physiol Opt, 63, (1986)
[5]  
Holden B.A., Sweeney D.F., Vannas A., Nilsson K.T., Efron N., Effects of long-term extended contact lens wear on the human cornea, Invest Ophthalmol Vis Sci, 26, pp. 1489-1501, (1985)
[6]  
Bruce A.S., Brennan N.A., Corneal pathophysiology with contact lens wear, Surv Ophthalmol, 35, pp. 25-60, (1990)
[7]  
Mertz G.W., Holden B.A., Clinical implications of extended wear research, Can J Optom, 43, pp. 203-205, (1981)
[8]  
Kracher G.P., Stark W.J., Hirst L.W., Extended wear contact lenses for aphakia, Am J Optom Physiol Opt, 58, pp. 467-471, (1981)
[9]  
Zantos S.G., Corneal infiltrates, debris, and microcysts, J Am Optom Assoc, 55, pp. 196-198, (1984)
[10]  
Robboy M., Cox I., Patient factors influencing conjunctival staining with soft contact lens wearers, Invest Ophthalmol Vis Sci, 32, (1991)