6 Diagnostic Capability of Optical Coherence Tomography …
159
44. G.J. Jaffe, J. Caprioli, Optical coherence tomography to detect and manage retinal disease
and glaucoma. Am. J. Ophthalmol. 137, 156–169 (2004)
45. R. Ray, S.S. Stinnett, G.J. Jaffe, Evaluation of image artifact produced by OCT of retinal
pathology. Am. J. Ophthalmol. 139, 18–29 (2005)
46. R.H. Silverman, High-resolution ultrasound imaging of the eye—a review. Clin. Exp. Ophthalmol. 37, 54–67 (2009)
47. R. Guthoff, R.W. Berger, J. Draeger, Measurements of ocular coat dimensions by means of
combined A- and B-scan ultrasonography. Ophthalmic Res. 16, 289–291 (1984)
48. J. Németh, Z. Horóczi, Changes in the ocular dimensions after trabeculectomy. Int. Ophthalmol. 16(4–5), 355 (1992)
49. N. Demirkaya, H.W. van Dijk, S.M. van Schuppen, M.D. Abramoff, M.K. Garvin, M. Sonka
et al., Effect of age on individual retinal layer thickness in normal eyes as measured with
spectral-domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 54, 4934–4940
(2013)
50. J. Huang, X. Liu, Z. Wu, S. Sadda, Image quality affects macular and retinal nerve fiber layer
thickness measurements on fourier-domain optical coherence tomography. Ophthalmic Surg.
Lasers Imaging 42, 216–221 (2011)
51. P.J. Kelty, J.F. Payne, R.H. Trivedi, J. Kelty, E.M. Bowie, B.M. Burger, Macular thickness
assessment in healthy eyes based on ethnicity using Stratus OCT optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 49, 2668–2672 (2008)
52. X.R. Huang, Y. Zhou, R.W. Knighton, W. Kong, W.J. Feuer, Wavelength-dependent change
of retinal nerve fiber layer reflectance in glaucomatous retinas. Invest. Ophthalmol. Vis.
Sci. 53(9), 5869–58676 (2012). Epub 2012/07/28. https://doi.org/10.1167/iovs.12-10001.
PubMed PMID: 22836775; PubMed Central PMCID: PMCPMC3428115
53. S. Ooto, M. Hangai, A. Tomidokoro, H. Saito, M. Araie, T. Otani et al., Effects of age, sex,
and axial length on the three-dimensional profile of normal macular layer structures. Invest.
Ophthalmol. Vis. Sci. 52, 8769–8779 (2011)
54. H.L. Rao, A.U. Kumar, J.G. Babu, A. Kumar, S. Senthil, C.S. Garudadri, Predictors of normal
optic nerve head, retinal nerve fiber layer, and macular parameters measured by spectral
domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 52, 1103–1110 (2011)
55. C. Samarawickrama, A. Pai, S.C. Huynh, G. Burlutsky, T.Y. Wong, P. Mitchell, Influence of
OCT signal strength on macular, optic nerve head, and retinal nerve fiber layer parameters.
Invest. Ophthalmol. Vis. Sci. 51, 4471–4475 (2010)
56. A. Szigeti, E. Tátrai, B.E. Varga, A. Szamosi, D. Cabrera DeBuc, Z.Z. Nagy, J. Németh, G.M.
Somfai, The effect of axial length on the thickness of intraretinal layers of the macula. PLoS
ONE 10(11), e0142383 (2015). https://doi.org/10.1371/journal.pone.0142383
57. C.Y. Cheung, D. Chen, T.Y. Wong, Y.C. Tham, R. Wu, Y. Zheng et al., Determinants of
quantitative optic nerve measurements using spectral domain optical coherence tomography
in a population-based sample of non-glaucomatous subjects. Invest. Ophthalmol. Vis. Sci. 52,
9629–9635 (2011)
58. J.C. Mwanza, M.K. Durbin, D.L. Budenz, C.A. Girkin, C.K. Leung, J.M. Liebmann et al.,
Profile and predictors of normal ganglion cell-inner plexiform layer thickness measured
with frequency-domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 52,
7872–7879 (2011)
59. W.K. Song, S.C. Lee, E.S. Lee, C.Y. Kim, S.S. Kim, Macular thickness variations with sex,
age, and axial length in healthy subjects: a spectral domain-optical coherence tomography
study. Invest. Ophthalmol. Vis. Sci. 51, 3913–3918 (2010)
60. A.C. Wong, C.W. Chan, S.P. Hui, Relationship of gender, body mass index, and axial length
with central retinal thickness using optical coherence tomography. Eye (Lond.) 19, 292–297
(2005)
61. C.J. Abbott, U. Grünert, M.J. Pianta, N.A. McBrien, Retinal thinning in tree shrews with
induced high myopia: optical coherence tomography and histological assessment. Vis. Res.
