Transient Methionine Deprivation Triggers Histone Modification and Potentiates Differentiation of Induced Pluripotent Stem Cells

Author:

Ozawa Hiroki1,Kambe Azusa1,Hibi Kodai1,Murakami Satoshi1,Oikawa Akira2,Handa Tetsuya3,Fujiki Katsunori4,Nakato Ryuichiro4,Shirahige Katsuhiko4,Kimura Hiroshi13ORCID,Shiraki Nobuaki1,Kume Shoen1ORCID

Affiliation:

1. School of Life Science and Technology, Tokyo Institute of Technology , Yokohama, Kanagawa , Japan

2. Graduate School of Agriculture, Kyoto University , Kyoto , Japan

3. Cell Biology Center, Institute of Innovative Research, Tokyo Institute of Technology , Yokohama, Kanagawa , Japan

4. Institute for Quantitative Biosciences, The University of Tokyo , Tokyo , Japan

Abstract

Abstract Human induced pluripotent stem cells (iPSCs) require high levels of methionine (Met). Met deprivation results in a rapid decrease in intracellular S-adenosyl-methionine (SAM), poising human iPSCs for differentiation and leading to the apoptosis of undifferentiated cells. Met deprivation triggers rapid metabolic changes, including SAM, followed by reversible epigenetic modifications. Here, we show that short-term Met deprivation impairs the pluripotency network through epigenetic modification in a 3D suspension culture. The trimethylation of lysine 4 on histone H3 (H3K4me3) was drastically affected compared with other histone modifications. Short-term Met deprivation specifically affects the transcription start site (TSS) region of genes, such as those involved in the transforming growth factor β pathway and cholesterol biosynthetic process, besides key pluripotent genes such as NANOG and POU5F1. The expression levels of these genes decreased, correlating with the loss of H3K4me3 marks. Upon differentiation, Met deprivation triggers the upregulation of various lineage-specific genes, including key definitive endoderm genes, such as GATA6. Upon differentiation, loss of H3K27me3 occurs in many endodermal genes, switching from a bivalent to a monovalent (H3K4me3) state. In conclusion, Met metabolism maintains the pluripotent network with histone marks, and their loss potentiates differentiation.

Funder

Ministry of Education, Culture, Sports, Science, and Technology

AMED

Takeda Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

Reference58 articles.

1. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors;Takahashi;Cell,2006

2. Embryonic stem cell lines derived from human blastocysts;Thomson;Science,1998

3. iPS cells: a game changer for future medicine;Inoue;EMBO J,2014

4. Rethinking differentiation: stem cells, regeneration, and plasticity;Sánchez Alvarado;Cell,2014

5. A decade of transcription factor-mediated reprogramming to pluripotency;Takahashi;Nat Rev Mol Cell Biol,2016

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