The homeodomain of Oct4 is a dimeric binder of methylated CpG elements

Author:

Tan Daisylyn Senna1,Cheung Shun Lai1,Gao Ya1,Weinbuch Maike12,Hu Haoqing1,Shi Liyang3,Ti Shih-Chieh1,Hutchins Andrew P3ORCID,Cojocaru Vlad456ORCID,Jauch Ralf17ORCID

Affiliation:

1. School of Biomedical Sciences, Li Ka Shing Faculty of Medicine, The University of Hong Kong , Hong Kong  SAR, China

2. Institute for Molecular Medicine, Ulm University , Ulm,  Germany

3. Shenzhen Key Laboratory of Gene Regulation and Systems Biology, Department of Biology, School of Life Sciences, Southern University of Science and Technology , Shenzhen  518055, China

4. STAR-UBB Institute, Babeş-Bolyai University , Cluj-Napoca , Romania

5. Computational Structural Biology Group, Utrecht University , The Netherlands

6. Max Planck Institute for Molecular Biomedicine , Münster, Germany

7. Centre for Translational Stem Cell Biology , Hong Kong SAR, China

Abstract

AbstractOct4 is essential to maintain pluripotency and has a pivotal role in establishing the germline. Its DNA-binding POU domain was recently found to bind motifs with methylated CpG elements normally associated with epigenetic silencing. However, the mode of binding and the consequences of this capability has remained unclear. Here, we show that Oct4 binds to a compact palindromic DNA element with a methylated CpG core (CpGpal) in alternative states of pluripotency and during cellular reprogramming towards induced pluripotent stem cells (iPSCs). During cellular reprogramming, typical Oct4 bound enhancers are uniformly demethylated, with the prominent exception of the CpGpal sites where DNA methylation is often maintained. We demonstrate that Oct4 cooperatively binds the CpGpal element as a homodimer, which contrasts with the ectoderm-expressed POU factor Brn2. Indeed, binding to CpGpal is Oct4-specific as other POU factors expressed in somatic cells avoid this element. Binding assays combined with structural analyses and molecular dynamic simulations show that dimeric Oct4-binding to CpGpal is driven by the POU-homeodomain whilst the POU-specific domain is detached from DNA. Collectively, we report that Oct4 exerts parts of its regulatory function in the context of methylated DNA through a DNA recognition mechanism that solely relies on its homeodomain.

Funder

Research Grants Council of Hong Kong General Research

Health and Medical Research Fund

National Natural Science Foundation of China

Research Grants Council of Hong Kong

German Academic Exchange Service

HKSAR

Shenzhen Innovation Committee of Science and Technology

The Max Planck Computing and Data Facility

Dutch Research Council

Publisher

Oxford University Press (OUP)

Subject

Genetics

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