Literature DB >> 10646143

Ablation centration after active eye-tracker-assisted photorefractive keratectomy and laser in situ keratomileusis.

Y Y Tsai1, J M Lin.   

Abstract

PURPOSE: To evaluate the ablation centration after active eye-tracker-assisted photorefractive keratectomy (PRK) and laser in situ keratomileusis (LASIK) and to investigate the effect of surgery, patient, and surgeon on the centration.
SETTING: Department of Ophthalmology, China Medical College Hospital, Taichung, Taiwan, Republic of China.
METHODS: This retrospective study comprised 177 eyes of 101 patients: 16 eyes had PRK and 161, LASIK. All laser treatments were performed with the aid of an eye tracker. The amount of decentration was analyzed by corneal topography. The factors influencing centration were divided into surgery related (PRK/LASIK), patient related (low/high myopia and effect of learning), and surgeon related (learning curve).
RESULTS: The mean decentration was 0.33 mm in PRK eyes and 0.35 mm in LASIK eyes. For the surgery-related factor, there was no significant difference between the PRK and LASIK eyes. For the patient-related factors, centration was better in the second eye (effect of learning) and decentration was more severe in eyes with high myopia (low/high myopia). For the surgeon-related factor, there was no significant difference between eyes that had the first 50 LASIK procedures and those that had the last 50 procedures.
CONCLUSIONS: An eye tracker, which makes the laser beam follow the eye's movements, helps to avoid severe decentration. This study showed, however, that an active eye-tracking system alone cannot ensure good centration. Patient cooperation and fixation are important.

Entities:  

Mesh:

Year:  2000        PMID: 10646143     DOI: 10.1016/s0886-3350(99)00328-4

Source DB:  PubMed          Journal:  J Cataract Refract Surg        ISSN: 0886-3350            Impact factor:   3.351


  13 in total

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Authors:  T M Baek; K H Lee; A Tomidokoro; T Oshika
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2.  [Cyclorotation of the eye in wavefront-guided LASIK using a static eyetracker with iris recognition].

Authors:  T Kohnen; C Kühne; M Cichocki; A Strenger
Journal:  Ophthalmologe       Date:  2007-01       Impact factor: 1.059

3.  The Effect of Corneal Refractive Power Area Changes on Myopia Progression during Orthokeratology.

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Journal:  J Ophthalmol       Date:  2022-06-16       Impact factor: 1.974

4.  Ocular aberrations after wavefront optimized LASIK for myopia.

Authors:  Prema Padmanabhan; Subam S Basuthkar; Roy Joseph
Journal:  Indian J Ophthalmol       Date:  2010 Jul-Aug       Impact factor: 1.848

5.  Visual outcome after correcting the refractive error of large pupil patients with wavefront-guided ablation.

Authors:  Mounir A Khalifa; Waleed A Allam; Mohamed S Shaheen
Journal:  Clin Ophthalmol       Date:  2012-12-03

6.  Use of angle kappa in myopic photorefractive keratectomy.

Authors:  Hamid Khakshoor; Michael V McCaughey; Amir Hossein Vejdani; Ramin Daneshvar; Majid Moshirfar
Journal:  Clin Ophthalmol       Date:  2015-01-29

7.  A prospective comparison of phakic collamer lenses and wavefront-optimized laser-assisted in situ keratomileusis for correction of myopia.

Authors:  Gregory D Parkhurst
Journal:  Clin Ophthalmol       Date:  2016-06-29

8.  Impact of Treatment Decentration on Higher-Order Aberrations after SMILE.

Authors:  Ying Yu; Wenwen Zhang; Xinliang Cheng; Jianru Cai; Hui Chen
Journal:  J Ophthalmol       Date:  2017-03-15       Impact factor: 1.909

9.  Corneal Elevation, Power, and Astigmatism to Assess Toric Orthokeratology Lenses in Moderate-to-High Astigmats.

Authors:  Erin S Tomiyama; Anna-Kaye Logan; Kathryn Richdale
Journal:  Eye Contact Lens       Date:  2021-02-01       Impact factor: 3.152

10.  Centration axis in refractive surgery.

Authors:  Samuel Arba Mosquera; Shwetabh Verma; Colm McAlinden
Journal:  Eye Vis (Lond)       Date:  2015-02-24
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