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Senescence-associated metabolomic phenotype in primary and iPSC-derived mesenchymal stromal cells

View ORCID ProfileEduardo Fernandez-Rebollo, Julia Franzen, Jonathan Hollmann, Alina Ostrowska, Matteo Oliverio, Torsten Sieben, Bjorn Rath, View ORCID ProfileJan-Wilhelm Kornfeld, View ORCID ProfileWolfgang Wagner
doi: https://doi.org/10.1101/542357
Eduardo Fernandez-Rebollo
1 University of Southern Denmark; Department of Biochemistry and Molecular Biology;
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  • ORCID record for Eduardo Fernandez-Rebollo
  • For correspondence: ef-r@bmb.sdu.dk
Julia Franzen
2 Stem Cell Biology and Cellular Engineering, RWTH Aachen Medical School, Germany;
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  • For correspondence: jufranzen@ukaachen.de
Jonathan Hollmann
2 Stem Cell Biology and Cellular Engineering, RWTH Aachen Medical School, Germany;
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  • For correspondence: jonathan.hollmann@googlemail.com
Alina Ostrowska
2 Stem Cell Biology and Cellular Engineering, RWTH Aachen Medical School, Germany;
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  • For correspondence: aostrowska@ukaachen.de
Matteo Oliverio
3 Max Planck Institute for Metabolism Research (MPI-MR), Cologne, Germany;
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  • For correspondence: matteoliverio@gmail.com
Torsten Sieben
2 Stem Cell Biology and Cellular Engineering, RWTH Aachen Medical School, Germany;
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  • For correspondence: t-sieben@gmx.de
Bjorn Rath
4 Department for Orthopedics, RWTH Aachen Medical School, Germany
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  • For correspondence: brath@ukaachen.de
Jan-Wilhelm Kornfeld
1 University of Southern Denmark; Department of Biochemistry and Molecular Biology;
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  • For correspondence: janwilhelmkornfeld@bmb.sdu.dk
Wolfgang Wagner
2 Stem Cell Biology and Cellular Engineering, RWTH Aachen Medical School, Germany;
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  • ORCID record for Wolfgang Wagner
  • For correspondence: wwagner@ukaachen.de
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Abstract

Long-term culture of primary cells is reflected by functional and secretory changes, which ultimately result in replicative senescence. In contrast, induced pluripotent stem cells (iPSCs) do not reveal any signs of cellular aging while in the pluripotency state, whereas little is known how they senesce upon differentiation. Furthermore, it is largely unclear how the metabolome of cells changes during replicative senescence and if such changes are consistent across different cell types. In this study, we have directly compared culture expansion of primary mesenchymal stromal cells (MSCs) and iPSC-derived MSCs (iMSCs) until they reached growth arrest after a mean of 21 and 17 cumulative population doublings, respectively. Both cell types acquired similar changes in morphology, in vitro differentiation potential, up-regulation of senescence-associated beta-galactosidase, and senescence-associated DNA methylation changes. Furthermore, MSCs and iMSCs revealed overlapping gene expression changes during culture expansion, particularly in functional categories related to metabolic processes. We subsequently compared the metabolome of MSCs and iMSCs at early and senescent passages and observed various significant and overlapping senescence-associated changes in both cell types, including down-regulation of nicotinamide ribonucleotide and up-regulation of orotic acid. Replicative senescence of both cell types was consistently reflected by the metabolic switch from oxidative to glycolytic pathways. Taken together, long-term culture of iPSC-derived MSCs evokes very similar molecular and functional changes as observed in primary MSCs. Replicative senescence is associated with a highly reproducible senescence-associated metabolomics phenotype, which may be used to monitor the state of cellular aging.

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Posted February 06, 2019.
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Senescence-associated metabolomic phenotype in primary and iPSC-derived mesenchymal stromal cells
Eduardo Fernandez-Rebollo, Julia Franzen, Jonathan Hollmann, Alina Ostrowska, Matteo Oliverio, Torsten Sieben, Bjorn Rath, Jan-Wilhelm Kornfeld, Wolfgang Wagner
bioRxiv 542357; doi: https://doi.org/10.1101/542357
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Senescence-associated metabolomic phenotype in primary and iPSC-derived mesenchymal stromal cells
Eduardo Fernandez-Rebollo, Julia Franzen, Jonathan Hollmann, Alina Ostrowska, Matteo Oliverio, Torsten Sieben, Bjorn Rath, Jan-Wilhelm Kornfeld, Wolfgang Wagner
bioRxiv 542357; doi: https://doi.org/10.1101/542357

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