Activation of transcription factor circuity in 2i-induced ground state pluripotency is independent of repressive global epigenetic landscapes

Author:

Shukla Ruchi12,Mjoseng Heidi K1,Thomson John P1,Kling Simon3,Sproul Duncan1,Dunican Donncha S1,Ramsahoye Bernard4,Wongtawan Tuempong5,Treindl Fridolin36,Templin Markus F36,Adams Ian R1,Pennings Sari5,Meehan Richard R1ORCID

Affiliation:

1. MRC Human Genetics Unit, Institute of Genetics and Molecular Medicine, WGH, University of Edinburgh, Edinburgh EH4 2XU, UK

2. Newcastle University Centre for Cancer, Biosciences Institute, Newcastle University, Newcastle-upon-Tyne NE2 4HH, UK

3. NMI Natural and Medical Sciences Institute, Tübingen University, Reutlingen, Germany

4. Centre for Genomic and Experimental Medicine, Institute of Genetics and Molecular Medicine, WGH, University of Edinburgh, Edinburgh EH4 2XU, UK

5. Centre for Cardiovascular Science, Queen's Medical Research Institute, University of Edinburgh, Edinburgh EH16 4TJ, UK

6. Pharmaceutical Biotechnology, Tübingen University, Tübingen, Germany

Abstract

Abstract Mouse embryonic stem cells (mESCs) cultured with MEK/ERK and GSK3β (2i) inhibitors transition to ground state pluripotency. Gene expression changes, redistribution of histone H3K27me3 profiles and global DNA hypomethylation are hallmarks of 2i exposure, but it is unclear whether epigenetic alterations are required to achieve and maintain ground state or occur as an outcome of 2i signal induced changes. Here we show that ESCs with three epitypes, WT, constitutively methylated, or hypomethylated, all undergo comparable morphological, protein expression and transcriptome changes independently of global alterations of DNA methylation levels or changes in H3K27me3 profiles. Dazl and Fkbp6 expression are induced by 2i in all three epitypes, despite exhibiting hypermethylated promoters in constitutively methylated ESCs. We identify a number of activated gene promoters that undergo 2i dependent loss of H3K27me3 in all three epitypes, however genetic and pharmaceutical inhibition experiments show that H3K27me3 is not required for their silencing in non-2i conditions. By separating and defining their contributions, our data suggest that repressive epigenetic systems play minor roles in mESC self-renewal and naïve ground state establishment by core sets of dominant pluripotency associated transcription factor networks, which operate independently from these epigenetic processes.

Funder

Medical Research Council

Newcastle University

Innovative Medicine Initiative Joint Undertaking

CRUK

BBSRC

BHF

MRC

Publisher

Oxford University Press (OUP)

Subject

Genetics

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