Effect of ocular magnification on macular measurements made using spectral domain optical coherence tomography

被引:15
|
作者
Parthasarathy, Mohana Kuppuswamy [1 ,2 ,3 ]
Bhende, Muna [1 ]
机构
[1] Med Res Fdn, Sri Bhagwan Mahavir Vitreoretinal Serv, Dept Vitreoretinal Serv, Madras, Tamil Nadu, India
[2] Elite Sch Optometry, Dept Vitreoretinal Serv, Madras, Tamil Nadu, India
[3] Birla Inst Technol & Sci, Dept Vitreoretinal Serv, Pilani, Rajasthan, India
关键词
Artifact; foveal diameter; foveal slope; ocular magnification; optical coherence tomography; NERVE-FIBER LAYER; FOVEAL PIT MORPHOLOGY; GEOGRAPHIC ATROPHY; THICKNESS; SIZE; PREDICTORS; CHILDREN; PROFILE; MYOPIA; SEX;
D O I
10.4103/0301-4738.159877
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
Aim: The aim of the present study was to study the effect of ocular magnification on macular measurements made using spectral domain optical coherence tomography (OCT). Materials and Methods: One hundred and fifty-one subjects were included from the normative study of foveal morphology carried out at our hospital. Subjects underwent comprehensive eye examination and macular scanning using Cirrus high-definition OCT and axial length (AXL) measurement. Macular cube 512 x 128 scan protocol was used for scanning the macula. Automated measurements of the fovea namely foveal diameter, foveal slope (lateral measurements) and foveal depth (axial measurement) were taken. A correction factor for ocular magnification was done using the formula t = p x q x s, where "t" is the corrected measurement, "p" is the magnification of OCT, "q" is the ocular magnification, and "s" is the measurement on OCT without correction. The difference between corrected and uncorrected measurements was evaluated for statistical significance. Results: Mean AXL was 22.95 +/- 0.78 mm. Refractive error ranged from -3D to + 4D. Mean difference between measured and corrected foveal diameter, slope and depth was 166.05 +/- 95.37 mu m (P < 0.001), 0.81 degrees +/- 0.53 degrees (P < 0.001) and 0.05 +/- 0.49 mu m (P = 0.178) respectively. AXL lesser than the OCT calibrated value of 24.46 mm showed an increased foveal diameter (r = 0.961, P < 0.001) and a reduced foveal slope (r = -0.863, P < 0.001) than the corrected value. Conclusion: Lateral measurements made on OCT varied with AXL s other than the OCT calibrated value of 24.46 mm. Therefore, to estimate the actual dimensions of a retinal lesion using OCT, especially lateral dimensions, we recommend correction for the ocular magnification factor.
引用
收藏
页码:427 / 431
页数:5
相关论文
共 50 条
  • [31] Comparison of thickness values in nine macular subfields using time-domain and spectral-domain optical coherence tomography
    Miklos, Schneider
    Orsolya, Szekeres
    Huba, Kiss
    Maria, Kis
    Andras, Papp
    Janos, Nemeth
    ORVOSI HETILAP, 2013, 154 (52) : 2059 - 2064
  • [32] Mapping the thickness of retinal layers using Spectralis spectral domain optical coherence tomography in Indian eyes
    Najeeb, Shaista
    Ganne, Pratyusha
    Damagatla, Manikanta
    Chaitanya, Ganne
    Krishnappa, Nagesha C.
    INDIAN JOURNAL OF OPHTHALMOLOGY, 2022, 70 (08) : 2990 - 2997
  • [33] Evaluating the effect of pupil dilation on spectral-domain optical coherence tomography measurements and their quality score
    Tanga, Lucia
    Roberti, Gloria
    Oddone, Francesco
    Quaranta, Luciano
    Ferrazza, Manuela
    Berardo, Francesca
    Manni, Gianluca
    Centofanti, Marco
    BMC OPHTHALMOLOGY, 2015, 15
  • [34] Macular parameters and prematurity: A spectral domain coherence tomography study
    Tariq, Yasser M.
    Burlutsky, George
    Mitchell, Paul
    JOURNAL OF AAPOS, 2012, 16 (04): : 382 - 385
  • [35] The European Eye Epidemiology spectral-domain optical coherence tomography classification of macular diseases for epidemiological studies
    Gattoussi, Sarra
    Buitendijk, Gabrielle H. S.
    Peto, Tunde
    Leung, Irene
    Schmitz-Valckenberg, Steffen
    Oishi, Akio
    Wolf, Sebastian
    Deak, Gabor
    Delcourt, Ccile
    Klaver, Caroline C. W.
    Korobelnik, Jean-Fracnois
    Acar, Niyazi
    Anas-Tosopoulos, Eleftherios
    Azuara-Blanco, Augusto
    Berendschot, Tos
    Bertelsen, Geir
    Binquet, Christine
    Bird, Alan
    Bobak, Martin
    Larsen, Morten Bogelund
    Boon, Camiel
    Bourne, Rupert
    Bretillon, Lionel
    Broe, Rebecca
    Bron, Alain
    Buitendijk, Gabrielle
    Cachulo, Maria Luz
    Capuano, Vittorio
    Carriere, Isabelle
    Chakravarthy, Usha
    Chan, Michelle
    Chang, Petrus
    Colijn, Johanna
    Cree, Angela
    Creuzot-Garcher, Catherine
    Cumberland, Phillippa
    Cunha-Vaz, Jose
    Daien, Vincent
    De Jong, Eiko
    Delcourt, Cecile
    Delyfer, Marie-Noelle
    den Hollan-Der, Anneke
    Dietzel, Martha
    Erke, Maja Gran
    Faria, Pedro
    Farinha, Claudia
    Fauser, Sascha
    Finger, Robert
    Fletcher, Astrid
    Foster, Paul
    ACTA OPHTHALMOLOGICA, 2019, 97 (04) : 364 - 371
  • [36] Spectral-domain optical coherence tomography of macula in myopia
    Choovuthayakorn, Janejit
    Laowong, Taksaorn
    Watanachai, Nawat
    Patikulsila, Direk
    Chaikitmongkol, Voraporn
    INTERNATIONAL OPHTHALMOLOGY, 2016, 36 (03) : 319 - 325
  • [37] Macular Ganglion Cell Imaging Study: Glaucoma Diagnostic Accuracy of Spectral-Domain Optical Coherence Tomography
    Jeoung, Jin Wook
    Choi, Yun Jeong
    Park, Ki Ho
    Kim, Dong Myung
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2013, 54 (07) : 4422 - 4429
  • [38] Macular Ganglion Cell Imaging Study: Covariate Effects on the Spectral Domain Optical Coherence Tomography for Glaucoma Diagnosis
    Jeong, Jae Hoon
    Choi, Yun Jeong
    Park, Ki Ho
    Kim, Dong Myung
    Jeoung, Jin Wook
    PLOS ONE, 2016, 11 (08):
  • [39] Megalopapilla in children: a spectral domain optical coherence tomography analysis
    Lee, Hyo Seok
    Park, Sang Woo
    Heo, Hwan
    ACTA OPHTHALMOLOGICA, 2015, 93 (04) : E301 - E305
  • [40] Detection of mild papilloedema using spectral domain optical coherence tomography
    Vartin, Vardanian C.
    Nguyen, A. M.
    Balmitgere, T.
    Bernard, M.
    Tilikete, C.
    Vighetto, A.
    BRITISH JOURNAL OF OPHTHALMOLOGY, 2012, 96 (03) : 375 - 379