Metabolic oxidation regulates embryonic stem cell differentiation
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Open Access
- 2 May 2010
- journal article
- research article
- Published by Springer Nature in Nature Chemical Biology
- Vol. 6 (6) , 411-417
- https://doi.org/10.1038/nchembio.364
Abstract
Metabolomics analysis of stem cells and differentiated cells points to chemical unsaturation as a key feature of stem cell metabolites. Manipulation of these metabolites' concentrations directly influences stem cell behavior, highlighting biological oxidation as a driver for differentiation. Metabolites offer an important unexplored complementary approach to understanding the pluripotency of stem cells. Using MS-based metabolomics, we show that embryonic stem cells are characterized by abundant metabolites with highly unsaturated structures whose levels decrease upon differentiation. By monitoring the reduced and oxidized glutathione ratio as well as ascorbic acid levels, we demonstrate that the stem cell redox status is regulated during differentiation. On the basis of the oxidative biochemistry of the unsaturated metabolites, we experimentally manipulated specific pathways in embryonic stem cells while monitoring the effects on differentiation. Inhibition of the eicosanoid signaling pathway promoted pluripotency and maintained levels of unsaturated fatty acids. In contrast, downstream oxidized metabolites (for example, neuroprotectin D1) and substrates of pro-oxidative reactions (for example, acyl-carnitines), promoted neuronal and cardiac differentiation. We postulate that the highly unsaturated metabolome sustained by stem cells allows them to differentiate in response to in vivo oxidative processes such as inflammation.Keywords
This publication has 38 references indexed in Scilit:
- Association of reactive oxygen species levels and radioresistance in cancer stem cellsNature, 2009
- Ascorbic acid promotes osteoclastogenesis from embryonic stem cellsBiochemical and Biophysical Research Communications, 2005
- Directed Differentiation of Dopaminergic Neuronal Subtypes from Human Embryonic Stem CellsThe International Journal of Cell Cloning, 2005
- Low O 2 tensions and the prevention of differentiation of hES cellsProceedings of the National Academy of Sciences, 2005
- Regulation of oxidative stress by ATM is required for self-renewal of haematopoietic stem cellsNature, 2004
- Conversion of embryonic stem cells into neuroectodermal precursors in adherent monocultureNature Biotechnology, 2003
- Astroglia induce neurogenesis from adult neural stem cellsNature, 2002
- Redox state is a central modulator of the balance between self-renewal and differentiation in a dividing glial precursor cellProceedings of the National Academy of Sciences, 2000
- Mitochondrial maturation during neuronal differentiation in vivo and in vitroBiology of the Cell, 1991
- Regulation of fatty acid utilization in heart. Role of the carnitine-acetyl-CoA transferase and carnitine-acetyl carnitine translocase systemJournal of Molecular and Cellular Cardiology, 1982