N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
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[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
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D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
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A. Kumar, T. Kamali, R. Platzer, A. Unterhuber, W. Drexler, and R. A. Leitgeb, “Anisotropic aberration correction using region of interest based digital adaptive optics in Fourier domain OCT,” Biomed. Opt. Express 6(4), 1124–1134 (2015).
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N. D. Shemonski, F. A. South, Y. Z. Liu, S. G. Adie, P. S. Carney, and S. A. Boppart, “Computational high-resolution optical imaging of the living human retina,” Nat. Photonics 9(7), 440–443 (2015).
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K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
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A. Kumar, W. Drexler, and R. A. Leitgeb, “Numerical focusing methods for full field OCT: a comparison based on a common signal model,” Opt. Express 22(13), 16061–16078 (2014).
[Crossref]
[PubMed]
R. Ansari, C. Myrtus, R. Aherrahrou, J. Erdmann, A. Schweikard, and G. Hüttmann, “Ultrahigh-resolution, high-speed spectral domain optical coherence phase microscopy,” Opt. Lett. 39(1), 45–47 (2014).
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S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
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W. Choi, B. Baumann, J. J. Liu, A. C. Clermont, E. P. Feener, J. S. Duker, and J. G. Fujimoto, “Measurement of pulsatile total blood flow in the human and rat retina with ultrahigh speed spectral/Fourier domain OCT,” Biomed. Opt. Express 3(5), 1047–1061 (2012).
[Crossref]
[PubMed]
K. L. Lathrop, D. Gupta, L. Kagemann, J. S. Schuman, and N. Sundarraj, “Optical coherence tomography as a Rapid, Accurate, noncontact method of visualizing the palisades of vogt,” Invest. Ophthalmol. Vis. Sci. 53(3), 1381–1387 (2012).
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K. Bizheva, N. Hutchings, L. Sorbara, A. A. Moayed, and T. Simpson, “In vivo volumetric imaging of the human corneo-scleral limbus with spectral domain OCT,” Biomed. Opt. Express 2(7), 1794–1802 (2011).
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J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
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L. An, P. Li, T. T. Shen, and R. Wang, “High speed spectral domain optical coherence tomography for retinal imaging at 500,000 A‑lines per second,” Biomed. Opt. Express 2(10), 2770–2783 (2011).
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P. Li, L. An, R. Reif, T. T. Shen, M. Johnstone, and R. K. Wang, “In vivo microstructural and microvascular imaging of the human corneo-scleral limbus using optical coherence tomography,” Biomed. Opt. Express 2(11), 3109–3118 (2011).
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[Crossref]
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B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
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[Crossref]
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B. Grajciar, M. Pircher, A. Fercher, and R. Leitgeb, “Parallel Fourier domain optical coherence tomography for in vivo measurement of the human eye,” Opt. Express 13(4), 1131–1137 (2005).
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A. C. Romano, E. M. Espana, S. H. Yoo, M. T. Budak, J. M. Wolosin, and S. C. Tseng, “Different cell sizes in human limbal and central corneal basal epithelia measured by confocal microscopy and flow cytometry,” Invest. Ophthalmol. Vis. Sci. 44(12), 5125–5129 (2003).
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[Crossref]
[PubMed]
S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
[Crossref]
[PubMed]
S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
[Crossref]
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M.J. Hogan and J. A. Alvarado, Histology of the Human Eye: An Atlas and Textbook (1971).
P. Li, L. An, R. Reif, T. T. Shen, M. Johnstone, and R. K. Wang, “In vivo microstructural and microvascular imaging of the human corneo-scleral limbus using optical coherence tomography,” Biomed. Opt. Express 2(11), 3109–3118 (2011).
[Crossref]
[PubMed]
L. An, P. Li, T. T. Shen, and R. Wang, “High speed spectral domain optical coherence tomography for retinal imaging at 500,000 A‑lines per second,” Biomed. Opt. Express 2(10), 2770–2783 (2011).
[Crossref]
[PubMed]
H. S. Dua, A. Azuara-Blanco, and E. Fisher, “Limbal Stem Cells of the Corneal Epithelium,” Surv. Ophthalmol. 44(5), 415–425 (2000).
