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Quiescent Fibroblasts Exhibit High Metabolic Activity

Many cells in mammals exist in the state of quiescence, which is characterized by reversible exit from the cell cycle. Quiescent cells are widely reported to exhibit reduced size, nucleotide synthesis, and metabolic activity. Much lower glycolytic rates have been reported in quiescent compared with...

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Autores principales: Lemons, Johanna M. S., Feng, Xiao-Jiang, Bennett, Bryson D., Legesse-Miller, Aster, Johnson, Elizabeth L., Raitman, Irene, Pollina, Elizabeth A., Rabitz, Herschel A., Rabinowitz, Joshua D., Coller, Hilary A.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2958657/
https://www.ncbi.nlm.nih.gov/pubmed/21049082
http://dx.doi.org/10.1371/journal.pbio.1000514
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author Lemons, Johanna M. S.
Feng, Xiao-Jiang
Bennett, Bryson D.
Legesse-Miller, Aster
Johnson, Elizabeth L.
Raitman, Irene
Pollina, Elizabeth A.
Rabitz, Herschel A.
Rabinowitz, Joshua D.
Coller, Hilary A.
author_facet Lemons, Johanna M. S.
Feng, Xiao-Jiang
Bennett, Bryson D.
Legesse-Miller, Aster
Johnson, Elizabeth L.
Raitman, Irene
Pollina, Elizabeth A.
Rabitz, Herschel A.
Rabinowitz, Joshua D.
Coller, Hilary A.
author_sort Lemons, Johanna M. S.
collection PubMed
description Many cells in mammals exist in the state of quiescence, which is characterized by reversible exit from the cell cycle. Quiescent cells are widely reported to exhibit reduced size, nucleotide synthesis, and metabolic activity. Much lower glycolytic rates have been reported in quiescent compared with proliferating lymphocytes. In contrast, we show here that primary human fibroblasts continue to exhibit high metabolic rates when induced into quiescence via contact inhibition. By monitoring isotope labeling through metabolic pathways and quantitatively identifying fluxes from the data, we show that contact-inhibited fibroblasts utilize glucose in all branches of central carbon metabolism at rates similar to those of proliferating cells, with greater overflow flux from the pentose phosphate pathway back to glycolysis. Inhibition of the pentose phosphate pathway resulted in apoptosis preferentially in quiescent fibroblasts. By feeding the cells labeled glutamine, we also detected a “backwards” flux in the tricarboxylic acid cycle from α-ketoglutarate to citrate that was enhanced in contact-inhibited fibroblasts; this flux likely contributes to shuttling of NADPH from the mitochondrion to cytosol for redox defense or fatty acid synthesis. The high metabolic activity of the fibroblasts was directed in part toward breakdown and resynthesis of protein and lipid, and in part toward excretion of extracellular matrix proteins. Thus, reduced metabolic activity is not a hallmark of the quiescent state. Quiescent fibroblasts, relieved of the biosynthetic requirements associated with generating progeny, direct their metabolic activity to preservation of self integrity and alternative functions beneficial to the organism as a whole.
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spelling pubmed-29586572010-11-03 Quiescent Fibroblasts Exhibit High Metabolic Activity Lemons, Johanna M. S. Feng, Xiao-Jiang Bennett, Bryson D. Legesse-Miller, Aster Johnson, Elizabeth L. Raitman, Irene Pollina, Elizabeth A. Rabitz, Herschel A. Rabinowitz, Joshua D. Coller, Hilary A. PLoS Biol Research Article Many cells in mammals exist in the state of quiescence, which is characterized by reversible exit from the cell cycle. Quiescent cells are widely reported to exhibit reduced size, nucleotide synthesis, and metabolic activity. Much lower glycolytic rates have been reported in quiescent compared with proliferating lymphocytes. In contrast, we show here that primary human fibroblasts continue to exhibit high metabolic rates when induced into quiescence via contact inhibition. By monitoring isotope labeling through metabolic pathways and quantitatively identifying fluxes from the data, we show that contact-inhibited fibroblasts utilize glucose in all branches of central carbon metabolism at rates similar to those of proliferating cells, with greater overflow flux from the pentose phosphate pathway back to glycolysis. Inhibition of the pentose phosphate pathway resulted in apoptosis preferentially in quiescent fibroblasts. By feeding the cells labeled glutamine, we also detected a “backwards” flux in the tricarboxylic acid cycle from α-ketoglutarate to citrate that was enhanced in contact-inhibited fibroblasts; this flux likely contributes to shuttling of NADPH from the mitochondrion to cytosol for redox defense or fatty acid synthesis. The high metabolic activity of the fibroblasts was directed in part toward breakdown and resynthesis of protein and lipid, and in part toward excretion of extracellular matrix proteins. Thus, reduced metabolic activity is not a hallmark of the quiescent state. Quiescent fibroblasts, relieved of the biosynthetic requirements associated with generating progeny, direct their metabolic activity to preservation of self integrity and alternative functions beneficial to the organism as a whole. Public Library of Science 2010-10-19 /pmc/articles/PMC2958657/ /pubmed/21049082 http://dx.doi.org/10.1371/journal.pbio.1000514 Text en Lemons 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
Lemons, Johanna M. S.
Feng, Xiao-Jiang
Bennett, Bryson D.
Legesse-Miller, Aster
Johnson, Elizabeth L.
Raitman, Irene
Pollina, Elizabeth A.
Rabitz, Herschel A.
Rabinowitz, Joshua D.
Coller, Hilary A.
Quiescent Fibroblasts Exhibit High Metabolic Activity
title Quiescent Fibroblasts Exhibit High Metabolic Activity
title_full Quiescent Fibroblasts Exhibit High Metabolic Activity
title_fullStr Quiescent Fibroblasts Exhibit High Metabolic Activity
title_full_unstemmed Quiescent Fibroblasts Exhibit High Metabolic Activity
title_short Quiescent Fibroblasts Exhibit High Metabolic Activity
title_sort quiescent fibroblasts exhibit high metabolic activity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2958657/
https://www.ncbi.nlm.nih.gov/pubmed/21049082
http://dx.doi.org/10.1371/journal.pbio.1000514
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