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Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat

In this study we focused on gravity-sensitive proteins of two human thyroid cancer cell lines (ML-1; RO82-W-1), which were exposed to a 2D clinostat (CLINO), a random positioning machine (RPM) and to normal 1g-conditions. After a three (3d)- or seven-day-culture (7d) on the two devices, we found bot...

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Autores principales: Svejgaard, Benjamin, Wehland, Markus, Ma, Xiao, Kopp, Sascha, Sahana, Jayashree, Warnke, Elisabeth, Aleshcheva, Ganna, Hemmersbach, Ruth, Hauslage, Jens, Grosse, Jirka, Bauer, Johann, Corydon, Thomas Juhl, Islam, Tawhidul, Infanger, Manfred, Grimm, Daniela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4537186/
https://www.ncbi.nlm.nih.gov/pubmed/26274317
http://dx.doi.org/10.1371/journal.pone.0135157
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author Svejgaard, Benjamin
Wehland, Markus
Ma, Xiao
Kopp, Sascha
Sahana, Jayashree
Warnke, Elisabeth
Aleshcheva, Ganna
Hemmersbach, Ruth
Hauslage, Jens
Grosse, Jirka
Bauer, Johann
Corydon, Thomas Juhl
Islam, Tawhidul
Infanger, Manfred
Grimm, Daniela
author_facet Svejgaard, Benjamin
Wehland, Markus
Ma, Xiao
Kopp, Sascha
Sahana, Jayashree
Warnke, Elisabeth
Aleshcheva, Ganna
Hemmersbach, Ruth
Hauslage, Jens
Grosse, Jirka
Bauer, Johann
Corydon, Thomas Juhl
Islam, Tawhidul
Infanger, Manfred
Grimm, Daniela
author_sort Svejgaard, Benjamin
collection PubMed
description In this study we focused on gravity-sensitive proteins of two human thyroid cancer cell lines (ML-1; RO82-W-1), which were exposed to a 2D clinostat (CLINO), a random positioning machine (RPM) and to normal 1g-conditions. After a three (3d)- or seven-day-culture (7d) on the two devices, we found both cell types growing three-dimensionally within multicellular spheroids (MCS) and also cells remaining adherent (AD) to the culture flask, while 1g-control cultures only formed adherent monolayers, unless the bottom of the culture dish was covered by agarose. In this case, the cytokines IL-6 and IL-8 facilitated the formation of MCS in both cell lines using the liquid-overlay technique at 1g. ML-1 cells grown on the RPM or the CLINO released amounts of IL-6 and MCP-1 into the supernatant, which were significantly elevated as compared to 1g-controls. Release of IL-4, IL-7, IL-8, IL-17, eotaxin-1 and VEGF increased time-dependently, but was not significantly influenced by the gravity conditions. After 3d on the RPM or the CLINO, an accumulation of F-actin around the cellular membrane was detectable in AD cells of both cell lines. IL-6 and IL-8 stimulation of ML-1 cells for 3d and 7d influenced the protein contents of ß(1)-integrin, talin-1, Ki-67, and beta-actin dose-dependently in adherent cells. The ß(1)-integrin content was significantly decreased in AD and MCS samples compared with 1g, while talin-1 was higher expressed in MCS than AD populations. The proliferation marker Ki-67 was elevated in AD samples compared with 1g and MCS samples. The ß-actin content of R082-W-1 cells remained unchanged. ML-1 cells exhibited no change in ß-actin in RPM cultures, but a reduction in CLINO samples. Thus, we concluded that simulated microgravity influences the release of cytokines in follicular thyroid cancer cells, and the production of ß(1)-integrin and talin-1 and predicts an identical effect under real microgravity conditions.
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spelling pubmed-45371862015-08-20 Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat Svejgaard, Benjamin Wehland, Markus Ma, Xiao Kopp, Sascha Sahana, Jayashree Warnke, Elisabeth Aleshcheva, Ganna Hemmersbach, Ruth Hauslage, Jens Grosse, Jirka Bauer, Johann Corydon, Thomas Juhl Islam, Tawhidul Infanger, Manfred Grimm, Daniela PLoS One Research Article In this study we focused on gravity-sensitive proteins of two human thyroid cancer cell lines (ML-1; RO82-W-1), which were exposed to a 2D clinostat (CLINO), a random positioning machine (RPM) and to normal 1g-conditions. After a three (3d)- or seven-day-culture (7d) on the two devices, we found both cell types growing three-dimensionally within multicellular spheroids (MCS) and also cells remaining adherent (AD) to the culture flask, while 1g-control cultures only formed adherent monolayers, unless the bottom of the culture dish was covered by agarose. In this case, the cytokines IL-6 and IL-8 facilitated the formation of MCS in both cell lines using the liquid-overlay technique at 1g. ML-1 cells grown on the RPM or the CLINO released amounts of IL-6 and MCP-1 into the supernatant, which were significantly elevated as compared to 1g-controls. Release of IL-4, IL-7, IL-8, IL-17, eotaxin-1 and VEGF increased time-dependently, but was not significantly influenced by the gravity conditions. After 3d on the RPM or the CLINO, an accumulation of F-actin around the cellular membrane was detectable in AD cells of both cell lines. IL-6 and IL-8 stimulation of ML-1 cells for 3d and 7d influenced the protein contents of ß(1)-integrin, talin-1, Ki-67, and beta-actin dose-dependently in adherent cells. The ß(1)-integrin content was significantly decreased in AD and MCS samples compared with 1g, while talin-1 was higher expressed in MCS than AD populations. The proliferation marker Ki-67 was elevated in AD samples compared with 1g and MCS samples. The ß-actin content of R082-W-1 cells remained unchanged. ML-1 cells exhibited no change in ß-actin in RPM cultures, but a reduction in CLINO samples. Thus, we concluded that simulated microgravity influences the release of cytokines in follicular thyroid cancer cells, and the production of ß(1)-integrin and talin-1 and predicts an identical effect under real microgravity conditions. Public Library of Science 2015-08-14 /pmc/articles/PMC4537186/ /pubmed/26274317 http://dx.doi.org/10.1371/journal.pone.0135157 Text en © 2015 Svejgaard 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
Svejgaard, Benjamin
Wehland, Markus
Ma, Xiao
Kopp, Sascha
Sahana, Jayashree
Warnke, Elisabeth
Aleshcheva, Ganna
Hemmersbach, Ruth
Hauslage, Jens
Grosse, Jirka
Bauer, Johann
Corydon, Thomas Juhl
Islam, Tawhidul
Infanger, Manfred
Grimm, Daniela
Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title_full Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title_fullStr Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title_full_unstemmed Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title_short Common Effects on Cancer Cells Exerted by a Random Positioning Machine and a 2D Clinostat
title_sort common effects on cancer cells exerted by a random positioning machine and a 2d clinostat
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4537186/
https://www.ncbi.nlm.nih.gov/pubmed/26274317
http://dx.doi.org/10.1371/journal.pone.0135157
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