[Crossref]
[PubMed]
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
K. Bizheva, B. Tan, B. MacLelan, O. Kralj, M. Hajialamdari, D. Hileeto, and L. Sorbara, “Sub-micrometer axial resolution OCT for in-vivo imaging of the cellular structure of healthy and keratoconic human corneas,” Biomed. Opt. Express 8(2), 800–812 (2017).
[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
[PubMed]
K. Bizheva, N. Hutchings, L. Sorbara, A. A. Moayed, and T. Simpson, “In vivo volumetric imaging of the human corneo-scleral limbus with spectral domain OCT,” Biomed. Opt. Express 2(7), 1794–1802 (2011).
[Crossref]
[PubMed]
N. D. Shemonski, F. A. South, Y. Z. Liu, S. G. Adie, P. S. Carney, and S. A. Boppart, “Computational high-resolution optical imaging of the living human retina,” Nat. Photonics 9(7), 440–443 (2015).
[Crossref]
[PubMed]
S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
[Crossref]
[PubMed]
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
M. F. Goldberg and A. J. Bron, “Limbal palisades of Vogt,” Trans. Am. Ophthalmol. Soc. 80, 155–171 (1982).
[PubMed]
A. C. Romano, E. M. Espana, S. H. Yoo, M. T. Budak, J. M. Wolosin, and S. C. Tseng, “Different cell sizes in human limbal and central corneal basal epithelia measured by confocal microscopy and flow cytometry,” Invest. Ophthalmol. Vis. Sci. 44(12), 5125–5129 (2003).
[Crossref]
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
N. D. Shemonski, F. A. South, Y. Z. Liu, S. G. Adie, P. S. Carney, and S. A. Boppart, “Computational high-resolution optical imaging of the living human retina,” Nat. Photonics 9(7), 440–443 (2015).
[Crossref]
[PubMed]
S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
[Crossref]
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
K. M. Hatch and R. Dana, “The Structure and Function of the Limbal Stem Cell and the Disease States Associated With Limbal Stem Cell Deficiency,” Int. Ophthalmol. Clin. 49(1), 43–52 (2009).
[Crossref]
[PubMed]
A. J. Shortt, G. A. Secker, P. M. Munro, P. T. Khaw, S. J. Tuft, and J. T. Daniels, “Characterization of the Limbal Epithelial Stem Cell Niche: Novel Imaging Techniques Permit In Vivo Observation and Targeted Biopsy of limbal Epithelial Stem Cells,” Stem Cells 25(6), 1402–1409 (2007).
[Crossref]
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
[PubMed]
A. Kumar, T. Kamali, R. Platzer, A. Unterhuber, W. Drexler, and R. A. Leitgeb, “Anisotropic aberration correction using region of interest based digital adaptive optics in Fourier domain OCT,” Biomed. Opt. Express 6(4), 1124–1134 (2015).
[Crossref]
[PubMed]
A. Kumar, W. Drexler, and R. A. Leitgeb, “Numerical focusing methods for full field OCT: a comparison based on a common signal model,” Opt. Express 22(13), 16061–16078 (2014).
[Crossref]
[PubMed]
A. Kumar, W. Drexler, and R. A. Leitgeb, “Subaperture correlation based digital adaptive optics for full field optical coherence tomography,” Opt. Express 21(9), 10850–10866 (2013).
[Crossref]
[PubMed]
H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
[Crossref]
[PubMed]
H. S. Dua, A. Azuara-Blanco, and E. Fisher, “Limbal Stem Cells of the Corneal Epithelium,” Surv. Ophthalmol. 44(5), 415–425 (2000).
[Crossref]
[PubMed]
A. C. Romano, E. M. Espana, S. H. Yoo, M. T. Budak, J. M. Wolosin, and S. C. Tseng, “Different cell sizes in human limbal and central corneal basal epithelia measured by confocal microscopy and flow cytometry,” Invest. Ophthalmol. Vis. Sci. 44(12), 5125–5129 (2003).
[Crossref]
[PubMed]
A. Fatima, G. Iftekhar, V. S. Sangwan, and G. K. Vemuganti, “Ocular surface changes in limbal stem cell deficiency caused by chemical injury: a histologic study of excised pannus from recipients of cultured corneal epithelium,” Eye (Lond.) 22(9), 1161–1167 (2008).
