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The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba

Many small open ocean animals, such as Antarctic krill, are an important part of marine ecosystems. To discover what will happen to animals such as krill in a changing ocean, experiments are run in aquaria where conditions can be controlled to simulate water characteristics predicted to occur in the...

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Autores principales: Bellini, Nicola, Cox, Martin J., Harper, Danielle J., Stott, Sebastian R., Ashok, Praveen C., Dholakia, Kishan, Kawaguchi, So, King, Robert, Horton, Tammy, Brown, Christian T. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4195727/
https://www.ncbi.nlm.nih.gov/pubmed/25310589
http://dx.doi.org/10.1371/journal.pone.0110367
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author Bellini, Nicola
Cox, Martin J.
Harper, Danielle J.
Stott, Sebastian R.
Ashok, Praveen C.
Dholakia, Kishan
Kawaguchi, So
King, Robert
Horton, Tammy
Brown, Christian T. A.
author_facet Bellini, Nicola
Cox, Martin J.
Harper, Danielle J.
Stott, Sebastian R.
Ashok, Praveen C.
Dholakia, Kishan
Kawaguchi, So
King, Robert
Horton, Tammy
Brown, Christian T. A.
author_sort Bellini, Nicola
collection PubMed
description Many small open ocean animals, such as Antarctic krill, are an important part of marine ecosystems. To discover what will happen to animals such as krill in a changing ocean, experiments are run in aquaria where conditions can be controlled to simulate water characteristics predicted to occur in the future. The response of individual animals to changing water conditions can be hard to observe, and with current observation techniques it is very difficult to follow the progress of an individual animal through its life. Optical coherence tomography (OCT) is an optical imaging technique that allows images at high resolution to be obtained from depths up to a few millimeters inside biological specimens. It is compatible with in vivo imaging and can be used repeatedly on the same specimens. In this work, we show how OCT may be applied to post mortem krill samples and how important physiological data such as shell thickness and estimates of organ volume can be obtained. Using OCT we find an average value for the thickness of krill exoskeleton to be (30±4) µm along a 1 cm length of the animal body. We also show that the technique may be used to provide detailed imagery of the internal structure of a pleopod joint and provide an estimate for the heart volume of (0.73±0.03) mm(3).
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spelling pubmed-41957272014-10-15 The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba Bellini, Nicola Cox, Martin J. Harper, Danielle J. Stott, Sebastian R. Ashok, Praveen C. Dholakia, Kishan Kawaguchi, So King, Robert Horton, Tammy Brown, Christian T. A. PLoS One Research Article Many small open ocean animals, such as Antarctic krill, are an important part of marine ecosystems. To discover what will happen to animals such as krill in a changing ocean, experiments are run in aquaria where conditions can be controlled to simulate water characteristics predicted to occur in the future. The response of individual animals to changing water conditions can be hard to observe, and with current observation techniques it is very difficult to follow the progress of an individual animal through its life. Optical coherence tomography (OCT) is an optical imaging technique that allows images at high resolution to be obtained from depths up to a few millimeters inside biological specimens. It is compatible with in vivo imaging and can be used repeatedly on the same specimens. In this work, we show how OCT may be applied to post mortem krill samples and how important physiological data such as shell thickness and estimates of organ volume can be obtained. Using OCT we find an average value for the thickness of krill exoskeleton to be (30±4) µm along a 1 cm length of the animal body. We also show that the technique may be used to provide detailed imagery of the internal structure of a pleopod joint and provide an estimate for the heart volume of (0.73±0.03) mm(3). Public Library of Science 2014-10-13 /pmc/articles/PMC4195727/ /pubmed/25310589 http://dx.doi.org/10.1371/journal.pone.0110367 Text en © 2014 Bellini et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Bellini, Nicola
Cox, Martin J.
Harper, Danielle J.
Stott, Sebastian R.
Ashok, Praveen C.
Dholakia, Kishan
Kawaguchi, So
King, Robert
Horton, Tammy
Brown, Christian T. A.
The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title_full The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title_fullStr The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title_full_unstemmed The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title_short The Application of Optical Coherence Tomography to Image Subsurface Tissue Structure of Antarctic Krill Euphausia superba
title_sort application of optical coherence tomography to image subsurface tissue structure of antarctic krill euphausia superba
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4195727/
https://www.ncbi.nlm.nih.gov/pubmed/25310589
http://dx.doi.org/10.1371/journal.pone.0110367
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