Effects of lenses with different power profiles on eye shape in chickens

PURPOSE Defocus imposed to the periphery of the visual field can affect the development of foveal/central refractive errors. To make use of this observation, lenses can be designed to reduce myopia progression, but it is important to know which power profiles of the lenses are most effective. We have studied this question in chickens. METHODS Sixty male white leghorn chickens were used. From day 7 after hatching, they were treated for 5 days either with full field -7D or +7D lenses, with -7D lenses with a 4mm central hole, with hemi-field lenses of the same power, or with two different types of radial refractive gradient (RRG) lenses with increasing positive power from the center to the periphery, which were designed by Rodenstock GmbH, Munich, Germany. A macro file was written for "ImageJ" to trace and average the outlines of several excised eyes after treatment. Shapes of fellow control eyes and lens-treated eyes were compared in the horizontal and vertical meridians. Refractions were determined at -45°, 0°, and 45° over the horizontal visual field, at the beginning and at the end of experiments, using automated infrared photoretinoscopy. RESULTS (1) Eye length, as determined by the new automated eye shape tracing technique, was well correlated with A-scan ultrasound data. (2) The effects of previously tested lens designs were reproduced with the new tracing technique. Full field lenses were by far the most effective (-7D: external axial length +0.24mm with an increase in eye volume of about 6%, +7D: -0.08 mm, with a decrease in eye volume of about 2%). Hemi-field lenses and negative lenses with a 4mm central hole induced conspicuous local changes in eye shape. (3) The first type of RRG lenses with a plano zone of about 4mm (equivalent to about ± 12.52° in the visual field for a vertex distance of 5mm) had no apparent effect on central refractions but induced small hyperopic shifts in the periphery, more significant in the temporal retina (+1.70 ± 1.70 D, p<0.001, paired t-test to untreated fellow eyes). The second type of RRG lenses with a small plano zone of 2mm (equivalent to ± 6.34°) induced peripheral hyperopia but also changed the central refraction (temporal retina +1.50 ± 1.17D, p<0.001, central retina +0.77 ± 1.15 D, p<0.01, nasal retina +1.47±1.35D, p<0.001, paired t-test to untreated control eyes). CONCLUSIONS In the afoveate chick, RRG lenses have an effect on central refraction and eye growth only if the central plano zone is small (<4mm). For the second type of RRG lens with a central plano zone of about 2mm, inhibitory effects on eye growth were detected in both the center and periphery even though the optical power of the lenses in the periphery was low.

[1]  J. Wallman,et al.  Different visual deprivations produce different ametropias and different eye shapes. , 1987, Investigative ophthalmology & visual science.

[2]  Linda Lundström,et al.  Influence of optical defocus on peripheral vision. , 2011, Investigative ophthalmology & visual science.

[3]  D. Mutti,et al.  Peripheral refraction and ocular shape in children. , 2000, Investigative ophthalmology & visual science.

[4]  F. Schaeffel,et al.  Properties of the feedback loops controlling eye growth and refractive state in the chicken , 1991, Vision Research.

[5]  Earl L. Smith,et al.  Peripheral vision can influence eye growth and refractive development in infant monkeys. , 2005, Investigative ophthalmology & visual science.

[6]  Padmaja Sankaridurg,et al.  Spectacle Lenses Designed to Reduce Progression of Myopia: 12-Month Results , 2010, Optometry and vision science : official publication of the American Academy of Optometry.

[7]  J. Wallman,et al.  Local retinal regions control local eye growth and myopia. , 1987, Science.

[8]  Pablo Artal,et al.  Peripheral refractive errors in myopic, emmetropic, and hyperopic young subjects. , 2002, Journal of the Optical Society of America. A, Optics, image science, and vision.

[9]  V. Morris An afoveate area centralis in the chick retina , 1982, The Journal of comparative neurology.

[10]  Frank Schaeffel,et al.  Effects of longitudinal chromatic aberration on accommodation and emmetropization , 2002, Vision Research.

[11]  F Rempt,et al.  Peripheral retinoscopy and the skiagram. , 1971, Ophthalmologica. Journal international d'ophtalmologie. International journal of ophthalmology. Zeitschrift fur Augenheilkunde.

[12]  Earl L. Smith,et al.  Hemiretinal form deprivation: evidence for local control of eye growth and refractive development in infant monkeys. , 2009, Investigative ophthalmology & visual science.

[13]  J. Wallman,et al.  Severe astigmatic blur does not interfere with spectacle lens compensation. , 2003, Investigative ophthalmology & visual science.

[14]  M Millodot,et al.  Effect of Ametropia on Peripheral Refraction , 1981, American journal of optometry and physiological optics.

[15]  F. Schaeffel,et al.  Peripheral defocus does not necessarily affect central refractive development , 2006, Vision Research.

[16]  Earl L. Smith,et al.  Effects of foveal ablation on the pattern of peripheral refractive errors in normal and form-deprived infant rhesus monkeys (Macaca mulatta). , 2011, Investigative ophthalmology & visual science.

[17]  David A Atchison,et al.  Eye shape in emmetropia and myopia. , 2004, Investigative ophthalmology & visual science.

[18]  Earl L. Smith,et al.  Prentice Award Lecture 2010: A Case for Peripheral Optical Treatment Strategies for Myopia , 2011, Optometry and vision science : official publication of the American Academy of Optometry.

[19]  F. Schaeffel,et al.  Local Changes in Eye Growth induced by Imposed Local Refractive Error despite Active Accommodation , 1997, Vision Research.

[20]  F Rempt,et al.  Acquired myopia in young pilots. , 1971, Ophthalmologica. Journal international d'ophtalmologie. International journal of ophthalmology. Zeitschrift fur Augenheilkunde.

[21]  David A. Atchison,et al.  Peripheral refraction along the horizontal and vertical visual fields in myopia , 2006, Vision Research.

[22]  Sally A. McFadden Partial Occlusion Produces Local Form Deprivation Myopia in the Guinea Pig Eye , 2002 .

[23]  Adrian Glasser,et al.  Accommodation, refractive error and eye growth in chickens , 1988, Vision Research.

[24]  Dietmar Uttenweiler,et al.  Effects of myopic spectacle correction and radial refractive gradient spectacles on peripheral refraction , 2009, Vision Research.

[25]  Thomas Naduvilath,et al.  Decrease in rate of myopia progression with a contact lens designed to reduce relative peripheral hyperopia: one-year results. , 2011, Investigative ophthalmology & visual science.

[26]  Earl L. Smith,et al.  Relative peripheral hyperopic defocus alters central refractive development in infant monkeys , 2009, Vision Research.