[Crossref]
[PubMed]
H. S. Dua, A. Azuara-Blanco, and E. Fisher, “Limbal Stem Cells of the Corneal Epithelium,” Surv. Ophthalmol. 44(5), 415–425 (2000).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
W. Choi, B. Baumann, J. J. Liu, A. C. Clermont, E. P. Feener, J. S. Duker, and J. G. Fujimoto, “Measurement of pulsatile total blood flow in the human and rat retina with ultrahigh speed spectral/Fourier domain OCT,” Biomed. Opt. Express 3(5), 1047–1061 (2012).
[Crossref]
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
M. F. Goldberg and A. J. Bron, “Limbal palisades of Vogt,” Trans. Am. Ophthalmol. Soc. 80, 155–171 (1982).
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
S. G. Adie, B. W. Graf, A. Ahmad, P. S. Carney, and S. A. Boppart, “Computational adaptive optics for broadband optical interferometric tomography of biological tissue,” Proc. Natl. Acad. Sci. U.S.A. 109(19), 7175–7180 (2012).
[Crossref]
[PubMed]
B. Grajciar, Y. Lehareinger, A. F. Fercher, and R. A. Leitgeb, “High sensitivity phase mapping with parallel Fourier domain optical coherence tomography at 512 000 A-scan/s,” Opt. Express 18(21), 21841–21850 (2010).
[Crossref]
[PubMed]
B. Grajciar, M. Pircher, A. Fercher, and R. Leitgeb, “Parallel Fourier domain optical coherence tomography for in vivo measurement of the human eye,” Opt. Express 13(4), 1131–1137 (2005).
[Crossref]
[PubMed]
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
K. L. Lathrop, D. Gupta, L. Kagemann, J. S. Schuman, and N. Sundarraj, “Optical coherence tomography as a Rapid, Accurate, noncontact method of visualizing the palisades of vogt,” Invest. Ophthalmol. Vis. Sci. 53(3), 1381–1387 (2012).
[Crossref]
[PubMed]
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
[PubMed]
K. M. Hatch and R. Dana, “The Structure and Function of the Limbal Stem Cell and the Disease States Associated With Limbal Stem Cell Deficiency,” Int. Ophthalmol. Clin. 49(1), 43–52 (2009).
[Crossref]
[PubMed]
K. Bizheva, B. Tan, B. MacLelan, O. Kralj, M. Hajialamdari, D. Hileeto, and L. Sorbara, “Sub-micrometer axial resolution OCT for in-vivo imaging of the cellular structure of healthy and keratoconic human corneas,” Biomed. Opt. Express 8(2), 800–812 (2017).
[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
M.J. Hogan and J. A. Alvarado, Histology of the Human Eye: An Atlas and Textbook (1971).
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
R. Ansari, C. Myrtus, R. Aherrahrou, J. Erdmann, A. Schweikard, and G. Hüttmann, “Ultrahigh-resolution, high-speed spectral domain optical coherence phase microscopy,” Opt. Lett. 39(1), 45–47 (2014).
[Crossref]
[PubMed]
A. Fatima, G. Iftekhar, V. S. Sangwan, and G. K. Vemuganti, “Ocular surface changes in limbal stem cell deficiency caused by chemical injury: a histologic study of excised pannus from recipients of cultured corneal epithelium,” Eye (Lond.) 22(9), 1161–1167 (2008).
[Crossref]
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H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
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K. L. Lathrop, D. Gupta, L. Kagemann, J. S. Schuman, and N. Sundarraj, “Optical coherence tomography as a Rapid, Accurate, noncontact method of visualizing the palisades of vogt,” Invest. Ophthalmol. Vis. Sci. 53(3), 1381–1387 (2012).
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A. J. Shortt, G. A. Secker, P. M. Munro, P. T. Khaw, S. J. Tuft, and J. T. Daniels, “Characterization of the Limbal Epithelial Stem Cell Niche: Novel Imaging Techniques Permit In Vivo Observation and Targeted Biopsy of limbal Epithelial Stem Cells,” Stem Cells 25(6), 1402–1409 (2007).
