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Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research

By adapting OPT to include the capability of imaging in the near infrared (NIR) spectrum, we here illustrate the possibility to image larger bodies of pancreatic tissue, such as the rat pancreas, and to increase the number of channels (cell types) that may be studied in a single specimen. We further...

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Autores principales: Eriksson, Anna U., Svensson, Christoffer, Hörnblad, Andreas, Cheddad, Abbas, Kostromina, Elena, Eriksson, Maria, Norlin, Nils, Pileggi, Antonello, Sharpe, James, Georgsson, Fredrik, Alanentalo, Tomas, Ahlgren, Ulf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MyJove Corporation 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3582649/
https://www.ncbi.nlm.nih.gov/pubmed/23353681
http://dx.doi.org/10.3791/50238
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author Eriksson, Anna U.
Svensson, Christoffer
Hörnblad, Andreas
Cheddad, Abbas
Kostromina, Elena
Eriksson, Maria
Norlin, Nils
Pileggi, Antonello
Sharpe, James
Georgsson, Fredrik
Alanentalo, Tomas
Ahlgren, Ulf
author_facet Eriksson, Anna U.
Svensson, Christoffer
Hörnblad, Andreas
Cheddad, Abbas
Kostromina, Elena
Eriksson, Maria
Norlin, Nils
Pileggi, Antonello
Sharpe, James
Georgsson, Fredrik
Alanentalo, Tomas
Ahlgren, Ulf
author_sort Eriksson, Anna U.
collection PubMed
description By adapting OPT to include the capability of imaging in the near infrared (NIR) spectrum, we here illustrate the possibility to image larger bodies of pancreatic tissue, such as the rat pancreas, and to increase the number of channels (cell types) that may be studied in a single specimen. We further describe the implementation of a number of computational tools that provide: 1/ accurate positioning of a specimen's (in our case the pancreas) centre of mass (COM) at the axis of rotation (AR)(2); 2/ improved algorithms for post-alignment tuning which prevents geometric distortions during the tomographic reconstruction(2) and 3/ a protocol for intensity equalization to increase signal to noise ratios in OPT-based BCM determinations(3). In addition, we describe a sample holder that minimizes the risk for unintentional movements of the specimen during image acquisition. Together, these protocols enable assessments of BCM distribution and other features, to be performed throughout the volume of intact pancreata or other organs (e.g. in studies of islet transplantation), with a resolution down to the level of individual islets of Langerhans.
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spelling pubmed-35826492013-03-04 Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research Eriksson, Anna U. Svensson, Christoffer Hörnblad, Andreas Cheddad, Abbas Kostromina, Elena Eriksson, Maria Norlin, Nils Pileggi, Antonello Sharpe, James Georgsson, Fredrik Alanentalo, Tomas Ahlgren, Ulf J Vis Exp Medicine By adapting OPT to include the capability of imaging in the near infrared (NIR) spectrum, we here illustrate the possibility to image larger bodies of pancreatic tissue, such as the rat pancreas, and to increase the number of channels (cell types) that may be studied in a single specimen. We further describe the implementation of a number of computational tools that provide: 1/ accurate positioning of a specimen's (in our case the pancreas) centre of mass (COM) at the axis of rotation (AR)(2); 2/ improved algorithms for post-alignment tuning which prevents geometric distortions during the tomographic reconstruction(2) and 3/ a protocol for intensity equalization to increase signal to noise ratios in OPT-based BCM determinations(3). In addition, we describe a sample holder that minimizes the risk for unintentional movements of the specimen during image acquisition. Together, these protocols enable assessments of BCM distribution and other features, to be performed throughout the volume of intact pancreata or other organs (e.g. in studies of islet transplantation), with a resolution down to the level of individual islets of Langerhans. MyJove Corporation 2013-01-12 /pmc/articles/PMC3582649/ /pubmed/23353681 http://dx.doi.org/10.3791/50238 Text en Copyright © 2013, Journal of Visualized Experiments http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. To view a copy of this license, visithttp://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Medicine
Eriksson, Anna U.
Svensson, Christoffer
Hörnblad, Andreas
Cheddad, Abbas
Kostromina, Elena
Eriksson, Maria
Norlin, Nils
Pileggi, Antonello
Sharpe, James
Georgsson, Fredrik
Alanentalo, Tomas
Ahlgren, Ulf
Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title_full Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title_fullStr Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title_full_unstemmed Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title_short Near Infrared Optical Projection Tomography for Assessments of β-cell Mass Distribution in Diabetes Research
title_sort near infrared optical projection tomography for assessments of β-cell mass distribution in diabetes research
topic Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3582649/
https://www.ncbi.nlm.nih.gov/pubmed/23353681
http://dx.doi.org/10.3791/50238
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