Literature DB >> 27941384

Characterization of the Corneal Subbasal Nerve Plexus in Limbal Stem Cell Deficiency.

Pichaya Chuephanich1, Chantaka Supiyaphun, Carolina Aravena, Tahir Kansu Bozkurt, Fei Yu, Sophie X Deng.   

Abstract

PURPOSE: To quantify the changes in the subbasal nerve plexus in patients with limbal stem cell deficiency (LSCD) using in vivo laser scanning confocal microscopy.
METHODS: In this retrospective cross-sectional comparative study, confocal images of 51 eyes of 37 patients with LSCD collected between 2010 and 2015 by the Heidelberg Retina Tomograph III Rostock Corneal Module Confocal Microscope were analyzed. Two independent observers evaluated the scans of the central cornea. Seventeen normal eyes of 13 subjects served as controls. Total subbasal nerve density (SND), density of long nerves (ie, nerves 200 μm or longer), and the degree of tortuosity were quantified.
RESULTS: The mean (±SD) total SND and long nerve density were 48.0 ± 34.2 and 9.7 ± 10.9 nerves/mm, respectively, in all eyes with LSCD and 97.3 ± 29.9 and 35.3 ± 25.3 nerves/mm, respectively, in eyes of the control group (P < 0.001 for both comparisons). Compared with SND in control subjects, SND was reduced by 34.9% in the early stage, 54.0% in the intermediate stage, and 73.5% in the late stage of LSCD. The degrees of nerve tortuosity were significantly greater in patients with LSCD than in control subjects and differed among the early, intermediate, and late stages of LSCD. Reductions in total SND and long nerve density were positively correlated with the severity of LSCD.
CONCLUSIONS: Reductions in total SND and long nerve density were accompanied by increases in nerve tortuosity in eyes with LSCD. These parameters could be used as quantifiable measures of LSCD severity.

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Year:  2017        PMID: 27941384      PMCID: PMC5290068          DOI: 10.1097/ICO.0000000000001092

Source DB:  PubMed          Journal:  Cornea        ISSN: 0277-3740            Impact factor:   2.651


  38 in total

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2.  Mapping the corneal sub-basal nerve plexus in orthokeratology lens wear using in vivo laser scanning confocal microscopy.

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3.  Focused Tortuosity Definitions Based on Expert Clinical Assessment of Corneal Subbasal Nerves.

Authors:  Neil Lagali; Enea Poletti; Dipika V Patel; Charles N J McGhee; Pedram Hamrah; Ahmad Kheirkhah; Mitra Tavakoli; Ioannis N Petropoulos; Rayaz A Malik; Tor Paaske Utheim; Andrey Zhivov; Oliver Stachs; Karen Falke; Sabine Peschel; Rudolf Guthoff; Cecilia Chao; Blanka Golebiowski; Fiona Stapleton; Alfredo Ruggeri
Journal:  Invest Ophthalmol Vis Sci       Date:  2015-08       Impact factor: 4.799

4.  Dual-model automatic detection of nerve-fibres in corneal confocal microscopy images.

Authors:  M A Dabbah; J Graham; I Petropoulos; M Tavakoli; R A Malik
Journal:  Med Image Comput Comput Assist Interv       Date:  2010

5.  Automatic recognition of corneal nerve structures in images from confocal microscopy.

Authors:  Fabio Scarpa; Enrico Grisan; Alfredo Ruggeri
Journal:  Invest Ophthalmol Vis Sci       Date:  2008-07-09       Impact factor: 4.799

6.  Neurotrophic influences on corneal epithelial cells.

Authors:  J Garcia-Hirschfeld; L G Lopez-Briones; C Belmonte
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7.  Unilateral herpes zoster ophthalmicus results in bilateral corneal nerve alteration: an in vivo confocal microscopy study.

Authors:  Pedram Hamrah; Andrea Cruzat; Mohammad H Dastjerdi; Harald Prüss; Lixin Zheng; Bashar M Shahatit; Hasan A Bayhan; Reza Dana; Deborah Pavan-Langston
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8.  Characterization of limbal stem cell deficiency by in vivo laser scanning confocal microscopy: a microstructural approach.

Authors:  Sophie X Deng; Kunjal D Sejpal; Qiongyan Tang; Anthony J Aldave; Olivia L Lee; Fei Yu
Journal:  Arch Ophthalmol       Date:  2011-12-12

9.  Location and clonal analysis of stem cells and their differentiated progeny in the human ocular surface.

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10.  Patterned expression of neurotrophic factors and receptors in human limbal and corneal regions.

Authors:  Hong Qi; Eliseu Yung Chuang; Kyung-Chul Yoon; Cintia S de Paiva; H David Shine; Dan B Jones; Stephen C Pflugfelder; De-Quan Li
Journal:  Mol Vis       Date:  2007-10-16       Impact factor: 2.367

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  12 in total

1.  Global Consensus on Definition, Classification, Diagnosis, and Staging of Limbal Stem Cell Deficiency.

Authors:  Sophie X Deng; Vincent Borderie; Clara C Chan; Reza Dana; Francisco C Figueiredo; José A P Gomes; Graziella Pellegrini; Shigeto Shimmura; Friedrich E Kruse
Journal:  Cornea       Date:  2019-03       Impact factor: 2.651

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3.  Cell Morphology as an In Vivo Parameter for the Diagnosis of Limbal Stem Cell Deficiency.

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4.  Corneal Epithelial Thickness Measured Using Anterior Segment Optical Coherence Tomography as a Diagnostic Parameter for Limbal Stem Cell Deficiency.

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Review 5.  The diagnosis of limbal stem cell deficiency.

Authors:  Qihua Le; Jianjiang Xu; Sophie X Deng
Journal:  Ocul Surf       Date:  2017-11-04       Impact factor: 5.033

6.  Classification of Limbal Stem Cell Deficiency Using Clinical and Confocal Grading.

Authors:  Carolina Aravena; Kansu Bozkurt; Pichaya Chuephanich; Chantaka Supiyaphun; Fei Yu; Sophie X Deng
Journal:  Cornea       Date:  2019-01       Impact factor: 2.651

Review 7.  Limbal stem cell diseases.

Authors:  Clémence Bonnet; JoAnn S Roberts; Sophie X Deng
Journal:  Exp Eye Res       Date:  2021-02-08       Impact factor: 3.467

Review 8.  Human limbal epithelial stem cell regulation, bioengineering and function.

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Review 9.  A Review of Imaging Biomarkers of the Ocular Surface.

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Review 10.  Recent Advances in Stem Cell Therapy for Limbal Stem Cell Deficiency: A Narrative Review.

Authors:  Ali E Ghareeb; Majlinda Lako; Francisco C Figueiredo
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