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[PubMed]
J. G. Lawrenson and G. L. Ruskell, “The structure of corpuscular nerve endings in the limbal conjunctiva of the human eye,” J. Anat. 177, 75–84 (1991).
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
[PubMed]
A. Kumar, T. Kamali, R. Platzer, A. Unterhuber, W. Drexler, and R. A. Leitgeb, “Anisotropic aberration correction using region of interest based digital adaptive optics in Fourier domain OCT,” Biomed. Opt. Express 6(4), 1124–1134 (2015).
[Crossref]
[PubMed]
A. Kumar, W. Drexler, and R. A. Leitgeb, “Numerical focusing methods for full field OCT: a comparison based on a common signal model,” Opt. Express 22(13), 16061–16078 (2014).
[Crossref]
[PubMed]
A. Kumar, W. Drexler, and R. A. Leitgeb, “Subaperture correlation based digital adaptive optics for full field optical coherence tomography,” Opt. Express 21(9), 10850–10866 (2013).
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L. An, P. Li, T. T. Shen, and R. Wang, “High speed spectral domain optical coherence tomography for retinal imaging at 500,000 A‑lines per second,” Biomed. Opt. Express 2(10), 2770–2783 (2011).
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P. Li, L. An, R. Reif, T. T. Shen, M. Johnstone, and R. K. Wang, “In vivo microstructural and microvascular imaging of the human corneo-scleral limbus using optical coherence tomography,” Biomed. Opt. Express 2(11), 3109–3118 (2011).
[Crossref]
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
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K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
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M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
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[Crossref]
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N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
D. V. Patel, T. Sherwin, and C. N. J. McGhee, “Laser Scanning In Vivo Confocal Microscopy of the Normal Human Corneoscleral Limbus,” Invest. Ophthalmol. Vis. Sci. 47(7), 2823–2827 (2006).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
[Crossref]
[PubMed]
N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
A. C. Romano, E. M. Espana, S. H. Yoo, M. T. Budak, J. M. Wolosin, and S. C. Tseng, “Different cell sizes in human limbal and central corneal basal epithelia measured by confocal microscopy and flow cytometry,” Invest. Ophthalmol. Vis. Sci. 44(12), 5125–5129 (2003).
[Crossref]
[PubMed]
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
J. G. Lawrenson and G. L. Ruskell, “The structure of corpuscular nerve endings in the limbal conjunctiva of the human eye,” J. Anat. 177, 75–84 (1991).
[PubMed]
A. Fatima, G. Iftekhar, V. S. Sangwan, and G. K. Vemuganti, “Ocular surface changes in limbal stem cell deficiency caused by chemical injury: a histologic study of excised pannus from recipients of cultured corneal epithelium,” Eye (Lond.) 22(9), 1161–1167 (2008).
[Crossref]
[PubMed]
K. L. Lathrop, D. Gupta, L. Kagemann, J. S. Schuman, and N. Sundarraj, “Optical coherence tomography as a Rapid, Accurate, noncontact method of visualizing the palisades of vogt,” Invest. Ophthalmol. Vis. Sci. 53(3), 1381–1387 (2012).
[Crossref]
[PubMed]
A. J. Shortt, G. A. Secker, P. M. Munro, P. T. Khaw, S. J. Tuft, and J. T. Daniels, “Characterization of the Limbal Epithelial Stem Cell Niche: Novel Imaging Techniques Permit In Vivo Observation and Targeted Biopsy of limbal Epithelial Stem Cells,” Stem Cells 25(6), 1402–1409 (2007).
[Crossref]
[PubMed]
H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
[Crossref]
[PubMed]
N. D. Shemonski, F. A. South, Y. Z. Liu, S. G. Adie, P. S. Carney, and S. A. Boppart, “Computational high-resolution optical imaging of the living human retina,” Nat. Photonics 9(7), 440–443 (2015).
[Crossref]
[PubMed]
P. Li, L. An, R. Reif, T. T. Shen, M. Johnstone, and R. K. Wang, “In vivo microstructural and microvascular imaging of the human corneo-scleral limbus using optical coherence tomography,” Biomed. Opt. Express 2(11), 3109–3118 (2011).
