Literature DB >> 16575581

Aberrations of chick eyes during normal growth and lens induction of myopia.

Marsha L Kisilak1, Melanie C W Campbell, Jennifer J Hunter, Elizabeth L Irving, Lan Huang.   

Abstract

Understanding the control of eye growth may lead to the prevention of nearsightedness (myopia). Chicks develop refractive errors in response to defocusing lenses by changing the rate of eye elongation. Changes in optical image quality and the optical signal in lens compensation are not understood. Monochromatic ocular aberrations were measured in 16 chicks that unilaterally developed myopia in response to unilateral goggles with -15D lenses and in 6 chicks developing naturally. There is no significant difference in higher-order root mean square aberrations (RMSA) between control eyes of the goggled birds and eyes of naturally developing chicks. Higher-order RMSA for a constant pupil size exponentially decreases in the chick eye with age more slowly than defocus. In the presence of a defocusing lens, the exponential decrease begins after day 2. In goggled eyes, asymmetric aberrations initially increase significantly, followed by an exponential decrease. Higher-order RMSA is significantly higher in goggled eyes than in controls. Equivalent blur, a new measure of image quality that accounts for increasing pupil size with age, exponentially decreases with age. In goggled eyes, this decrease also occurs after day 2. The fine optical structure, reflected in higher-order aberrations, may be important in understanding normal development and the development of myopia.

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Year:  2006        PMID: 16575581     DOI: 10.1007/s00359-006-0122-9

Source DB:  PubMed          Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol        ISSN: 0340-7594            Impact factor:   1.836


  52 in total

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Authors:  J S McLellan; S Marcos; S A Burns
Journal:  Invest Ophthalmol Vis Sci       Date:  2001-05       Impact factor: 4.799

2.  Afocal magnification does not influence chick eye development.

Authors:  T A Curry; J G Sivak; M G Callender; E L Irving
Journal:  Optom Vis Sci       Date:  1999-05       Impact factor: 1.973

3.  Wavefront aberrations in eyes of emmetropic and moderately myopic school children and young adults.

Authors:  Ji C He; Pei Sun; Richard Held; Frank Thorn; Xiuru Sun; Jane E Gwiazda
Journal:  Vision Res       Date:  2002-04       Impact factor: 1.886

4.  Scaling Zernike expansion coefficients to different pupil sizes.

Authors:  Jim Schwiegerling
Journal:  J Opt Soc Am A Opt Image Sci Vis       Date:  2002-10       Impact factor: 2.129

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Authors:  E L Irving; J G Sivak; T A Curry; M G Callender
Journal:  J Comp Physiol A       Date:  1996-08       Impact factor: 1.836

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Authors:  D Troilo; M D Gottlieb; J Wallman
Journal:  Curr Eye Res       Date:  1987-08       Impact factor: 2.424

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Authors:  M D Gottlieb; L A Fugate-Wentzek; J Wallman
Journal:  Invest Ophthalmol Vis Sci       Date:  1987-08       Impact factor: 4.799

8.  Objective measurement of optical aberrations in myopic eyes.

Authors:  Marie-Pierre Paquin; Habib Hamam; Pierre Simonet
Journal:  Optom Vis Sci       Date:  2002-05       Impact factor: 1.973

9.  Biometric, optical and physical changes in the isolated human crystalline lens with age in relation to presbyopia.

Authors:  A Glasser; M C Campbell
Journal:  Vision Res       Date:  1999-06       Impact factor: 1.886

10.  Mathematical model of emmetropization in the chicken.

Authors:  F Schaeffel; H C Howland
Journal:  J Opt Soc Am A       Date:  1988-12       Impact factor: 2.129

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  8 in total

1.  Single cell imaging of the chick retina with adaptive optics.

Authors:  Kenneth Headington; Stacey S Choi; Debora Nickla; Nathan Doble
Journal:  Curr Eye Res       Date:  2011-10       Impact factor: 2.424

Review 2.  IMI - Report on Experimental Models of Emmetropization and Myopia.

Authors:  David Troilo; Earl L Smith; Debora L Nickla; Regan Ashby; Andrei V Tkatchenko; Lisa A Ostrin; Timothy J Gawne; Machelle T Pardue; Jody A Summers; Chea-Su Kee; Falk Schroedl; Siegfried Wahl; Lyndon Jones
Journal:  Invest Ophthalmol Vis Sci       Date:  2019-02-28       Impact factor: 4.799

3.  Ocular wavefront aberrations in the common marmoset Callithrix jacchus: effects of age and refractive error.

Authors:  Nancy J Coletta; Susana Marcos; David Troilo
Journal:  Vision Res       Date:  2010-08-25       Impact factor: 1.886

4.  A detailed paraxial schematic eye for the White Leghorn chick.

Authors:  Natalia V Avila; Sally A McFadden
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2010-07-28       Impact factor: 1.836

5.  Visually guided chick ocular length and structural thickness variations assessed by swept-source optical coherence tomography.

Authors:  Feng Yan; Chen Wang; Jayla A Wilson; Michael O'Connell; Sam Ton; Noah Davidson; Mourren Sibichan; Kari Chambers; Ahmed Ahmed; Jody Summers; Qinggong Tang
Journal:  Biomed Opt Express       Date:  2021-10-13       Impact factor: 3.732

6.  Wave aberrations in rhesus monkeys with vision-induced ametropias.

Authors:  Ramkumar Ramamirtham; Chea-Su Kee; Li-Fang Hung; Ying Qiao-Grider; Juan Huang; Austin Roorda; Earl L Smith
Journal:  Vision Res       Date:  2007-09-06       Impact factor: 1.886

7.  Does peripheral retinal input explain the promising myopia control effects of corneal reshaping therapy (CRT or ortho-K) & multifocal soft contact lenses?

Authors:  Earl L Smith; Melanie C W Campbell; Elizabeth Irving
Journal:  Ophthalmic Physiol Opt       Date:  2013-05       Impact factor: 3.117

8.  The effects of reduced ambient lighting on lens compensation in infant rhesus monkeys.

Authors:  Zhihui She; Li-Fang Hung; Baskar Arumugam; Krista M Beach; Earl L Smith Iii
Journal:  Vision Res       Date:  2021-06-15       Impact factor: 1.984

  8 in total

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