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Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device

Oxygen plays a key role in stem cell biology as a signaling molecule and as an indicator of cell energy metabolism. Quantification of cellular oxygen kinetics, i.e. the determination of specific oxygen uptake rates (sOURs), is routinely used to understand metabolic shifts. However current methods to...

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Autores principales: Super, Alexandre, Jaccard, Nicolas, Cardoso Marques, Marco Paulo, Macown, Rhys Jarred, Griffin, Lewis Donald, Veraitch, Farlan Singh, Szita, Nicolas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: WILEY‐VCH Verlag 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5103178/
https://www.ncbi.nlm.nih.gov/pubmed/27214658
http://dx.doi.org/10.1002/biot.201500479
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author Super, Alexandre
Jaccard, Nicolas
Cardoso Marques, Marco Paulo
Macown, Rhys Jarred
Griffin, Lewis Donald
Veraitch, Farlan Singh
Szita, Nicolas
author_facet Super, Alexandre
Jaccard, Nicolas
Cardoso Marques, Marco Paulo
Macown, Rhys Jarred
Griffin, Lewis Donald
Veraitch, Farlan Singh
Szita, Nicolas
author_sort Super, Alexandre
collection PubMed
description Oxygen plays a key role in stem cell biology as a signaling molecule and as an indicator of cell energy metabolism. Quantification of cellular oxygen kinetics, i.e. the determination of specific oxygen uptake rates (sOURs), is routinely used to understand metabolic shifts. However current methods to determine sOUR in adherent cell cultures rely on cell sampling, which impacts on cellular phenotype. We present real‐time monitoring of cell growth from phase contrast microscopy images, and of respiration using optical sensors for dissolved oxygen. Time‐course data for bulk and peri‐cellular oxygen concentrations obtained for Chinese hamster ovary (CHO) and mouse embryonic stem cell (mESCs) cultures successfully demonstrated this non‐invasive and label‐free approach. Additionally, we confirmed non‐invasive detection of cellular responses to rapidly changing culture conditions by exposing the cells to mitochondrial inhibiting and uncoupling agents. For the CHO and mESCs, sOUR values between 8 and 60 amol cell(−1) s(−1), and 5 and 35 amol cell(−1) s(−1) were obtained, respectively. These values compare favorably with literature data. The capability to monitor oxygen tensions, cell growth, and sOUR, of adherent stem cell cultures, non‐invasively and in real time, will be of significant benefit for future studies in stem cell biology and stem cell‐based therapies.
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spelling pubmed-51031782016-11-16 Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device Super, Alexandre Jaccard, Nicolas Cardoso Marques, Marco Paulo Macown, Rhys Jarred Griffin, Lewis Donald Veraitch, Farlan Singh Szita, Nicolas Biotechnol J Research Articles Oxygen plays a key role in stem cell biology as a signaling molecule and as an indicator of cell energy metabolism. Quantification of cellular oxygen kinetics, i.e. the determination of specific oxygen uptake rates (sOURs), is routinely used to understand metabolic shifts. However current methods to determine sOUR in adherent cell cultures rely on cell sampling, which impacts on cellular phenotype. We present real‐time monitoring of cell growth from phase contrast microscopy images, and of respiration using optical sensors for dissolved oxygen. Time‐course data for bulk and peri‐cellular oxygen concentrations obtained for Chinese hamster ovary (CHO) and mouse embryonic stem cell (mESCs) cultures successfully demonstrated this non‐invasive and label‐free approach. Additionally, we confirmed non‐invasive detection of cellular responses to rapidly changing culture conditions by exposing the cells to mitochondrial inhibiting and uncoupling agents. For the CHO and mESCs, sOUR values between 8 and 60 amol cell(−1) s(−1), and 5 and 35 amol cell(−1) s(−1) were obtained, respectively. These values compare favorably with literature data. The capability to monitor oxygen tensions, cell growth, and sOUR, of adherent stem cell cultures, non‐invasively and in real time, will be of significant benefit for future studies in stem cell biology and stem cell‐based therapies. WILEY‐VCH Verlag 2016-06-22 2016-09 /pmc/articles/PMC5103178/ /pubmed/27214658 http://dx.doi.org/10.1002/biot.201500479 Text en © 2016 The Authors. Biotechnology Journal published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Super, Alexandre
Jaccard, Nicolas
Cardoso Marques, Marco Paulo
Macown, Rhys Jarred
Griffin, Lewis Donald
Veraitch, Farlan Singh
Szita, Nicolas
Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title_full Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title_fullStr Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title_full_unstemmed Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title_short Real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
title_sort real‐time monitoring of specific oxygen uptake rates of embryonic stem cells in a microfluidic cell culture device
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5103178/
https://www.ncbi.nlm.nih.gov/pubmed/27214658
http://dx.doi.org/10.1002/biot.201500479
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