[Crossref]
[PubMed]
L. An, P. Li, T. T. Shen, and R. Wang, “High speed spectral domain optical coherence tomography for retinal imaging at 500,000 A‑lines per second,” Biomed. Opt. Express 2(10), 2770–2783 (2011).
[Crossref]
[PubMed]
D. V. Patel, T. Sherwin, and C. N. J. McGhee, “Laser Scanning In Vivo Confocal Microscopy of the Normal Human Corneoscleral Limbus,” Invest. Ophthalmol. Vis. Sci. 47(7), 2823–2827 (2006).
[Crossref]
[PubMed]
N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
A. J. Shortt, G. A. Secker, P. M. Munro, P. T. Khaw, S. J. Tuft, and J. T. Daniels, “Characterization of the Limbal Epithelial Stem Cell Niche: Novel Imaging Techniques Permit In Vivo Observation and Targeted Biopsy of limbal Epithelial Stem Cells,” Stem Cells 25(6), 1402–1409 (2007).
[Crossref]
[PubMed]
K. Bizheva, B. Tan, B. MacLelan, O. Kralj, M. Hajialamdari, D. Hileeto, and L. Sorbara, “Sub-micrometer axial resolution OCT for in-vivo imaging of the cellular structure of healthy and keratoconic human corneas,” Biomed. Opt. Express 8(2), 800–812 (2017).
[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
[PubMed]
K. Bizheva, N. Hutchings, L. Sorbara, A. A. Moayed, and T. Simpson, “In vivo volumetric imaging of the human corneo-scleral limbus with spectral domain OCT,” Biomed. Opt. Express 2(7), 1794–1802 (2011).
[Crossref]
[PubMed]
N. D. Shemonski, F. A. South, Y. Z. Liu, S. G. Adie, P. S. Carney, and S. A. Boppart, “Computational high-resolution optical imaging of the living human retina,” Nat. Photonics 9(7), 440–443 (2015).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
B. Potsaid, I. Gorczynska, V. J. Srinivasan, Y. Chen, J. Jiang, A. Cable, and J. G. Fujimoto, “Ultrahigh speed Spectral / Fourier domain OCT ophthalmic imaging at 70,000 to 312,500 axial scans per second,” Opt. Express 16(19), 15149–15169 (2008).
[Crossref]
[PubMed]
H. Sudkamp, P. Koch, H. Spahr, D. Hillmann, G. Franke, M. Münst, F. Reinholz, R. Birngruber, and G. Hüttmann, “In-vivo retinal imaging with off-axis full-field time-domain optical coherence tomography,” Opt. Lett. 41(21), 4987–4990 (2016).
[Crossref]
[PubMed]
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
[PubMed]
K. L. Lathrop, D. Gupta, L. Kagemann, J. S. Schuman, and N. Sundarraj, “Optical coherence tomography as a Rapid, Accurate, noncontact method of visualizing the palisades of vogt,” Invest. Ophthalmol. Vis. Sci. 53(3), 1381–1387 (2012).
[Crossref]
[PubMed]
K. Bizheva, B. Tan, B. MacLelan, O. Kralj, M. Hajialamdari, D. Hileeto, and L. Sorbara, “Sub-micrometer axial resolution OCT for in-vivo imaging of the cellular structure of healthy and keratoconic human corneas,” Biomed. Opt. Express 8(2), 800–812 (2017).
[Crossref]
[PubMed]
K. Bizheva, L. Haines, E. Mason, B. MacLellan, B. Tan, D. Hileeto, and L. Sorbara, “In vivo imaging and morphometry of the human pre-Descemet’s layer and endothelium with ultrahigh-resolution optical coherence tomography,” Invest. Ophthalmol. Vis. Sci. 57(6), 2782–2787 (2016).
[Crossref]
[PubMed]
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
K. Grieve, D. Ghoubay, C. Georgeon, O. Thouvenin, N. Bouheraoua, M. Paques, and V. M. Borderie, “Three-dimensional structure of the mammalian limbal stem cell niche,” Exp. Eye Res. 140, 75–84 (2015).
[Crossref]
[PubMed]
H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
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[Crossref]
[PubMed]
A. J. Shortt, G. A. Secker, P. M. Munro, P. T. Khaw, S. J. Tuft, and J. T. Daniels, “Characterization of the Limbal Epithelial Stem Cell Niche: Novel Imaging Techniques Permit In Vivo Observation and Targeted Biopsy of limbal Epithelial Stem Cells,” Stem Cells 25(6), 1402–1409 (2007).
