Cargando…

Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase

Low temperature and sodium butyrate (NaBu) are two of the most used productivity-enhancing strategies in CHO cell cultures during biopharmaceutical manufacturing. While these two approaches alter the balance in the reciprocal relationship between cell growth and productivity, we do not fully underst...

Descripción completa

Detalles Bibliográficos
Autores principales: Avello, Verónica, Torres, Mauro, Vergara, Mauricio, Berrios, Julio, Valdez-Cruz, Norma A., Acevedo, Cristian, Molina Sampayo, Maria, Dickson, Alan J., Altamirano, Claudia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9662745/
https://www.ncbi.nlm.nih.gov/pubmed/36374852
http://dx.doi.org/10.1371/journal.pone.0277620
_version_ 1784830734009106432
author Avello, Verónica
Torres, Mauro
Vergara, Mauricio
Berrios, Julio
Valdez-Cruz, Norma A.
Acevedo, Cristian
Molina Sampayo, Maria
Dickson, Alan J.
Altamirano, Claudia
author_facet Avello, Verónica
Torres, Mauro
Vergara, Mauricio
Berrios, Julio
Valdez-Cruz, Norma A.
Acevedo, Cristian
Molina Sampayo, Maria
Dickson, Alan J.
Altamirano, Claudia
author_sort Avello, Verónica
collection PubMed
description Low temperature and sodium butyrate (NaBu) are two of the most used productivity-enhancing strategies in CHO cell cultures during biopharmaceutical manufacturing. While these two approaches alter the balance in the reciprocal relationship between cell growth and productivity, we do not fully understand their mechanisms of action beyond a gross cell growth inhibition. Here, we used continuous culture to evaluate the differential effect of low temperature and NaBu supplementation on CHO cell performance and gene expression profile. We found that an increase in cell-productivity under growth-inhibiting conditions was associated with the arrest of cells in the G1/G0 phase. A transcriptome analysis revealed that the molecular mechanisms by which low temperature and NaBu arrested cell cycle in G1/G0 differed from each other through the deregulation of different cell cycle checkpoints and regulators. The individual transcriptome changes in pattern observed in response to low temperature and NaBu were retained when these two strategies were combined, leading to an additive effect in arresting the cell cycle in G1/G0 phase. The findings presented here offer novel molecular insights about the cell cycle regulation during the CHO cell bioprocessing and its implications for increased recombinant protein production. This data provides a background for engineering productivity-enhanced CHO cell lines for continuous manufacturing.
format Online
Article
Text
id pubmed-9662745
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-96627452022-11-15 Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase Avello, Verónica Torres, Mauro Vergara, Mauricio Berrios, Julio Valdez-Cruz, Norma A. Acevedo, Cristian Molina Sampayo, Maria Dickson, Alan J. Altamirano, Claudia PLoS One Research Article Low temperature and sodium butyrate (NaBu) are two of the most used productivity-enhancing strategies in CHO cell cultures during biopharmaceutical manufacturing. While these two approaches alter the balance in the reciprocal relationship between cell growth and productivity, we do not fully understand their mechanisms of action beyond a gross cell growth inhibition. Here, we used continuous culture to evaluate the differential effect of low temperature and NaBu supplementation on CHO cell performance and gene expression profile. We found that an increase in cell-productivity under growth-inhibiting conditions was associated with the arrest of cells in the G1/G0 phase. A transcriptome analysis revealed that the molecular mechanisms by which low temperature and NaBu arrested cell cycle in G1/G0 differed from each other through the deregulation of different cell cycle checkpoints and regulators. The individual transcriptome changes in pattern observed in response to low temperature and NaBu were retained when these two strategies were combined, leading to an additive effect in arresting the cell cycle in G1/G0 phase. The findings presented here offer novel molecular insights about the cell cycle regulation during the CHO cell bioprocessing and its implications for increased recombinant protein production. This data provides a background for engineering productivity-enhanced CHO cell lines for continuous manufacturing. Public Library of Science 2022-11-14 /pmc/articles/PMC9662745/ /pubmed/36374852 http://dx.doi.org/10.1371/journal.pone.0277620 Text en © 2022 Avello et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Avello, Verónica
Torres, Mauro
Vergara, Mauricio
Berrios, Julio
Valdez-Cruz, Norma A.
Acevedo, Cristian
Molina Sampayo, Maria
Dickson, Alan J.
Altamirano, Claudia
Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title_full Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title_fullStr Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title_full_unstemmed Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title_short Enhanced recombinant protein production in CHO cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in G1/G0 phase
title_sort enhanced recombinant protein production in cho cell continuous cultures under growth-inhibiting conditions is associated with an arrested cell cycle in g1/g0 phase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9662745/
https://www.ncbi.nlm.nih.gov/pubmed/36374852
http://dx.doi.org/10.1371/journal.pone.0277620
work_keys_str_mv AT avelloveronica enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT torresmauro enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT vergaramauricio enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT berriosjulio enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT valdezcruznormaa enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT acevedocristian enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT molinasampayomaria enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT dicksonalanj enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase
AT altamiranoclaudia enhancedrecombinantproteinproductioninchocellcontinuousculturesundergrowthinhibitingconditionsisassociatedwithanarrestedcellcycleing1g0phase