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Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography

The zebrafish is a valuable vertebrate animal model in pre-clinical cancer research. A Jones matrix optical coherence tomography (JM-OCT) prototype operating at 1310 nm and an intensity-based spectral-domain OCT setup at 840 nm were utilized to investigate adult wildtype and a tumor-developing zebra...

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Autores principales: Lichtenegger, Antonia, Mukherjee, Pradipta, Zhu, Lida, Morishita, Rion, Tomita, Kiriko, Oida, Daisuke, Leskovar, Konrad, Abd El-Sadek, Ibrahim, Makita, Shuichi, Kirchberger, Stefanie, Distel, Martin, Baumann, Bernhard, Yasuno, Yoshiaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Optica Publishing Group 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045912/
https://www.ncbi.nlm.nih.gov/pubmed/35519284
http://dx.doi.org/10.1364/BOE.455876
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author Lichtenegger, Antonia
Mukherjee, Pradipta
Zhu, Lida
Morishita, Rion
Tomita, Kiriko
Oida, Daisuke
Leskovar, Konrad
Abd El-Sadek, Ibrahim
Makita, Shuichi
Kirchberger, Stefanie
Distel, Martin
Baumann, Bernhard
Yasuno, Yoshiaki
author_facet Lichtenegger, Antonia
Mukherjee, Pradipta
Zhu, Lida
Morishita, Rion
Tomita, Kiriko
Oida, Daisuke
Leskovar, Konrad
Abd El-Sadek, Ibrahim
Makita, Shuichi
Kirchberger, Stefanie
Distel, Martin
Baumann, Bernhard
Yasuno, Yoshiaki
author_sort Lichtenegger, Antonia
collection PubMed
description The zebrafish is a valuable vertebrate animal model in pre-clinical cancer research. A Jones matrix optical coherence tomography (JM-OCT) prototype operating at 1310 nm and an intensity-based spectral-domain OCT setup at 840 nm were utilized to investigate adult wildtype and a tumor-developing zebrafish model. Various anatomical features were characterized based on their inherent scattering and polarization signature. A motorized translation stage in combination with the JM-OCT prototype enabled large field-of-view imaging to investigate adult zebrafish in a non-destructive way. The diseased animals exhibited tumor-related abnormalities in the brain and near the eye region. The scatter intensity, the attenuation coefficients and local polarization parameters such as the birefringence and the degree of polarization uniformity were analyzed to quantify differences in tumor versus control regions. The proof-of-concept study in a limited number of animals revealed a significant decrease in birefringence in tumors found in the brain and near the eye compared to control regions. The presented work showed the potential of OCT and JM-OCT as non-destructive, high-resolution, and real-time imaging modalities for pre-clinical research based on zebrafish.
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spelling pubmed-90459122022-05-04 Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography Lichtenegger, Antonia Mukherjee, Pradipta Zhu, Lida Morishita, Rion Tomita, Kiriko Oida, Daisuke Leskovar, Konrad Abd El-Sadek, Ibrahim Makita, Shuichi Kirchberger, Stefanie Distel, Martin Baumann, Bernhard Yasuno, Yoshiaki Biomed Opt Express Article The zebrafish is a valuable vertebrate animal model in pre-clinical cancer research. A Jones matrix optical coherence tomography (JM-OCT) prototype operating at 1310 nm and an intensity-based spectral-domain OCT setup at 840 nm were utilized to investigate adult wildtype and a tumor-developing zebrafish model. Various anatomical features were characterized based on their inherent scattering and polarization signature. A motorized translation stage in combination with the JM-OCT prototype enabled large field-of-view imaging to investigate adult zebrafish in a non-destructive way. The diseased animals exhibited tumor-related abnormalities in the brain and near the eye region. The scatter intensity, the attenuation coefficients and local polarization parameters such as the birefringence and the degree of polarization uniformity were analyzed to quantify differences in tumor versus control regions. The proof-of-concept study in a limited number of animals revealed a significant decrease in birefringence in tumors found in the brain and near the eye compared to control regions. The presented work showed the potential of OCT and JM-OCT as non-destructive, high-resolution, and real-time imaging modalities for pre-clinical research based on zebrafish. Optica Publishing Group 2022-03-17 /pmc/articles/PMC9045912/ /pubmed/35519284 http://dx.doi.org/10.1364/BOE.455876 Text en Published by Optica Publishing Group under the terms of the Creative Commons Attribution 4.0 License. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI. https://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Lichtenegger, Antonia
Mukherjee, Pradipta
Zhu, Lida
Morishita, Rion
Tomita, Kiriko
Oida, Daisuke
Leskovar, Konrad
Abd El-Sadek, Ibrahim
Makita, Shuichi
Kirchberger, Stefanie
Distel, Martin
Baumann, Bernhard
Yasuno, Yoshiaki
Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title_full Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title_fullStr Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title_full_unstemmed Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title_short Non-destructive characterization of adult zebrafish models using Jones matrix optical coherence tomography
title_sort non-destructive characterization of adult zebrafish models using jones matrix optical coherence tomography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045912/
https://www.ncbi.nlm.nih.gov/pubmed/35519284
http://dx.doi.org/10.1364/BOE.455876
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