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[PubMed]
A. Fatima, G. Iftekhar, V. S. Sangwan, and G. K. Vemuganti, “Ocular surface changes in limbal stem cell deficiency caused by chemical injury: a histologic study of excised pannus from recipients of cultured corneal epithelium,” Eye (Lond.) 22(9), 1161–1167 (2008).
[Crossref]
[PubMed]
N. P. Pashtaev, N. A. Pozdeyeva, A. A. Voskresenskaya, B. V. Gagloev, and A. A. Shipunov, “Comparative analysis of the value of information provided by anterior segment optical coherence tomography and in vivo confocal microscopy for identifying the palisades of Vogt in normal limbus,” Ann. Ophthalmol. 1, 60–68 (2017).
D. Hillmann, H. Spahr, C. Hain, H. Sudkamp, G. Franke, C. Pfäffle, C. Winter, and G. Hüttmann, “Aberration-free volumetric high-speed imaging of in vivo retina,” Sci. Rep. 6(1), 35209 (2016).
[Crossref]
[PubMed]
A. C. Romano, E. M. Espana, S. H. Yoo, M. T. Budak, J. M. Wolosin, and S. C. Tseng, “Different cell sizes in human limbal and central corneal basal epithelia measured by confocal microscopy and flow cytometry,” Invest. Ophthalmol. Vis. Sci. 44(12), 5125–5129 (2003).
[Crossref]
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
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[Crossref]
[PubMed]
M. Haagdorens, J. Behaegel, J. Rozema, V. Van Gerwen, S. Michiels, S. Ní Dhubhghaill, M. J. Tassignon, and N. Zakaria, “A method for quantifying limbal stem cell niches using OCT imaging,” Br. J. Ophthalmol. 0, 1–6 (2017).
[PubMed]
J. Hong, T. Zheng, J. Xu, S. X. Deng, L. Chen, X. Sun, Q. Le, and Y. Li, “Assessment of limbus and central cornea in patients with keratolimbal allograft transplantation using in vivo laser scanning confocal microscopy: an observational study,” Graefes Arch. Clin. Exp. Ophthalmol. 249(5), 701–708 (2011).
[Crossref]
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P. Li, L. An, R. Reif, T. T. Shen, M. Johnstone, and R. K. Wang, “In vivo microstructural and microvascular imaging of the human corneo-scleral limbus using optical coherence tomography,” Biomed. Opt. Express 2(11), 3109–3118 (2011).
[Crossref]
[PubMed]
K. Bizheva, B. Tan, B. MacLelan, O. Kralj, M. Hajialamdari, D. Hileeto, and L. Sorbara, “Sub-micrometer axial resolution OCT for in-vivo imaging of the cellular structure of healthy and keratoconic human corneas,” Biomed. Opt. Express 8(2), 800–812 (2017).
[Crossref]
[PubMed]
A. Kumar, T. Kamali, R. Platzer, A. Unterhuber, W. Drexler, and R. A. Leitgeb, “Anisotropic aberration correction using region of interest based digital adaptive optics in Fourier domain OCT,” Biomed. Opt. Express 6(4), 1124–1134 (2015).
[Crossref]
[PubMed]
L. An, P. Li, T. T. Shen, and R. Wang, “High speed spectral domain optical coherence tomography for retinal imaging at 500,000 A‑lines per second,” Biomed. Opt. Express 2(10), 2770–2783 (2011).
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K. Bizheva, N. Hutchings, L. Sorbara, A. A. Moayed, and T. Simpson, “In vivo volumetric imaging of the human corneo-scleral limbus with spectral domain OCT,” Biomed. Opt. Express 2(7), 1794–1802 (2011).
[Crossref]
[PubMed]
H. S. Dua, V. A. Shanmuganathan, A. O. Powell-Richards, P. J. Tighe, and A. Joseph, “Limbal epithelial crypts: a novel anatomical structure and a putative limbal stem cell niche,” Br. J. Ophthalmol. 89(5), 529–532 (2005).
[Crossref]
[PubMed]
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