51(3), 376–385 (2011)
159
44. G.J. Jaffe, J. Caprioli, Optical coherence tomography to detect and manage retinal disease
and glaucoma. Am. J. Ophthalmol. 137, 156–169 (2004)
45. R. Ray, S.S. Stinnett, G.J. Jaffe, Evaluation of image artifact produced by OCT of retinal
pathology. Am. J. Ophthalmol. 139, 18–29 (2005)
46. R.H. Silverman, High-resolution ultrasound imaging of the eye—a review. Clin. Exp. Ophthalmol. 37, 54–67 (2009)
47. R. Guthoff, R.W. Berger, J. Draeger, Measurements of ocular coat dimensions by means of
combined A- and B-scan ultrasonography. Ophthalmic Res. 16, 289–291 (1984)
48. J. Németh, Z. Horóczi, Changes in the ocular dimensions after trabeculectomy. Int. Ophthalmol. 16(4–5), 355 (1992)
49. N. Demirkaya, H.W. van Dijk, S.M. van Schuppen, M.D. Abramoff, M.K. Garvin, M. Sonka
et al., Effect of age on individual retinal layer thickness in normal eyes as measured with
spectral-domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 54, 4934–4940
(2013)
50. J. Huang, X. Liu, Z. Wu, S. Sadda, Image quality affects macular and retinal nerve fiber layer
thickness measurements on fourier-domain optical coherence tomography. Ophthalmic Surg.
Lasers Imaging 42, 216–221 (2011)
51. P.J. Kelty, J.F. Payne, R.H. Trivedi, J. Kelty, E.M. Bowie, B.M. Burger, Macular thickness
assessment in healthy eyes based on ethnicity using Stratus OCT optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 49, 2668–2672 (2008)
52. X.R. Huang, Y. Zhou, R.W. Knighton, W. Kong, W.J. Feuer, Wavelength-dependent change
of retinal nerve fiber layer reflectance in glaucomatous retinas. Invest. Ophthalmol. Vis.
Sci. 53(9), 5869–58676 (2012). Epub 2012/07/28. https://doi.org/10.1167/iovs.12-10001.
PubMed PMID: 22836775; PubMed Central PMCID: PMCPMC3428115
53. S. Ooto, M. Hangai, A. Tomidokoro, H. Saito, M. Araie, T. Otani et al., Effects of age, sex,
and axial length on the three-dimensional profile of normal macular layer structures. Invest.
Ophthalmol. Vis. Sci. 52, 8769–8779 (2011)
54. H.L. Rao, A.U. Kumar, J.G. Babu, A. Kumar, S. Senthil, C.S. Garudadri, Predictors of normal
optic nerve head, retinal nerve fiber layer, and macular parameters measured by spectral
domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 52, 1103–1110 (2011)
55. C. Samarawickrama, A. Pai, S.C. Huynh, G. Burlutsky, T.Y. Wong, P. Mitchell, Influence of
OCT signal strength on macular, optic nerve head, and retinal nerve fiber layer parameters.
Invest. Ophthalmol. Vis. Sci. 51, 4471–4475 (2010)
56. A. Szigeti, E. Tátrai, B.E. Varga, A. Szamosi, D. Cabrera DeBuc, Z.Z. Nagy, J. Németh, G.M.
Somfai, The effect of axial length on the thickness of intraretinal layers of the macula. PLoS
ONE 10(11), e0142383 (2015). https://doi.org/10.1371/journal.pone.0142383
57. C.Y. Cheung, D. Chen, T.Y. Wong, Y.C. Tham, R. Wu, Y. Zheng et al., Determinants of
quantitative optic nerve measurements using spectral domain optical coherence tomography
in a population-based sample of non-glaucomatous subjects. Invest. Ophthalmol. Vis. Sci. 52,
9629–9635 (2011)
58. J.C. Mwanza, M.K. Durbin, D.L. Budenz, C.A. Girkin, C.K. Leung, J.M. Liebmann et al.,
Profile and predictors of normal ganglion cell-inner plexiform layer thickness measured
with frequency-domain optical coherence tomography. Invest. Ophthalmol. Vis. Sci. 52,
7872–7879 (2011)
59. W.K. Song, S.C. Lee, E.S. Lee, C.Y. Kim, S.S. Kim, Macular thickness variations with sex,
age, and axial length in healthy subjects: a spectral domain-optical coherence tomography
study. Invest. Ophthalmol. Vis. Sci. 51, 3913–3918 (2010)
60. A.C. Wong, C.W. Chan, S.P. Hui, Relationship of gender, body mass index, and axial length
with central retinal thickness using optical coherence tomography. Eye (Lond.) 19, 292–297
(2005)
61. C.J. Abbott, U. Grünert, M.J. Pianta, N.A. McBrien, Retinal thinning in tree shrews with
induced high myopia: optical coherence tomography and histological assessment. Vis. Res.
51(3), 376–385 (2011)
