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Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging

SIGNIFICANCE: Line-field confocal optical coherence tomography (LC-OCT) is a recently introduced high-resolution imaging modality based on a combination of low-coherence optical interferometry and reflectance confocal optical microscopy with line illumination and line detection. Capable of producing...

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Autores principales: Xue, Weikai, Ogien, Jonas, Bulkin, Pavel, Coutrot, Anne-Lise, Dubois, Arnaud
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9374567/
https://www.ncbi.nlm.nih.gov/pubmed/35962466
http://dx.doi.org/10.1117/1.JBO.27.8.086002
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author Xue, Weikai
Ogien, Jonas
Bulkin, Pavel
Coutrot, Anne-Lise
Dubois, Arnaud
author_facet Xue, Weikai
Ogien, Jonas
Bulkin, Pavel
Coutrot, Anne-Lise
Dubois, Arnaud
author_sort Xue, Weikai
collection PubMed
description SIGNIFICANCE: Line-field confocal optical coherence tomography (LC-OCT) is a recently introduced high-resolution imaging modality based on a combination of low-coherence optical interferometry and reflectance confocal optical microscopy with line illumination and line detection. Capable of producing three-dimensional (3D) images of the skin with cellular resolution, in vivo, LC-OCT has been mainly applied in dermatology and dermo-cosmetology. The LC-OCT devices capable of acquiring 3D images reported so far are based on a Linnik interferometer using two identical microscope objectives. In this configuration, LC-OCT cannot be designed to be a very compact and light device, and the image acquisition speed is limited. AIM: The objective of this work was to develop a more compact and lighter LC-OCT device that is capable of acquiring images faster without significant degradation of the resolution and with optimized detection sensitivity. APPROACH: We developed an LC-OCT device based on a Mirau interferometer using a single objective. Dynamic adjustment of the camera frequency during the depth scan is implemented, using a faster camera and a more powerful light source. The reflectivity of the beam-splitter in the Mirau interferometer was optimized to maximize the detection sensitivity. A galvanometer scanner was incorporated into the device for scanning the illumination line laterally. A stack of adjacent B-scans, constituting a 3D image, can thus be acquired. RESULTS: The device is able to acquire and display B-scans at 17 fps. 3D images with a quasi-isotropic resolution of [Formula: see text] (1.3, 1.9, and [Formula: see text] in the [Formula: see text] , and [Formula: see text] directions, respectively) over a field of [Formula: see text] ([Formula: see text]) can be obtained. 3D imaging of human skin at cellular resolution, in vivo, is reported. CONCLUSIONS: The acquisition rate of the B-scans, at 17 fps, is unprecedented in LC-OCT. Compared with the conventional LC-OCT devices based on a Linnik interferometer, the reported Mirau-based LC-OCT device can acquire B-scans [Formula: see text] times faster. With potential advantages in terms of compactness and weight, a Mirau-based device could easily be integrated into a smaller and lighter handheld probe for use by dermatologists in their daily medical practice.
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spelling pubmed-93745672022-08-14 Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging Xue, Weikai Ogien, Jonas Bulkin, Pavel Coutrot, Anne-Lise Dubois, Arnaud J Biomed Opt Imaging SIGNIFICANCE: Line-field confocal optical coherence tomography (LC-OCT) is a recently introduced high-resolution imaging modality based on a combination of low-coherence optical interferometry and reflectance confocal optical microscopy with line illumination and line detection. Capable of producing three-dimensional (3D) images of the skin with cellular resolution, in vivo, LC-OCT has been mainly applied in dermatology and dermo-cosmetology. The LC-OCT devices capable of acquiring 3D images reported so far are based on a Linnik interferometer using two identical microscope objectives. In this configuration, LC-OCT cannot be designed to be a very compact and light device, and the image acquisition speed is limited. AIM: The objective of this work was to develop a more compact and lighter LC-OCT device that is capable of acquiring images faster without significant degradation of the resolution and with optimized detection sensitivity. APPROACH: We developed an LC-OCT device based on a Mirau interferometer using a single objective. Dynamic adjustment of the camera frequency during the depth scan is implemented, using a faster camera and a more powerful light source. The reflectivity of the beam-splitter in the Mirau interferometer was optimized to maximize the detection sensitivity. A galvanometer scanner was incorporated into the device for scanning the illumination line laterally. A stack of adjacent B-scans, constituting a 3D image, can thus be acquired. RESULTS: The device is able to acquire and display B-scans at 17 fps. 3D images with a quasi-isotropic resolution of [Formula: see text] (1.3, 1.9, and [Formula: see text] in the [Formula: see text] , and [Formula: see text] directions, respectively) over a field of [Formula: see text] ([Formula: see text]) can be obtained. 3D imaging of human skin at cellular resolution, in vivo, is reported. CONCLUSIONS: The acquisition rate of the B-scans, at 17 fps, is unprecedented in LC-OCT. Compared with the conventional LC-OCT devices based on a Linnik interferometer, the reported Mirau-based LC-OCT device can acquire B-scans [Formula: see text] times faster. With potential advantages in terms of compactness and weight, a Mirau-based device could easily be integrated into a smaller and lighter handheld probe for use by dermatologists in their daily medical practice. Society of Photo-Optical Instrumentation Engineers 2022-08-13 2022-08 /pmc/articles/PMC9374567/ /pubmed/35962466 http://dx.doi.org/10.1117/1.JBO.27.8.086002 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/Published by SPIE under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle Imaging
Xue, Weikai
Ogien, Jonas
Bulkin, Pavel
Coutrot, Anne-Lise
Dubois, Arnaud
Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title_full Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title_fullStr Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title_full_unstemmed Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title_short Mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
title_sort mirau-based line-field confocal optical coherence tomography for three-dimensional high-resolution skin imaging
topic Imaging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9374567/
https://www.ncbi.nlm.nih.gov/pubmed/35962466
http://dx.doi.org/10.1117/1.JBO.27.8.086002
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