Cargando…

Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography

PURPOSE: To image, track and map the nerve fiber distribution in excised rabbit corneas over the entire stromal thickness using micro-optical coherence tomography (µOCT) to develop a screening tool for early peripheral neuropathy. METHODS: Excised rabbit corneas were consecutively imaged by a custom...

Descripción completa

Detalles Bibliográficos
Autores principales: Elhardt, Carolin, Wertheimer, Christian M., Wartak, Andreas, Zhao, Jie, Leung, Hui Min, Kassumeh, Stefan A., Yin, Biwei, Tearney, Guillermo J., Birngruber, Reginald
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Association for Research in Vision and Ophthalmology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7401960/
https://www.ncbi.nlm.nih.gov/pubmed/32821478
http://dx.doi.org/10.1167/tvst.9.5.6
_version_ 1783566665567436800
author Elhardt, Carolin
Wertheimer, Christian M.
Wartak, Andreas
Zhao, Jie
Leung, Hui Min
Kassumeh, Stefan A.
Yin, Biwei
Tearney, Guillermo J.
Birngruber, Reginald
author_facet Elhardt, Carolin
Wertheimer, Christian M.
Wartak, Andreas
Zhao, Jie
Leung, Hui Min
Kassumeh, Stefan A.
Yin, Biwei
Tearney, Guillermo J.
Birngruber, Reginald
author_sort Elhardt, Carolin
collection PubMed
description PURPOSE: To image, track and map the nerve fiber distribution in excised rabbit corneas over the entire stromal thickness using micro-optical coherence tomography (µOCT) to develop a screening tool for early peripheral neuropathy. METHODS: Excised rabbit corneas were consecutively imaged by a custom-designed µOCT prototype and a commercial laser scanning fluorescence confocal microscope. The µOCT images with a field of view of approximately 1 × 1 mm were recorded with axial and transverse resolutions of approximately 1 µm and approximately 4 µm, respectively. In the volumetric µOCT image data, network maps of hyper-reflective, branched structures traversing different stromal compartments were segmented using semiautomatic image processing algorithms. Furthermore, the same corneas received βIII-tubulin antibody immunostaining before digital confocal microscopy, and a comparison between µOCT image data and immunohistochemistry analysis was performed to validate the nerval origin of the tracked network structures. RESULTS: Semiautomatic tracing of the nerves with a high range of different thicknesses was possible through the whole corneal volumes, creating a skeleton of the traced nerves. There was a good conformity between the hyper-reflective structures in the µOCT data and the stained nerval structures in the immunohistochemistry data. CONCLUSIONS: This article demonstrates nerval imaging and tracking as well as a spatial correlation between µOCT and a fluorescence corneal nerve standard for larger nerves throughout the full thickness of the cornea ex vivo. TRANSLATIONAL RELEVANCE: Owing to its advantageous properties, µOCT may become useful as a noncontact method for assessing nerval structures in humans to screen for early peripheral neuropathy.
format Online
Article
Text
id pubmed-7401960
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Association for Research in Vision and Ophthalmology
record_format MEDLINE/PubMed
spelling pubmed-74019602020-08-18 Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography Elhardt, Carolin Wertheimer, Christian M. Wartak, Andreas Zhao, Jie Leung, Hui Min Kassumeh, Stefan A. Yin, Biwei Tearney, Guillermo J. Birngruber, Reginald Transl Vis Sci Technol Article PURPOSE: To image, track and map the nerve fiber distribution in excised rabbit corneas over the entire stromal thickness using micro-optical coherence tomography (µOCT) to develop a screening tool for early peripheral neuropathy. METHODS: Excised rabbit corneas were consecutively imaged by a custom-designed µOCT prototype and a commercial laser scanning fluorescence confocal microscope. The µOCT images with a field of view of approximately 1 × 1 mm were recorded with axial and transverse resolutions of approximately 1 µm and approximately 4 µm, respectively. In the volumetric µOCT image data, network maps of hyper-reflective, branched structures traversing different stromal compartments were segmented using semiautomatic image processing algorithms. Furthermore, the same corneas received βIII-tubulin antibody immunostaining before digital confocal microscopy, and a comparison between µOCT image data and immunohistochemistry analysis was performed to validate the nerval origin of the tracked network structures. RESULTS: Semiautomatic tracing of the nerves with a high range of different thicknesses was possible through the whole corneal volumes, creating a skeleton of the traced nerves. There was a good conformity between the hyper-reflective structures in the µOCT data and the stained nerval structures in the immunohistochemistry data. CONCLUSIONS: This article demonstrates nerval imaging and tracking as well as a spatial correlation between µOCT and a fluorescence corneal nerve standard for larger nerves throughout the full thickness of the cornea ex vivo. TRANSLATIONAL RELEVANCE: Owing to its advantageous properties, µOCT may become useful as a noncontact method for assessing nerval structures in humans to screen for early peripheral neuropathy. The Association for Research in Vision and Ophthalmology 2020-04-15 /pmc/articles/PMC7401960/ /pubmed/32821478 http://dx.doi.org/10.1167/tvst.9.5.6 Text en Copyright 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
spellingShingle Article
Elhardt, Carolin
Wertheimer, Christian M.
Wartak, Andreas
Zhao, Jie
Leung, Hui Min
Kassumeh, Stefan A.
Yin, Biwei
Tearney, Guillermo J.
Birngruber, Reginald
Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title_full Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title_fullStr Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title_full_unstemmed Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title_short Stromal Nerve Imaging and Tracking Using Micro-Optical Coherence Tomography
title_sort stromal nerve imaging and tracking using micro-optical coherence tomography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7401960/
https://www.ncbi.nlm.nih.gov/pubmed/32821478
http://dx.doi.org/10.1167/tvst.9.5.6
work_keys_str_mv AT elhardtcarolin stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT wertheimerchristianm stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT wartakandreas stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT zhaojie stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT leunghuimin stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT kassumehstefana stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT yinbiwei stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT tearneyguillermoj stromalnerveimagingandtrackingusingmicroopticalcoherencetomography
AT birngruberreginald stromalnerveimagingandtrackingusingmicroopticalcoherencetomography