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Activation of the methylation cycle in cells reprogrammed into a stem cell-like state

Generation of induced pluripotent stem (iPS) cells and cancer biogenesis share similar metabolic switches. Most studies have focused on how the establishment of a cancer-like glycolytic phenotype is necessary for the optimal routing of somatic cells for achieving stemness. However, relatively little...

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Autores principales: Fernández-Arroyo, Salvador, Cuyàs, Elisabet, Bosch-Barrera, Joaquim, Alarcón, Tomás, Joven, Jorge, Menendez, Javier A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4735514/
https://www.ncbi.nlm.nih.gov/pubmed/26909364
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author Fernández-Arroyo, Salvador
Cuyàs, Elisabet
Bosch-Barrera, Joaquim
Alarcón, Tomás
Joven, Jorge
Menendez, Javier A.
author_facet Fernández-Arroyo, Salvador
Cuyàs, Elisabet
Bosch-Barrera, Joaquim
Alarcón, Tomás
Joven, Jorge
Menendez, Javier A.
author_sort Fernández-Arroyo, Salvador
collection PubMed
description Generation of induced pluripotent stem (iPS) cells and cancer biogenesis share similar metabolic switches. Most studies have focused on how the establishment of a cancer-like glycolytic phenotype is necessary for the optimal routing of somatic cells for achieving stemness. However, relatively little effort has been dedicated towards elucidating how one-carbon (1C) metabolism is retuned during acquisition of stem cell identity. Here we used ultra-high pressure liquid chromatography coupled to an electrospray ionization source and a triple-quadrupole mass spectrometer [UHPLC-ESI-QqQ-MS/MS] to quantitatively examine the methionine/folate bi-cyclic 1C metabolome during nuclear reprogramming of somatic cells into iPS cells. iPS cells optimize the synthesis of the universal methyl donor S-adenosylmethionine (SAM), apparently augment the ability of the redox balance regulator NADPH in SAM biosynthesis, and greatly increase their methylation potential by triggering a high SAM:S-adenosylhomocysteine (SAH) ratio. Activation of the methylation cycle in iPS cells efficiently prevents the elevation of homocysteine (Hcy), which could alter global DNA methylation and induce mitochondrial toxicity, oxidative stress and inflammation. In this regard, the methyl donor choline is also strikingly accumulated in iPS cells, suggesting perhaps an overactive intersection of the de novo synthesis of choline with the methionine-Hcy cycle. Activation of methylogenesis and maintenance of an optimal SAM:Hcy ratio might represent an essential function of 1C metabolism to provide a labile pool of methyl groups and NADPH-dependent redox products required for successfully establishing and maintaining an embryonic-like DNA methylation imprint in stem cell states.
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spelling pubmed-47355142016-02-23 Activation of the methylation cycle in cells reprogrammed into a stem cell-like state Fernández-Arroyo, Salvador Cuyàs, Elisabet Bosch-Barrera, Joaquim Alarcón, Tomás Joven, Jorge Menendez, Javier A. Oncoscience Research Paper Generation of induced pluripotent stem (iPS) cells and cancer biogenesis share similar metabolic switches. Most studies have focused on how the establishment of a cancer-like glycolytic phenotype is necessary for the optimal routing of somatic cells for achieving stemness. However, relatively little effort has been dedicated towards elucidating how one-carbon (1C) metabolism is retuned during acquisition of stem cell identity. Here we used ultra-high pressure liquid chromatography coupled to an electrospray ionization source and a triple-quadrupole mass spectrometer [UHPLC-ESI-QqQ-MS/MS] to quantitatively examine the methionine/folate bi-cyclic 1C metabolome during nuclear reprogramming of somatic cells into iPS cells. iPS cells optimize the synthesis of the universal methyl donor S-adenosylmethionine (SAM), apparently augment the ability of the redox balance regulator NADPH in SAM biosynthesis, and greatly increase their methylation potential by triggering a high SAM:S-adenosylhomocysteine (SAH) ratio. Activation of the methylation cycle in iPS cells efficiently prevents the elevation of homocysteine (Hcy), which could alter global DNA methylation and induce mitochondrial toxicity, oxidative stress and inflammation. In this regard, the methyl donor choline is also strikingly accumulated in iPS cells, suggesting perhaps an overactive intersection of the de novo synthesis of choline with the methionine-Hcy cycle. Activation of methylogenesis and maintenance of an optimal SAM:Hcy ratio might represent an essential function of 1C metabolism to provide a labile pool of methyl groups and NADPH-dependent redox products required for successfully establishing and maintaining an embryonic-like DNA methylation imprint in stem cell states. Impact Journals LLC 2016-01-05 /pmc/articles/PMC4735514/ /pubmed/26909364 Text en Copyright: © 2015 Fernández-Arroyo et al. http://creativecommons.org/licenses/by/2.5/ 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 credited.
spellingShingle Research Paper
Fernández-Arroyo, Salvador
Cuyàs, Elisabet
Bosch-Barrera, Joaquim
Alarcón, Tomás
Joven, Jorge
Menendez, Javier A.
Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title_full Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title_fullStr Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title_full_unstemmed Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title_short Activation of the methylation cycle in cells reprogrammed into a stem cell-like state
title_sort activation of the methylation cycle in cells reprogrammed into a stem cell-like state
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4735514/
https://www.ncbi.nlm.nih.gov/pubmed/26909364
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