Cargando…

Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress

Properties of induced pluripotent stem cells (iPSC) have been extensively studied since their first derivation in 2006. However, the modification in reactive oxygen species (ROS) production and detoxification caused by reprogramming still needs to be further elucidated. The objective of this study w...

Descripción completa

Detalles Bibliográficos
Autores principales: Asensi, Karina D, Fortunato, Rodrigo S, dos Santos, Danúbia S, Pacheco, Thaísa S, de Rezende, Danielle F, Rodrigues, Deivid C, Mesquita, Fernanda C P, Kasai-Brunswick, Tais H, de Carvalho, Antonio C Campos, Carvalho, Denise P, Carvalho, Adriana B, Goldenberg, Regina C dos S
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4119388/
https://www.ncbi.nlm.nih.gov/pubmed/24528612
http://dx.doi.org/10.1111/jcmm.12226
_version_ 1782328962825846784
author Asensi, Karina D
Fortunato, Rodrigo S
dos Santos, Danúbia S
Pacheco, Thaísa S
de Rezende, Danielle F
Rodrigues, Deivid C
Mesquita, Fernanda C P
Kasai-Brunswick, Tais H
de Carvalho, Antonio C Campos
Carvalho, Denise P
Carvalho, Adriana B
Goldenberg, Regina C dos S
author_facet Asensi, Karina D
Fortunato, Rodrigo S
dos Santos, Danúbia S
Pacheco, Thaísa S
de Rezende, Danielle F
Rodrigues, Deivid C
Mesquita, Fernanda C P
Kasai-Brunswick, Tais H
de Carvalho, Antonio C Campos
Carvalho, Denise P
Carvalho, Adriana B
Goldenberg, Regina C dos S
author_sort Asensi, Karina D
collection PubMed
description Properties of induced pluripotent stem cells (iPSC) have been extensively studied since their first derivation in 2006. However, the modification in reactive oxygen species (ROS) production and detoxification caused by reprogramming still needs to be further elucidated. The objective of this study was to compare the response of iPSC generated from menstrual blood–derived mesenchymal stem cells (mb-iPSC), embryonic stem cells (H9) and adult menstrual blood–derived mesenchymal stem cells (mbMSC) to ROS exposure and investigate the effects of reprogramming on cellular oxidative stress (OS). mbMSC were extremely resistant to ROS exposure, however, mb-iPSC were 10-fold less resistant to H(2)O(2), which was very similar to embryonic stem cell sensitivity. Extracellular production of ROS was also similar in mb-iPSC and H9 and almost threefold lower than in mbMSC. Furthermore, intracellular amounts of ROS were higher in mb-iPSC and H9 when compared with mbMSC. As the ability to metabolize ROS is related to antioxidant enzymes, we analysed enzyme activities in these cell types. Catalase and superoxide dismutase activities were reduced in mb-iPSC and H9 when compared with mbMSC. Finally, cell adhesion under OS conditions was impaired in mb-iPSC when compared with mbMSC, albeit similar to H9. Thus, reprogramming leads to profound modifications in extracellular ROS production accompanied by loss of the ability to handle OS.
format Online
Article
Text
id pubmed-4119388
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher BlackWell Publishing Ltd
record_format MEDLINE/PubMed
spelling pubmed-41193882014-12-03 Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress Asensi, Karina D Fortunato, Rodrigo S dos Santos, Danúbia S Pacheco, Thaísa S de Rezende, Danielle F Rodrigues, Deivid C Mesquita, Fernanda C P Kasai-Brunswick, Tais H de Carvalho, Antonio C Campos Carvalho, Denise P Carvalho, Adriana B Goldenberg, Regina C dos S J Cell Mol Med Original Articles Properties of induced pluripotent stem cells (iPSC) have been extensively studied since their first derivation in 2006. However, the modification in reactive oxygen species (ROS) production and detoxification caused by reprogramming still needs to be further elucidated. The objective of this study was to compare the response of iPSC generated from menstrual blood–derived mesenchymal stem cells (mb-iPSC), embryonic stem cells (H9) and adult menstrual blood–derived mesenchymal stem cells (mbMSC) to ROS exposure and investigate the effects of reprogramming on cellular oxidative stress (OS). mbMSC were extremely resistant to ROS exposure, however, mb-iPSC were 10-fold less resistant to H(2)O(2), which was very similar to embryonic stem cell sensitivity. Extracellular production of ROS was also similar in mb-iPSC and H9 and almost threefold lower than in mbMSC. Furthermore, intracellular amounts of ROS were higher in mb-iPSC and H9 when compared with mbMSC. As the ability to metabolize ROS is related to antioxidant enzymes, we analysed enzyme activities in these cell types. Catalase and superoxide dismutase activities were reduced in mb-iPSC and H9 when compared with mbMSC. Finally, cell adhesion under OS conditions was impaired in mb-iPSC when compared with mbMSC, albeit similar to H9. Thus, reprogramming leads to profound modifications in extracellular ROS production accompanied by loss of the ability to handle OS. BlackWell Publishing Ltd 2014-05 2014-02-14 /pmc/articles/PMC4119388/ /pubmed/24528612 http://dx.doi.org/10.1111/jcmm.12226 Text en © 2014 The Authors. Journal of Cellular and Molecular Medicine published by John Wiley & Sons Ltd and Foundation for Cellular and Molecular Medicine. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Asensi, Karina D
Fortunato, Rodrigo S
dos Santos, Danúbia S
Pacheco, Thaísa S
de Rezende, Danielle F
Rodrigues, Deivid C
Mesquita, Fernanda C P
Kasai-Brunswick, Tais H
de Carvalho, Antonio C Campos
Carvalho, Denise P
Carvalho, Adriana B
Goldenberg, Regina C dos S
Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title_full Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title_fullStr Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title_full_unstemmed Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title_short Reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
title_sort reprogramming to a pluripotent state modifies mesenchymal stem cell resistance to oxidative stress
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4119388/
https://www.ncbi.nlm.nih.gov/pubmed/24528612
http://dx.doi.org/10.1111/jcmm.12226
work_keys_str_mv AT asensikarinad reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT fortunatorodrigos reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT dossantosdanubias reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT pachecothaisas reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT derezendedaniellef reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT rodriguesdeividc reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT mesquitafernandacp reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT kasaibrunswicktaish reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT decarvalhoantonioccampos reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT carvalhodenisep reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT carvalhoadrianab reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress
AT goldenbergreginacdoss reprogrammingtoapluripotentstatemodifiesmesenchymalstemcellresistancetooxidativestress