Literature DB >> 23434206

Peripapillary scleral deformation and retinal nerve fiber damage in high myopia assessed with swept-source optical coherence tomography.

Tadamichi Akagi1, Masanori Hangai, Yugo Kimura, Hanako Ohashi Ikeda, Atsushi Nonaka, Akiko Matsumoto, Masahiro Akiba, Nagahisa Yoshimura.   

Abstract

PURPOSE: To study peripapillary morphologic changes in highly myopic eyes using swept-source optical coherence tomography at a longer wavelength.
DESIGN: Prospective cross-sectional study.
METHODS: Peripapillary regions of 196 eyes of 107 patients with high myopia (refractive error, <-8.0 diopters or axial length, >26.0 mm) were analyzed quantitatively and qualitatively with an swept-source optical coherence tomography prototype system that uses a tunable laser light source operated at a 100,000-Hz A-scan repetition rate in the 1-μm wavelength region. The visual field was evaluated by standard automated perimetry. Area of peripapillary atrophy β and presence of scleral protrusion temporal to the optic disc were assessed.
RESULTS: Peripapillary atrophy β area, but not disc area, was significantly larger in eyes with visual field defect (3.16 ± 2.70 mm(2); range, 0.00 to 12.85 mm(2)) than those without visual field defect (2.31 ± 2.83 mm(2); range, 0.00 to 17.70 mm(2)). Temporal scleral protrusion was detected by color stereo disc photography in 22 (19.5%) of 113 eyes with visual field defect and in 4 (4.8%) of 83 eyes without visual field defect. Scleral bending demonstrated a wide range of angles (mean, 31.0 ± 21.1 degrees; range, 2 to 80 degrees). The angle of scleral bending, but not the distances from scleral bend to disc margin or foveal center, correlated significantly with retinal nerve fiber layer thickness above the bend (r = -0.557, P = .007) and visual field defect severity (r = -0.445, P = .038).
CONCLUSIONS: Swept-source optical coherence tomography visualizes peripapillary deep structures in high myopia. Some cases of high myopia may be affected by direct scleral compression or stretching at the peripapillary region.
Copyright © 2013 Elsevier Inc. All rights reserved.

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Year:  2013        PMID: 23434206     DOI: 10.1016/j.ajo.2012.12.014

Source DB:  PubMed          Journal:  Am J Ophthalmol        ISSN: 0002-9394            Impact factor:   5.258


  19 in total

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Journal:  Am J Ophthalmol       Date:  2018-05-09       Impact factor: 5.258

Review 7.  Optic disc and peripapillary changes by optic coherence tomography in high myopia.

Authors:  Ting Pan; Yun Su; Song-Tao Yuan; Hang-Cheng Lu; Zi-Zhong Hu; Qing-Huai Liu
Journal:  Int J Ophthalmol       Date:  2018-05-18       Impact factor: 1.779

8.  Macular Bruch's Membrane Length and Axial Length. The Beijing Eye Study.

Authors:  Jost B Jonas; Ya Xing Wang; Qi Zhang; Yi Liu; Liang Xu; Wen Bin Wei
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9.  Lamina cribrosa defects and optic disc morphology in primary open angle glaucoma with high myopia.

Authors:  Yugo Kimura; Tadamichi Akagi; Masanori Hangai; Kohei Takayama; Tomoko Hasegawa; Kenji Suda; Munemitsu Yoshikawa; Hiroshi Yamada; Hideo Nakanishi; Noriyuki Unoki; Hanako Ohashi Ikeda; Nagahisa Yoshimura
Journal:  PLoS One       Date:  2014-12-22       Impact factor: 3.240

10.  High Myopic Peripapillary Atrophy; Spectral Domain Optical Coherence Tomography Features.

Authors:  Mohammad Hossein Jabbarpoor Bonyadi
Journal:  J Ophthalmic Vis Res       Date:  2016 Jan-Mar
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